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These are podcasts about medical subjects updated from my professional experiences and literatures references.]]></description><atom:link href="https://www.spreaker.com/show/4229625/episodes/feed" rel="self" type="application/rss+xml"/><language>pt</language><category>Medicine</category><copyright>Copyright Roberto Mogami</copyright><image><url>https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg</url><title>Medicine and Imaging</title><link>https://www.spreaker.com/podcast/medicine-and-imaging--4229625</link></image><lastBuildDate>Thu, 10 Oct 2024 01:25:49 +0000</lastBuildDate><itunes:author>Roberto Mogami</itunes:author><itunes:owner><itunes:name>Roberto Mogami</itunes:name><itunes:email>ioga@pobox.com</itunes:email></itunes:owner><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:subtitle>My name is Roberto Mogami. I am an Associate Professor of Radiology at the Rio de Janeiro State University, Brazil. Learning and sharing what I learned is my passion. These are podcasts about medical subjects updated from my professional experiences...</itunes:subtitle><itunes:summary><![CDATA[My name is Roberto Mogami. I am an Associate Professor of Radiology at the Rio de Janeiro State University, Brazil. Learning and sharing what I learned is my passion. These are podcasts about medical subjects updated from my professional experiences and literatures references.]]></itunes:summary><itunes:category text="Health &amp; Fitness"><itunes:category text="Medicine"/></itunes:category><itunes:explicit>false</itunes:explicit><podcast:guid>adc8b120-14fc-537b-8bc9-0b5f1b97574c</podcast:guid><itunes:type>episodic</itunes:type><item><title>Estiramento do obturador externo</title><link>https://www.spreaker.com/episode/estiramento-do-obturador-externo--51411917</link><guid isPermaLink="false">https://api.spreaker.com/episode/51411917</guid><pubDate>Thu, 29 Sep 2022 00:59:30 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/51411917/estiramento_do_obturador_externo.mp3" length="3040076" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>190</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Hidradenite Supurativa</title><link>https://www.spreaker.com/episode/hidradenite-supurativa--51328274</link><description><![CDATA[Referências<br />1.Wortsman X, Moreno C, Soto R, Arellano J, Pezo C, Wortsman J. Ultrasound in-depth characterization and staging of hidradenitis suppurativa. Dermatol Surg. 2013;39(12):1835-42.<br />2.Anduquia-Garay F, Rodriguez-Gutierrez MM, Poveda-Castillo IT, Valdes-Moreno PL, Agudelo-Rios DA, Benavides-Moreno JS, et al. Hidradenitis suppurativa: Basic considerations for its approach: A narrative review. Ann Med Surg (Lond). 2021;68:102679.<br />3.Elkin K, Daveluy S, Avanaki KM. Hidradenitis suppurativa: Current understanding, diagnostic and surgical challenges, and developments in ultrasound application. Skin Res Technol. 2020;26(1):11-9.<br />4.Wortsman X. Imaging of Hidradenitis Suppurativa. Dermatol Clin. 2016;34(1):59-68.<br />5.Oranges T, Vitali S, Benincasa B, Izzetti R, Lencioni R, Caramella D, et al. Advanced evaluation of hidradenitis suppurativa with ultra-high frequency ultrasound: A promising tool for the diagnosis and monitoring of disease progression. Skin Res Technol. 2020;26(4):513-9.<br />6.Martorell A, Wortsman X, Alfageme F, Roustan G, Arias-Santiago S, Catalano O, et al. Ultrasound Evaluation as a Complementary Test in Hidradenitis Suppurativa: Proposal of a Standarized Report. Dermatol Surg. 2017;43(8):1065-73.<br />7.Wortsman X. Strong validation of ultrasound as an imaging biomarker in hidradenitis suppurativa. Br J Dermatol. 2021;184(4):591-2.<br />8.Grand D, Frew JW, Navrazhina K, Krueger JG. Doppler ultrasound-based noninvasive biomarkers in hidradenitis suppurativa: evaluation of analytical and clinical validity. Br J Dermatol. 2021;184(4):688-96.<br />9.Wortsman X, Castro A, Figueroa A. Color Doppler ultrasound assessment of morphology and types of fistulous tracts in hidradenitis suppurativa (HS). J Am Acad Dermatol. 2016;75(4):760-7.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/51328274</guid><pubDate>Wed, 21 Sep 2022 00:18:24 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/51328274/hidradenite_supurativa.mp3" length="6693875" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Wortsman X, Moreno C, Soto R, Arellano J, Pezo C, Wortsman J. Ultrasound in-depth characterization and staging of hidradenitis suppurativa. Dermatol Surg. 2013;39(12):1835-42.
2.Anduquia-Garay F, Rodriguez-Gutierrez MM, Poveda-Castillo...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Wortsman X, Moreno C, Soto R, Arellano J, Pezo C, Wortsman J. Ultrasound in-depth characterization and staging of hidradenitis suppurativa. Dermatol Surg. 2013;39(12):1835-42.<br />2.Anduquia-Garay F, Rodriguez-Gutierrez MM, Poveda-Castillo IT, Valdes-Moreno PL, Agudelo-Rios DA, Benavides-Moreno JS, et al. Hidradenitis suppurativa: Basic considerations for its approach: A narrative review. Ann Med Surg (Lond). 2021;68:102679.<br />3.Elkin K, Daveluy S, Avanaki KM. Hidradenitis suppurativa: Current understanding, diagnostic and surgical challenges, and developments in ultrasound application. Skin Res Technol. 2020;26(1):11-9.<br />4.Wortsman X. Imaging of Hidradenitis Suppurativa. Dermatol Clin. 2016;34(1):59-68.<br />5.Oranges T, Vitali S, Benincasa B, Izzetti R, Lencioni R, Caramella D, et al. Advanced evaluation of hidradenitis suppurativa with ultra-high frequency ultrasound: A promising tool for the diagnosis and monitoring of disease progression. Skin Res Technol. 2020;26(4):513-9.<br />6.Martorell A, Wortsman X, Alfageme F, Roustan G, Arias-Santiago S, Catalano O, et al. Ultrasound Evaluation as a Complementary Test in Hidradenitis Suppurativa: Proposal of a Standarized Report. Dermatol Surg. 2017;43(8):1065-73.<br />7.Wortsman X. Strong validation of ultrasound as an imaging biomarker in hidradenitis suppurativa. Br J Dermatol. 2021;184(4):591-2.<br />8.Grand D, Frew JW, Navrazhina K, Krueger JG. Doppler ultrasound-based noninvasive biomarkers in hidradenitis suppurativa: evaluation of analytical and clinical validity. Br J Dermatol. 2021;184(4):688-96.<br />9.Wortsman X, Castro A, Figueroa A. Color Doppler ultrasound assessment of morphology and types of fistulous tracts in hidradenitis suppurativa (HS). J Am Acad Dermatol. 2016;75(4):760-7.]]></itunes:summary><itunes:duration>419</itunes:duration><itunes:keywords>derme,hidradenite,wortsman</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Papel da ultrassonografia no estudo das complicações dermatológicas de preenchedores</title><link>https://www.spreaker.com/episode/papel-da-ultrassonografia-no-estudo-das-complicacoes-dermatologicas-de-preenchedores--51197393</link><description><![CDATA[Referências:<br /><br />1.Modarressi A, Nizet C, Lombardi T. Granulomas and nongranulomatous nodules after filler injection: Different complications require different treatments. J Plast Reconstr Aesthet Surg. 2020;73(11):2010-5.<br />2.Ianhez M, Souza MB, Miot HA. Frequency of Complications of Aesthetic Facial Fillers in Brazil. Plast Reconstr Surg. 2022;149(3):599e-601e.<br />3.Snozzi P, van Loghem JAJ. Complication Management following Rejuvenation Procedures with Hyaluronic Acid Fillers-an Algorithm-based Approach. Plast Reconstr Surg Glob Open. 2018;6(12):e2061.<br />4.Wortsman X, Wortsman J. Sonographic outcomes of cosmetic procedures. AJR Am J Roentgenol. 2011;197(5):W910-8.<br />5.Urdiales-Galvez F, De Cabo-Frances FM, Bove I. Ultrasound patterns of different dermal filler materials used in aesthetics. J Cosmet Dermatol. 2021;20(5):1541-8.<br />6.Wortsman X, Wortsman J, Orlandi C, Cardenas G, Sazunic I, Jemec GB. Ultrasound detection and identification of cosmetic fillers in the skin. J Eur Acad Dermatol Venereol. 2012;26(3):292-301.<br />7.Wortsman X. Identification and Complications of Cosmetic Fillers: Sonography First. J Ultrasound Med. 2015;34(7):1163-72.<br />8.Schelke LW, Cassuto D, Velthuis P, Wortsman X. Nomenclature proposal for the sonographic description and reporting of soft tissue fillers. J Cosmet Dermatol. 2020;19(2):282-8.<br />9.Ghareeb FM, Hassan MSA, El Nahas MA, Salem M. Complicated Facial Fillers: Management Algorithm. Plast Reconstr Surg Glob Open. 2022;10(7):e4445.<br />10.Mlosek RK, Migda B, Skrzypek E, Sloboda K, Migda M. The use of high-frequency ultrasonography for the diagnosis of palpable nodules after the administration of dermal fillers. J Ultrason. 2021;20(83):e248-e53.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/51197393</guid><pubDate>Fri, 09 Sep 2022 09:32:46 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/51197393/preenchedores.mp3" length="8651596" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências:&#13;
&#13;
1.Modarressi A, Nizet C, Lombardi T. Granulomas and nongranulomatous nodules after filler injection: Different complications require different treatments. J Plast Reconstr Aesthet Surg. 2020;73(11):2010-5.&#13;
2.Ianhez M, Souza MB, Miot...</itunes:subtitle><itunes:summary><![CDATA[Referências:<br /><br />1.Modarressi A, Nizet C, Lombardi T. Granulomas and nongranulomatous nodules after filler injection: Different complications require different treatments. J Plast Reconstr Aesthet Surg. 2020;73(11):2010-5.<br />2.Ianhez M, Souza MB, Miot HA. Frequency of Complications of Aesthetic Facial Fillers in Brazil. Plast Reconstr Surg. 2022;149(3):599e-601e.<br />3.Snozzi P, van Loghem JAJ. Complication Management following Rejuvenation Procedures with Hyaluronic Acid Fillers-an Algorithm-based Approach. Plast Reconstr Surg Glob Open. 2018;6(12):e2061.<br />4.Wortsman X, Wortsman J. Sonographic outcomes of cosmetic procedures. AJR Am J Roentgenol. 2011;197(5):W910-8.<br />5.Urdiales-Galvez F, De Cabo-Frances FM, Bove I. Ultrasound patterns of different dermal filler materials used in aesthetics. J Cosmet Dermatol. 2021;20(5):1541-8.<br />6.Wortsman X, Wortsman J, Orlandi C, Cardenas G, Sazunic I, Jemec GB. Ultrasound detection and identification of cosmetic fillers in the skin. J Eur Acad Dermatol Venereol. 2012;26(3):292-301.<br />7.Wortsman X. Identification and Complications of Cosmetic Fillers: Sonography First. J Ultrasound Med. 2015;34(7):1163-72.<br />8.Schelke LW, Cassuto D, Velthuis P, Wortsman X. Nomenclature proposal for the sonographic description and reporting of soft tissue fillers. J Cosmet Dermatol. 2020;19(2):282-8.<br />9.Ghareeb FM, Hassan MSA, El Nahas MA, Salem M. Complicated Facial Fillers: Management Algorithm. Plast Reconstr Surg Glob Open. 2022;10(7):e4445.<br />10.Mlosek RK, Migda B, Skrzypek E, Sloboda K, Migda M. The use of high-frequency ultrasonography for the diagnosis of palpable nodules after the administration of dermal fillers. J Ultrason. 2021;20(83):e248-e53.]]></itunes:summary><itunes:duration>541</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>NERVO MEDIANO NO TÚNEL DO CARPO</title><link>https://www.spreaker.com/episode/nervo-mediano-no-tunel-do-carpo--49705937</link><description><![CDATA[Referências<br />1.Presazzi A, Bortolotto C, Zacchino M, Madonia L, Draghi F. Carpal tunnel: Normal anatomy, anatomical variants and ultrasound technique. J Ultrasound. 2011;14(1):40-6.<br />2.Meyer P, Lintingre PF, Pesquer L, Poussange N, Silvestre A, Dallaudiere B. The Median Nerve at the Carpal Tunnel ... and Elsewhere. J Belg Soc Radiol. 2018;102(1):17.<br />3.Henry BM, Zwinczewska H, Roy J, Vikse J, Ramakrishnan PK, Walocha JA, et al. The Prevalence of Anatomical Variations of the Median Nerve in the Carpal Tunnel: A Systematic Review and Meta-Analysis. PLoS One. 2015;10(8):e0136477.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/49705937</guid><pubDate>Sun, 08 May 2022 01:51:26 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/49705937/nervo_mediano_no_tunel_do_carpo.mp3" length="4520069" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Presazzi A, Bortolotto C, Zacchino M, Madonia L, Draghi F. Carpal tunnel: Normal anatomy, anatomical variants and ultrasound technique. J Ultrasound. 2011;14(1):40-6.
2.Meyer P, Lintingre PF, Pesquer L, Poussange N, Silvestre A,...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Presazzi A, Bortolotto C, Zacchino M, Madonia L, Draghi F. Carpal tunnel: Normal anatomy, anatomical variants and ultrasound technique. J Ultrasound. 2011;14(1):40-6.<br />2.Meyer P, Lintingre PF, Pesquer L, Poussange N, Silvestre A, Dallaudiere B. The Median Nerve at the Carpal Tunnel ... and Elsewhere. J Belg Soc Radiol. 2018;102(1):17.<br />3.Henry BM, Zwinczewska H, Roy J, Vikse J, Ramakrishnan PK, Walocha JA, et al. The Prevalence of Anatomical Variations of the Median Nerve in the Carpal Tunnel: A Systematic Review and Meta-Analysis. PLoS One. 2015;10(8):e0136477.]]></itunes:summary><itunes:duration>283</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>DPOC, BRONQUIOLITES E REAÇÕES DESCAMATIVAS - PARTE II</title><link>https://www.spreaker.com/episode/dpoc-bronquiolites-e-reacoes-descamativas-parte-ii--49705779</link><description><![CDATA[Referências Bibliográficas<br />1.Benlala I, Laurent F, Dournes G. Structural and functional changes in COPD: What we have learned from imaging. Respirology. 2021;26(8):731-41.<br />2.Bodduluri S, Reinhardt JM, Hoffman EA, Newell JD, Jr., Bhatt SP. Recent Advances in Computed Tomography Imaging in Chronic Obstructive Pulmonary Disease. Ann Am Thorac Soc. 2018;15(3):281-9.<br />3.Edwards RM, Kicska G, Schmidt R, Pipavath SN. Imaging of small airways and emphysema. Clin Chest Med. 2015;36(2):335-47, x.<br />4.Hellemons ME, Moor CC, von der Thusen J, Rossius M, Odink A, Thorgersen LH, et al. Desquamative interstitial pneumonia: a systematic review of its features and outcomes. Eur Respir Rev. 2020;29(156).<br />5.Hogg JC, McDonough JE, Suzuki M. Small airway obstruction in COPD: new insights based on micro-CT imaging and MRI imaging. Chest. 2013;143(5):1436-43.<br />6.Kauczor HU, Wielputz MO, Jobst BJ, Weinheimer O, Gompelmann D, Herth FJF, et al. Computed Tomography Imaging for Novel Therapies of Chronic Obstructive Pulmonary Disease. J Thorac Imaging. 2019;34(3):202-13.<br />7.Lynch DA. Progress in Imaging COPD, 2004 - 2014. Chronic Obstr Pulm Dis. 2014;1(1):73-82.<br />8.Martini K, Frauenfelder T. Emphysema and lung volume reduction: the role of radiology. J Thorac Dis. 2018;10(Suppl 23):S2719-S31.<br />9.Martini K, Frauenfelder T. Advances in imaging for lung emphysema. Ann Transl Med. 2020;8(21):1467.<br />10.Ostridge K, Williams NP, Kim V, Harden S, Bourne S, Clarke SC, et al. Relationship of CT-quantified emphysema, small airways disease and bronchial wall dimensions with physiological, inflammatory and infective measures in COPD. Respir Res. 2018;19(1):31.<br />11.Pipavath SJ, Lynch DA, Cool C, Brown KK, Newell JD. Radiologic and pathologic features of bronchiolitis. AJR Am J Roentgenol. 2005;185(2):354-63.<br />12.Sheikh K, Coxson HO, Parraga G. This is what COPD looks like. Respirology. 2016;21(2):224-36.<br />13.Stern EJ, Frank MS. CT of the lung in patients with pulmonary emphysema: diagnosis, quantification, and correlation with pathologic and physiologic findings. AJR Am J Roentgenol. 1994;162(4):791-8.<br />14.Takahashi M, Fukuoka J, Nitta N, Takazakura R, Nagatani Y, Murakami Y, et al. Imaging of pulmonary emphysema: a pictorial review. Int J Chron Obstruct Pulmon Dis. 2008;3(2):193-204.<br />15.Tanabe N, Vasilescu DM, Hague CJ, Ikezoe K, Murphy DT, Kirby M, et al. Pathological Comparisons of Paraseptal and Centrilobular Emphysema in Chronic Obstructive Pulmonary Disease. Am J Respir Crit Care Med. 2020;202(6):803-11.<br />16.Thiboutot J, Yuan W, Park HC, Lerner AD, Mitzner W, Yarmus LB, et al. Current Advances in COPD Imaging. Acad Radiol. 2019;26(3):335-43.<br />17.Winningham PJ, Martinez-Jimenez S, Rosado-de-Christenson ML, Betancourt SL, Restrepo CS, Eraso A. Bronchiolitis: A Practical Approach for the General Radiologist-Erratum. Radiographics. 2017;37(5):1607.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/49705779</guid><pubDate>Sun, 08 May 2022 01:09:55 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/49705779/dpoc_bronquiolites_e_reacoes_descamativas_parte_ii.mp3" length="8420439" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências Bibliográficas
1.Benlala I, Laurent F, Dournes G. Structural and functional changes in COPD: What we have learned from imaging. Respirology. 2021;26(8):731-41.
2.Bodduluri S, Reinhardt JM, Hoffman EA, Newell JD, Jr., Bhatt SP. Recent...</itunes:subtitle><itunes:summary><![CDATA[Referências Bibliográficas<br />1.Benlala I, Laurent F, Dournes G. Structural and functional changes in COPD: What we have learned from imaging. Respirology. 2021;26(8):731-41.<br />2.Bodduluri S, Reinhardt JM, Hoffman EA, Newell JD, Jr., Bhatt SP. Recent Advances in Computed Tomography Imaging in Chronic Obstructive Pulmonary Disease. Ann Am Thorac Soc. 2018;15(3):281-9.<br />3.Edwards RM, Kicska G, Schmidt R, Pipavath SN. Imaging of small airways and emphysema. Clin Chest Med. 2015;36(2):335-47, x.<br />4.Hellemons ME, Moor CC, von der Thusen J, Rossius M, Odink A, Thorgersen LH, et al. Desquamative interstitial pneumonia: a systematic review of its features and outcomes. Eur Respir Rev. 2020;29(156).<br />5.Hogg JC, McDonough JE, Suzuki M. Small airway obstruction in COPD: new insights based on micro-CT imaging and MRI imaging. Chest. 2013;143(5):1436-43.<br />6.Kauczor HU, Wielputz MO, Jobst BJ, Weinheimer O, Gompelmann D, Herth FJF, et al. Computed Tomography Imaging for Novel Therapies of Chronic Obstructive Pulmonary Disease. J Thorac Imaging. 2019;34(3):202-13.<br />7.Lynch DA. Progress in Imaging COPD, 2004 - 2014. Chronic Obstr Pulm Dis. 2014;1(1):73-82.<br />8.Martini K, Frauenfelder T. Emphysema and lung volume reduction: the role of radiology. J Thorac Dis. 2018;10(Suppl 23):S2719-S31.<br />9.Martini K, Frauenfelder T. Advances in imaging for lung emphysema. Ann Transl Med. 2020;8(21):1467.<br />10.Ostridge K, Williams NP, Kim V, Harden S, Bourne S, Clarke SC, et al. Relationship of CT-quantified emphysema, small airways disease and bronchial wall dimensions with physiological, inflammatory and infective measures in COPD. Respir Res. 2018;19(1):31.<br />11.Pipavath SJ, Lynch DA, Cool C, Brown KK, Newell JD. Radiologic and pathologic features of bronchiolitis. AJR Am J Roentgenol. 2005;185(2):354-63.<br />12.Sheikh K, Coxson HO, Parraga G. This is what COPD looks like. Respirology. 2016;21(2):224-36.<br />13.Stern EJ, Frank MS. CT of the lung in patients with pulmonary emphysema: diagnosis, quantification, and correlation with pathologic and physiologic findings. AJR Am J Roentgenol. 1994;162(4):791-8.<br />14.Takahashi M, Fukuoka J, Nitta N, Takazakura R, Nagatani Y, Murakami Y, et al. Imaging of pulmonary emphysema: a pictorial review. Int J Chron Obstruct Pulmon Dis. 2008;3(2):193-204.<br />15.Tanabe N, Vasilescu DM, Hague CJ, Ikezoe K, Murphy DT, Kirby M, et al. Pathological Comparisons of Paraseptal and Centrilobular Emphysema in Chronic Obstructive Pulmonary Disease. Am J Respir Crit Care Med. 2020;202(6):803-11.<br />16.Thiboutot J, Yuan W, Park HC, Lerner AD, Mitzner W, Yarmus LB, et al. Current Advances in COPD Imaging. Acad Radiol. 2019;26(3):335-43.<br />17.Winningham PJ, Martinez-Jimenez S, Rosado-de-Christenson ML, Betancourt SL, Restrepo CS, Eraso A. Bronchiolitis: A Practical Approach for the General Radiologist-Erratum. Radiographics. 2017;37(5):1607.]]></itunes:summary><itunes:duration>527</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>DPOC, BRONQUIOLITES E REAÇÕES DESCAMATIVAS - PARTE I</title><link>https://www.spreaker.com/episode/dpoc-bronquiolites-e-reacoes-descamativas-parte-i--49684620</link><description><![CDATA[Referências Bibliográficas<br />1.Benlala I, Laurent F, Dournes G. Structural and functional changes in COPD: What we have learned from imaging. Respirology. 2021;26(8):731-41.<br />2.Bodduluri S, Reinhardt JM, Hoffman EA, Newell JD, Jr., Bhatt SP. Recent Advances in Computed Tomography Imaging in Chronic Obstructive Pulmonary Disease. Ann Am Thorac Soc. 2018;15(3):281-9.<br />3.Edwards RM, Kicska G, Schmidt R, Pipavath SN. Imaging of small airways and emphysema. Clin Chest Med. 2015;36(2):335-47, x.<br />4.Hellemons ME, Moor CC, von der Thusen J, Rossius M, Odink A, Thorgersen LH, et al. Desquamative interstitial pneumonia: a systematic review of its features and outcomes. Eur Respir Rev. 2020;29(156).<br />5.Hogg JC, McDonough JE, Suzuki M. Small airway obstruction in COPD: new insights based on micro-CT imaging and MRI imaging. Chest. 2013;143(5):1436-43.<br />6.Kauczor HU, Wielputz MO, Jobst BJ, Weinheimer O, Gompelmann D, Herth FJF, et al. Computed Tomography Imaging for Novel Therapies of Chronic Obstructive Pulmonary Disease. J Thorac Imaging. 2019;34(3):202-13.<br />7.Lynch DA. Progress in Imaging COPD, 2004 - 2014. Chronic Obstr Pulm Dis. 2014;1(1):73-82.<br />8.Martini K, Frauenfelder T. Emphysema and lung volume reduction: the role of radiology. J Thorac Dis. 2018;10(Suppl 23):S2719-S31.<br />9.Martini K, Frauenfelder T. Advances in imaging for lung emphysema. Ann Transl Med. 2020;8(21):1467.<br />10.Ostridge K, Williams NP, Kim V, Harden S, Bourne S, Clarke SC, et al. Relationship of CT-quantified emphysema, small airways disease and bronchial wall dimensions with physiological, inflammatory and infective measures in COPD. Respir Res. 2018;19(1):31.<br />11.Pipavath SJ, Lynch DA, Cool C, Brown KK, Newell JD. Radiologic and pathologic features of bronchiolitis. AJR Am J Roentgenol. 2005;185(2):354-63.<br />12.Sheikh K, Coxson HO, Parraga G. This is what COPD looks like. Respirology. 2016;21(2):224-36.<br />13.Stern EJ, Frank MS. CT of the lung in patients with pulmonary emphysema: diagnosis, quantification, and correlation with pathologic and physiologic findings. AJR Am J Roentgenol. 1994;162(4):791-8.<br />14.Takahashi M, Fukuoka J, Nitta N, Takazakura R, Nagatani Y, Murakami Y, et al. Imaging of pulmonary emphysema: a pictorial review. Int J Chron Obstruct Pulmon Dis. 2008;3(2):193-204.<br />15.Tanabe N, Vasilescu DM, Hague CJ, Ikezoe K, Murphy DT, Kirby M, et al. Pathological Comparisons of Paraseptal and Centrilobular Emphysema in Chronic Obstructive Pulmonary Disease. Am J Respir Crit Care Med. 2020;202(6):803-11.<br />16.Thiboutot J, Yuan W, Park HC, Lerner AD, Mitzner W, Yarmus LB, et al. Current Advances in COPD Imaging. Acad Radiol. 2019;26(3):335-43.<br />17.Winningham PJ, Martinez-Jimenez S, Rosado-de-Christenson ML, Betancourt SL, Restrepo CS, Eraso A. Bronchiolitis: A Practical Approach for the General Radiologist-Erratum. Radiographics. 2017;37(5):1607.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/49684620</guid><pubDate>Fri, 06 May 2022 02:34:29 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/49684620/dpoc_bronquiolites_e_reacoes_descamativas_parte_i.mp3" length="12359730" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências Bibliográficas
1.Benlala I, Laurent F, Dournes G. Structural and functional changes in COPD: What we have learned from imaging. Respirology. 2021;26(8):731-41.
2.Bodduluri S, Reinhardt JM, Hoffman EA, Newell JD, Jr., Bhatt SP. Recent...</itunes:subtitle><itunes:summary><![CDATA[Referências Bibliográficas<br />1.Benlala I, Laurent F, Dournes G. Structural and functional changes in COPD: What we have learned from imaging. Respirology. 2021;26(8):731-41.<br />2.Bodduluri S, Reinhardt JM, Hoffman EA, Newell JD, Jr., Bhatt SP. Recent Advances in Computed Tomography Imaging in Chronic Obstructive Pulmonary Disease. Ann Am Thorac Soc. 2018;15(3):281-9.<br />3.Edwards RM, Kicska G, Schmidt R, Pipavath SN. Imaging of small airways and emphysema. Clin Chest Med. 2015;36(2):335-47, x.<br />4.Hellemons ME, Moor CC, von der Thusen J, Rossius M, Odink A, Thorgersen LH, et al. Desquamative interstitial pneumonia: a systematic review of its features and outcomes. Eur Respir Rev. 2020;29(156).<br />5.Hogg JC, McDonough JE, Suzuki M. Small airway obstruction in COPD: new insights based on micro-CT imaging and MRI imaging. Chest. 2013;143(5):1436-43.<br />6.Kauczor HU, Wielputz MO, Jobst BJ, Weinheimer O, Gompelmann D, Herth FJF, et al. Computed Tomography Imaging for Novel Therapies of Chronic Obstructive Pulmonary Disease. J Thorac Imaging. 2019;34(3):202-13.<br />7.Lynch DA. Progress in Imaging COPD, 2004 - 2014. Chronic Obstr Pulm Dis. 2014;1(1):73-82.<br />8.Martini K, Frauenfelder T. Emphysema and lung volume reduction: the role of radiology. J Thorac Dis. 2018;10(Suppl 23):S2719-S31.<br />9.Martini K, Frauenfelder T. Advances in imaging for lung emphysema. Ann Transl Med. 2020;8(21):1467.<br />10.Ostridge K, Williams NP, Kim V, Harden S, Bourne S, Clarke SC, et al. Relationship of CT-quantified emphysema, small airways disease and bronchial wall dimensions with physiological, inflammatory and infective measures in COPD. Respir Res. 2018;19(1):31.<br />11.Pipavath SJ, Lynch DA, Cool C, Brown KK, Newell JD. Radiologic and pathologic features of bronchiolitis. AJR Am J Roentgenol. 2005;185(2):354-63.<br />12.Sheikh K, Coxson HO, Parraga G. This is what COPD looks like. Respirology. 2016;21(2):224-36.<br />13.Stern EJ, Frank MS. CT of the lung in patients with pulmonary emphysema: diagnosis, quantification, and correlation with pathologic and physiologic findings. AJR Am J Roentgenol. 1994;162(4):791-8.<br />14.Takahashi M, Fukuoka J, Nitta N, Takazakura R, Nagatani Y, Murakami Y, et al. Imaging of pulmonary emphysema: a pictorial review. Int J Chron Obstruct Pulmon Dis. 2008;3(2):193-204.<br />15.Tanabe N, Vasilescu DM, Hague CJ, Ikezoe K, Murphy DT, Kirby M, et al. Pathological Comparisons of Paraseptal and Centrilobular Emphysema in Chronic Obstructive Pulmonary Disease. Am J Respir Crit Care Med. 2020;202(6):803-11.<br />16.Thiboutot J, Yuan W, Park HC, Lerner AD, Mitzner W, Yarmus LB, et al. Current Advances in COPD Imaging. Acad Radiol. 2019;26(3):335-43.<br />17.Winningham PJ, Martinez-Jimenez S, Rosado-de-Christenson ML, Betancourt SL, Restrepo CS, Eraso A. Bronchiolitis: A Practical Approach for the General Radiologist-Erratum. Radiographics. 2017;37(5):1607.]]></itunes:summary><itunes:duration>773</itunes:duration><itunes:keywords>bronquiolites,centrolobular,dpoc,enfisema,panlobular</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>LINFONODOPATIAS CERVICAIS</title><link>https://www.spreaker.com/episode/linfonodopatias-cervicais--49550578</link><description><![CDATA[Referências Bibliográficas<br />1- Abdel Razek AA, Soliman NY, Elkhamary S, Alsharaway MK, Tawfik A. Role of diffusion-weighted MR imaging in cervical lymphadenopathy. Eur Radiol. 2006;16 (7): 1468-77. <br />2- Ahuja A, Ying M. Sonographic evaluation of cervical lymphadenopathy: is power Doppler sonography routinely indicated? Ultrasound Med Biol. 2003; 29 (3): 353-9.<br />3- Chong V. Cervical lymphadenopathy: what radiologists need to know. cancer imaging. 2004; 4 (2): 116-20.<br />4- Dudea SM, Lenghel M, Botar-Jid C, Vasilescu D, Duma M. Ultrasonography of superficial lymph nodes: benign vs. malignant. Med Ultrason. 2012; 14 (4): 294-306.<br />5- Gonçalves FG, Ovalle JP, Grieb DFJ, Torres CI, Chankwosky J, DelCarpio-O’Donovan R. Diffusion in the head and neck: an assessment beyond the anatomy. Radiol Bras. 2011; 44 (5): 308–314.<br />6- Gupta A, Rahman K, Shahid M, Kumar A, Qaseem SM, Hassan SA, et al. Sonographic assessment of cervical lymphadenopathy: role of high-resolution and color Doppler imaging. Head Neck. 2011; 33 (3): 297-302.<br />7- Hoang JK, Vanka J, Ludwig BJ, Glastonbury CM. Evaluation of cervical lymph nodes in head and neck cancer with CT and MRI: tips, traps, and a systematic approach. AJR. 2013; 200 (1): W17-25.<br />8- Ludwig BJ, Wang J, Nadgir RN, Saito N, Castro-Aragon I, Sakai O. Imaging of cervical lymphadenopathy in children and young adults. AJR. 2012; 199 (5): 1105-13.<br />9- Mouawad F, Rysman B, Russ G, Benoudiba F, Garcia G, Abgral R, Zerdoud S, et al. Cystic form of cervical lymphadenopathy. Guidelines of the French Society of Otorhinolaryngology - Head and Neck Surgery (SFORL). Part 1: Diagnostic procedures for lymphadenopathy in case of cervical mass with cystic aspect. Eur Ann Otorhinolaryngol Head Neck Dis. 2019; 136 (6): 489-496.<br />10- Rodriguez-Takeuchi SR, Renjifo ME, Medina FJ. RadioGraphics 2019; 39:2023–2037<br />11- Testa ML, Chojniak R, Sene LS, Damascena AS. Diffusion-weighted magnetic resonance imaging: biomarker for treatment response in oncology. Radiol Bras. 2013; 46 (3): 178–180.<br />12- Ying M, Ahuja A, Brook F. Accuracy of sonographic vascular features in differentiating different causes of cervical lymphadenopathy. Ultrasound Med Biol. 2004; 30 (4): 441-7.<br />13- Ying M, Bhatia KS, Lee YP, Yuen HY, Ahuja AT. Review of ultrasonography of malignant neck nodes: greyscale, Doppler, contrast enhancement and elastography. Cancer Imaging. 2014;13 (4): 658-669.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/49550578</guid><pubDate>Mon, 25 Apr 2022 20:13:31 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/49550578/linfonodopatias_cervicais.mp3" length="11529245" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências Bibliográficas
1- Abdel Razek AA, Soliman NY, Elkhamary S, Alsharaway MK, Tawfik A. Role of diffusion-weighted MR imaging in cervical lymphadenopathy. Eur Radiol. 2006;16 (7): 1468-77. 
2- Ahuja A, Ying M. Sonographic evaluation of...</itunes:subtitle><itunes:summary><![CDATA[Referências Bibliográficas<br />1- Abdel Razek AA, Soliman NY, Elkhamary S, Alsharaway MK, Tawfik A. Role of diffusion-weighted MR imaging in cervical lymphadenopathy. Eur Radiol. 2006;16 (7): 1468-77. <br />2- Ahuja A, Ying M. Sonographic evaluation of cervical lymphadenopathy: is power Doppler sonography routinely indicated? Ultrasound Med Biol. 2003; 29 (3): 353-9.<br />3- Chong V. Cervical lymphadenopathy: what radiologists need to know. cancer imaging. 2004; 4 (2): 116-20.<br />4- Dudea SM, Lenghel M, Botar-Jid C, Vasilescu D, Duma M. Ultrasonography of superficial lymph nodes: benign vs. malignant. Med Ultrason. 2012; 14 (4): 294-306.<br />5- Gonçalves FG, Ovalle JP, Grieb DFJ, Torres CI, Chankwosky J, DelCarpio-O’Donovan R. Diffusion in the head and neck: an assessment beyond the anatomy. Radiol Bras. 2011; 44 (5): 308–314.<br />6- Gupta A, Rahman K, Shahid M, Kumar A, Qaseem SM, Hassan SA, et al. Sonographic assessment of cervical lymphadenopathy: role of high-resolution and color Doppler imaging. Head Neck. 2011; 33 (3): 297-302.<br />7- Hoang JK, Vanka J, Ludwig BJ, Glastonbury CM. Evaluation of cervical lymph nodes in head and neck cancer with CT and MRI: tips, traps, and a systematic approach. AJR. 2013; 200 (1): W17-25.<br />8- Ludwig BJ, Wang J, Nadgir RN, Saito N, Castro-Aragon I, Sakai O. Imaging of cervical lymphadenopathy in children and young adults. AJR. 2012; 199 (5): 1105-13.<br />9- Mouawad F, Rysman B, Russ G, Benoudiba F, Garcia G, Abgral R, Zerdoud S, et al. Cystic form of cervical lymphadenopathy. Guidelines of the French Society of Otorhinolaryngology - Head and Neck Surgery (SFORL). Part 1: Diagnostic procedures for lymphadenopathy in case of cervical mass with cystic aspect. Eur Ann Otorhinolaryngol Head Neck Dis. 2019; 136 (6): 489-496.<br />10- Rodriguez-Takeuchi SR, Renjifo ME, Medina FJ. RadioGraphics 2019; 39:2023–2037<br />11- Testa ML, Chojniak R, Sene LS, Damascena AS. Diffusion-weighted magnetic resonance imaging: biomarker for treatment response in oncology. Radiol Bras. 2013; 46 (3): 178–180.<br />12- Ying M, Ahuja A, Brook F. Accuracy of sonographic vascular features in differentiating different causes of cervical lymphadenopathy. Ultrasound Med Biol. 2004; 30 (4): 441-7.<br />13- Ying M, Bhatia KS, Lee YP, Yuen HY, Ahuja AT. Review of ultrasonography of malignant neck nodes: greyscale, Doppler, contrast enhancement and elastography. Cancer Imaging. 2014;13 (4): 658-669.]]></itunes:summary><itunes:duration>721</itunes:duration><itunes:keywords>linfnodomegalias,linfonodopatias</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>DOENÇA DO COMPLEXO ENTESO-SINÓVIO-UNGUEAL NA PSORÍASE</title><link>https://www.spreaker.com/episode/doenca-do-complexo-enteso-sinovio-ungueal-na-psoriase--49539675</link><description><![CDATA[Referências<br />1. Acosta-Felquer ML, Ruta S, Rosa J, Marin J, Ferreyra-Garrot L, Galimberti ML, et al. Ultrasound entheseal abnormalities at the distal interphalangeal joints and clinical nail involvement in patients with psoriasis and psoriatic arthritis, supporting the nail-enthesitis theory. Semin Arthritis Rheum. 2017;47(3):338-42.<br />2. Acquacalda E, Albert C, Montaudie H, Fontas E, Danre A, Roux CH, et al. Ultrasound study of entheses in psoriasis patients with or without musculoskeletal symptoms: A prospective study. Joint Bone Spine. 2015;82(4):267-71.<br />3. Acquitter M, Misery L, Saraux A, Bressollette L, Jousse-Joulin S. Detection of subclinical ultrasound enthesopathy and nail disease in patients at risk of psoriatic arthritis. Joint Bone Spine. 2017;84(6):703-7.<br />4. Aydin SZ, Castillo-Gallego C, Ash ZR, Marzo-Ortega H, Emery P, Wakefield RJ, et al. Ultrasonographic assessment of nail in psoriatic disease shows a link between onychopathy and distal interphalangeal joint extensor tendon enthesopathy. Dermatology. 2012;225(3):231-5.<br />5. Bagel J, Schwartzman S. Enthesitis and Dactylitis in Psoriatic Disease: A Guide for Dermatologists. Am J Clin Dermatol. 2018;19(6):839-52.<br />6. Cunha JS, Qureshi AA, Reginato AM. Nail Enthesis Ultrasound in Psoriasis and Psoriatic Arthritis: A Report from the 2016 GRAPPA Annual Meeting. J Rheumatol. 2017;44(5):688-90.<br />7. Eder L, Aydin SZ. Imaging in Psoriatic Arthritis-Insights About Pathogenesis of the Disease. Curr Rheumatol Rep. 2018;20(12):77.<br />8. Gutierrez M, Wortsman X, Filippucci E, De Angelis R, Filosa G, Grassi W. High-frequency sonography in the evaluation of psoriasis: nail and skin involvement. J Ultrasound Med. 2009;28(11):1569-74.<br />9. Gutierrez-Manjarrez J, Gutierrez M, Bertolazzi C, Afaro-Rodriguez A, Pineda C. Ultrasound as a useful tool to integrate the clinical assessment of nail involvement in psoriatic arthritis. Reumatologia. 2018;56(1):42-4.<br />10. Idolazzi L, Zabotti A, Fassio A, Errichetti E, Benini C, Vantaggiato E, et al. The ultrasonographic study of the nail reveals differences in patients affected by inflammatory and degenerative conditions. Clin Rheumatol. 2019;38(3):913-20.<br />11. Krajewska-Wlodarczyk M, Owczarczyk-Saczonek A, Placek W, Wojtkiewicz M, Wiktorowicz A, Wojtkiewicz J. Distal interphalangeal joint extensor tendon enthesopathy in patients with nail psoriasis. Sci Rep. 2019;9(1):3628.<br />12. McGonagle D, Tan AL, Benjamin M. The nail as a musculoskeletal appendage--implications for an improved understanding of the link between psoriasis and arthritis. Dermatology. 2009;218(2):97-102.<br />13. McGonagle D, Tan AL. The enthesis in psoriatic arthritis. Clin Exp Rheumatol. 2015;33(5 Suppl 93):S36-9.<br />14. Mendonca JA, Aydin SZ, D'Agostino MA. The use of ultrasonography in the diagnosis of nail disease among patients with psoriasis and psoriatic arthritis: a systematic review. Adv Rheumatol. 2019;59(1):41.<br />15. Mondal S, Dutta S, Lahiri D, Sinha D, Sircar G, Mandal AK, et al. Assessment of nail unit structures by ultrasound in patients with psoriatic arthritis and their correlations with disease activity indices: a case-control study. Rheumatol Int. 2018;38(11):2087-93.<br />16. Naredo E, Janta I, Baniandres-Rodriguez O, Valor L, Hinojosa M, Bello N, et al. To what extend is nail ultrasound discriminative between psoriasis, psoriatic arthritis and healthy subjects? Rheumatol Int. 2019;39(4):697-705.<br />17. Tan AL, Benjamin M, Toumi H, Grainger AJ, Tanner SF, Emery P, et al. The relationship between the extensor tendon enthesis and the nail in distal interphalangeal joint disease in psoriatic arthritis--a high-resolution MRI and histological study. Rheumatology (Oxford). 2007;46(2):253-6.<br />18. Zabotti A, Idolazzi L, Batticciotto A, De Lucia O, Scire CA, Tinazzi I, et al. Enthesitis of the hands in psoriatic arthritis: an ultrasonographic perspective. Med Ultrason. 2017;19(4):438-43.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/49539675</guid><pubDate>Sun, 24 Apr 2022 22:47:07 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/49539675/doenca_do_complexo_enteso_sinovio_ungueal_na_psoriase.mp3" length="6357418" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1. Acosta-Felquer ML, Ruta S, Rosa J, Marin J, Ferreyra-Garrot L, Galimberti ML, et al. Ultrasound entheseal abnormalities at the distal interphalangeal joints and clinical nail involvement in patients with psoriasis and psoriatic...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1. Acosta-Felquer ML, Ruta S, Rosa J, Marin J, Ferreyra-Garrot L, Galimberti ML, et al. Ultrasound entheseal abnormalities at the distal interphalangeal joints and clinical nail involvement in patients with psoriasis and psoriatic arthritis, supporting the nail-enthesitis theory. Semin Arthritis Rheum. 2017;47(3):338-42.<br />2. Acquacalda E, Albert C, Montaudie H, Fontas E, Danre A, Roux CH, et al. Ultrasound study of entheses in psoriasis patients with or without musculoskeletal symptoms: A prospective study. Joint Bone Spine. 2015;82(4):267-71.<br />3. Acquitter M, Misery L, Saraux A, Bressollette L, Jousse-Joulin S. Detection of subclinical ultrasound enthesopathy and nail disease in patients at risk of psoriatic arthritis. Joint Bone Spine. 2017;84(6):703-7.<br />4. Aydin SZ, Castillo-Gallego C, Ash ZR, Marzo-Ortega H, Emery P, Wakefield RJ, et al. Ultrasonographic assessment of nail in psoriatic disease shows a link between onychopathy and distal interphalangeal joint extensor tendon enthesopathy. Dermatology. 2012;225(3):231-5.<br />5. Bagel J, Schwartzman S. Enthesitis and Dactylitis in Psoriatic Disease: A Guide for Dermatologists. Am J Clin Dermatol. 2018;19(6):839-52.<br />6. Cunha JS, Qureshi AA, Reginato AM. Nail Enthesis Ultrasound in Psoriasis and Psoriatic Arthritis: A Report from the 2016 GRAPPA Annual Meeting. J Rheumatol. 2017;44(5):688-90.<br />7. Eder L, Aydin SZ. Imaging in Psoriatic Arthritis-Insights About Pathogenesis of the Disease. Curr Rheumatol Rep. 2018;20(12):77.<br />8. Gutierrez M, Wortsman X, Filippucci E, De Angelis R, Filosa G, Grassi W. High-frequency sonography in the evaluation of psoriasis: nail and skin involvement. J Ultrasound Med. 2009;28(11):1569-74.<br />9. Gutierrez-Manjarrez J, Gutierrez M, Bertolazzi C, Afaro-Rodriguez A, Pineda C. Ultrasound as a useful tool to integrate the clinical assessment of nail involvement in psoriatic arthritis. Reumatologia. 2018;56(1):42-4.<br />10. Idolazzi L, Zabotti A, Fassio A, Errichetti E, Benini C, Vantaggiato E, et al. The ultrasonographic study of the nail reveals differences in patients affected by inflammatory and degenerative conditions. Clin Rheumatol. 2019;38(3):913-20.<br />11. Krajewska-Wlodarczyk M, Owczarczyk-Saczonek A, Placek W, Wojtkiewicz M, Wiktorowicz A, Wojtkiewicz J. Distal interphalangeal joint extensor tendon enthesopathy in patients with nail psoriasis. Sci Rep. 2019;9(1):3628.<br />12. McGonagle D, Tan AL, Benjamin M. The nail as a musculoskeletal appendage--implications for an improved understanding of the link between psoriasis and arthritis. Dermatology. 2009;218(2):97-102.<br />13. McGonagle D, Tan AL. The enthesis in psoriatic arthritis. Clin Exp Rheumatol. 2015;33(5 Suppl 93):S36-9.<br />14. Mendonca JA, Aydin SZ, D'Agostino MA. The use of ultrasonography in the diagnosis of nail disease among patients with psoriasis and psoriatic arthritis: a systematic review. Adv Rheumatol. 2019;59(1):41.<br />15. Mondal S, Dutta S, Lahiri D, Sinha D, Sircar G, Mandal AK, et al. Assessment of nail unit structures by ultrasound in patients with psoriatic arthritis and their correlations with disease activity indices: a case-control study. Rheumatol Int. 2018;38(11):2087-93.<br />16. Naredo E, Janta I, Baniandres-Rodriguez O, Valor L, Hinojosa M, Bello N, et al. To what extend is nail ultrasound discriminative between psoriasis, psoriatic arthritis and healthy subjects? Rheumatol Int. 2019;39(4):697-705.<br />17. Tan AL, Benjamin M, Toumi H, Grainger AJ, Tanner SF, Emery P, et al. The relationship between the extensor tendon enthesis and the nail in distal interphalangeal joint disease in psoriatic arthritis--a high-resolution MRI and histological study. Rheumatology (Oxford). 2007;46(2):253-6.<br />18. Zabotti A, Idolazzi L, Batticciotto A, De Lucia O, Scire CA, Tinazzi I, et al. Enthesitis of the hands in psoriatic arthritis: an ultrasonographic perspective. Med Ultrason. 2017;19(4):438-43.]]></itunes:summary><itunes:duration>398</itunes:duration><itunes:keywords>artrite,artritepsoriásica,entese,powerdoppler,psoríase</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ROTURA DO PEITORAL MAIOR</title><link>https://www.spreaker.com/episode/rotura-do-peitoral-maior--49520713</link><guid isPermaLink="false">https://api.spreaker.com/episode/49520713</guid><pubDate>Fri, 22 Apr 2022 21:47:35 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/49520713/rotura_do_peitoral_maior.mp3" length="3624801" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>227</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>CONCEITOS BÁSICOS SOBRE FÍSICA DA ULTRASSONOGRAFIA</title><link>https://www.spreaker.com/episode/conceitos-basicos-sobre-fisica-da-ultrassonografia--48713343</link><description><![CDATA[Complementação ao hands onde ultrassonografia]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/48713343</guid><pubDate>Sun, 13 Feb 2022 14:32:35 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/48713343/conceitos_basicos_sobre_fisica_da_ultrassonografia.mp3" length="8979276" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Complementação ao hands onde ultrassonografia</itunes:subtitle><itunes:summary><![CDATA[Complementação ao hands onde 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REUMATOIDE REFRATÁRIA</title><link>https://www.spreaker.com/episode/o-que-o-radiologista-precisa-saber-sobre-artrite-reumatoide-refrataria--47101426</link><description><![CDATA[Melville AR, Kearsley-Fleet L, Buch MH, Hyrich KL. Understanding Refractory Rheumatoid Arthritis: Implications for a Therapeutic Approach. Drugs. 2020;80(9):849-57.<br />Buch MH, Eyre S, McGonagle D. Persistent inflammatory and non-inflammatory mechanisms in refractory rheumatoid arthritis. Nat Rev Rheumatol. 2021;17(1):17-33.<br />Buch MH. Defining refractory rheumatoid arthritis. Ann Rheum Dis. 2018;77(7):966-9.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/47101426</guid><pubDate>Fri, 22 Oct 2021 16:49:33 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/47101426/o_que_o_radiologista_precisa_saber_sobre_artrite_reumatoide_refrataria.mp3" length="4165222" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Melville AR, Kearsley-Fleet L, Buch MH, Hyrich KL. Understanding Refractory Rheumatoid Arthritis: Implications for a Therapeutic Approach. Drugs. 2020;80(9):849-57.
Buch MH, Eyre S, McGonagle D. Persistent inflammatory and non-inflammatory mechanisms...</itunes:subtitle><itunes:summary><![CDATA[Melville AR, Kearsley-Fleet L, Buch MH, Hyrich KL. Understanding Refractory Rheumatoid Arthritis: Implications for a Therapeutic Approach. Drugs. 2020;80(9):849-57.<br />Buch MH, Eyre S, McGonagle D. Persistent inflammatory and non-inflammatory mechanisms in refractory rheumatoid arthritis. Nat Rev Rheumatol. 2021;17(1):17-33.<br />Buch MH. Defining refractory rheumatoid arthritis. Ann Rheum Dis. 2018;77(7):966-9.]]></itunes:summary><itunes:duration>261</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>DOENÇA PULMONAR NA ESCLEROSE SISTÊMICA</title><link>https://www.spreaker.com/episode/doenca-pulmonar-na-esclerose-sistemica--47005194</link><description><![CDATA[PODCAST DA AULA MINISTRADA NA JORNADA DE REUMATOLOGIA DO RIO DE JANEIRO 2021]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/47005194</guid><pubDate>Sat, 16 Oct 2021 13:50:08 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/47005194/doenca_pulmonar_na_esclerose_sistemica.mp3" length="4610766" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>PODCAST DA AULA MINISTRADA NA JORNADA DE REUMATOLOGIA DO RIO DE JANEIRO 2021</itunes:subtitle><itunes:summary><![CDATA[PODCAST DA AULA MINISTRADA NA JORNADA DE REUMATOLOGIA DO RIO DE JANEIRO 2021]]></itunes:summary><itunes:duration>289</itunes:duration><itunes:keywords>esclerosesistemica,pines,piu</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>COMPLICAÇÕES MUSCULOESQUELÉTICAS RELACIONADAS À COVID-19</title><link>https://www.spreaker.com/episode/complicacoes-musculoesqueleticas-relacionadas-a-covid-19--46903612</link><description><![CDATA[Referências<br />1.Kanmaniraja D, Le J, Hsu K, Lee JS, McClelland A, Slasky SE, et al. Review of COVID-19, part 2: Musculoskeletal and neuroimaging manifestations including vascular involvement of the aorta and extremities. Clin Imaging. 2021;79:300-13.<br />2.Crivelenti L, Frazao MMN, Maia MPM, Gomes FHR, de Carvalho LM. Chronic arthritis related to SARS-CoV-2 infection in a pediatric patient: A case report. Braz J Infect Dis. 2021;25(3):101585.<br />3.Disser NP, De Micheli AJ, Schonk MM, Konnaris MA, Piacentini AN, Edon DL, et al. Musculoskeletal Consequences of COVID-19. J Bone Joint Surg Am. 2020;102(14):1197-204.<br />4.Ramani SL, Samet J, Franz CK, Hsieh C, Nguyen CV, Horbinski C, et al. Musculoskeletal involvement of COVID-19: review of imaging. Skeletal Radiol. 2021;50(9):1763-73.<br />5.Revzin MV, Raza S, Srivastava NC, Warshawsky R, D'Agostino C, Malhotra A, et al. Multisystem Imaging Manifestations of COVID-19, Part 2: From Cardiac Complications to Pediatric Manifestations. Radiographics. 2020;40(7):1866-92.<br />6.Patel Z, Franz CK, Bharat A, Walter JM, Wolfe LF, Koralnik IJ, et al. Diaphragm and Phrenic Nerve Ultrasound in COVID-19 Patients and Beyond: Imaging Technique, Findings, and Clinical Applications. J Ultrasound Med. 2021.<br />7.Taleja H. Spontaneous Hematomas in COVID-19 Patients on Low-Molecular-Weight Heparin. Dubai Med J. 2021.<br />8.Conway R, Konig MF, Graef ER, Webb K, Yazdany J, Kim AHJ. Inflammatory arthritis in patients with COVID-19. Transl Res. 2021;232:49-59.<br />9.Kobayashi S, Taniguchi Y, Kida I, Tamura N. SARS-CoV2-triggered acute arthritis: Viral arthritis rather than reactive arthritis. J Med Virol. 2021.<br />10.Colatutto D, Sonaglia A, Zabotti A, Cereser L, Girometti R, Quartuccio L. Post-COVID-19 Arthritis and Sacroiliitis: Natural History with Longitudinal Magnetic Resonance Imaging Study in Two Cases and Review of the Literature. Viruses. 2021;13(8).<br />11.Hoong CWS, Amin M, Tan TC, Lee JE. Viral arthralgia a new manifestation of COVID-19 infection? A cohort study of COVID-19-associated musculoskeletal symptoms. Int J Infect Dis. 2021;104:363-9.<br />12.Kocyigit BF, Akyol A. Reactive arthritis after COVID-19: a case-based review. Rheumatol Int. 2021;41(11):2031-9.<br />13.Mukarram MS, Ishaq Ghauri M, Sethar S, Afsar N, Riaz A, Ishaq K. COVID-19: An Emerging Culprit of Inflammatory Arthritis. Case Rep Rheumatol. 2021;2021:6610340.<br />14.Zacharias H, Dubey S, Koduri G, D'Cruz D. Rheumatological complications of Covid 19. Autoimmun Rev. 2021;20(9):102883.<br />15.Ciaffi J, Mancarella L, Borlandelli E, Facchini G, Meliconi R, Ursini F. May polyenthesitis follow COVID-19? Joint Bone Spine. 2021;88(3):105158.<br />16.Zeidler H, Hudson AP. Reactive Arthritis Update: Spotlight on New and Rare Infectious Agents Implicated as Pathogens. Curr Rheumatol Rep. 2021;23(7):53.<br />17.Bureau BL, Obeidat A, Dhariwal MS, Jha P. Peripheral Neuropathy as a Complication of SARS-Cov-2. Cureus. 2020;12(11):e11452.<br />18.Soliman SB, Klochko CL, Dhillon MK, Vandermissen NR, van Holsbeeck MT. Peripheral Polyneuropathy Associated with COVID-19 in Two Patients: A Musculoskeletal Ultrasound Case Report. J Med Ultrasound. 2020;28(4):249-52.<br />19.Finsterer J. Comment on Peripheral Polyneuropathy Associated with COVID-19 in Two Patients: A Musculoskeletal Ultrasound Case Report. J Med Ultrasound. 2021;29(2):134-5.<br />20.Soliman SB. Reply to Comment on Peripheral Polyneuropathy Associated with COVID-19 in Two Patients: A Musculoskeletal Ultrasound Case Report. J Med Ultrasound. 2021;29(2):136-7.<br />21.Cantarelli Rodrigues T, Hidalgo PF, Skaf AY, Serfaty A. Subacromial-subdeltoid bursitis following COVID-19 vaccination: a case of shoulder injury related to vaccine administration (SIRVA). Skeletal Radiol. 2021;50(11):2293-7.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46903612</guid><pubDate>Sun, 10 Oct 2021 00:26:42 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46903612/complicacoes_musculoesqueleticas_relacionadas_a_covid_19.mp3" length="8308869" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Kanmaniraja D, Le J, Hsu K, Lee JS, McClelland A, Slasky SE, et al. Review of COVID-19, part 2: Musculoskeletal and neuroimaging manifestations including vascular involvement of the aorta and extremities. Clin Imaging. 2021;79:300-13....</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Kanmaniraja D, Le J, Hsu K, Lee JS, McClelland A, Slasky SE, et al. Review of COVID-19, part 2: Musculoskeletal and neuroimaging manifestations including vascular involvement of the aorta and extremities. Clin Imaging. 2021;79:300-13.<br />2.Crivelenti L, Frazao MMN, Maia MPM, Gomes FHR, de Carvalho LM. Chronic arthritis related to SARS-CoV-2 infection in a pediatric patient: A case report. Braz J Infect Dis. 2021;25(3):101585.<br />3.Disser NP, De Micheli AJ, Schonk MM, Konnaris MA, Piacentini AN, Edon DL, et al. Musculoskeletal Consequences of COVID-19. J Bone Joint Surg Am. 2020;102(14):1197-204.<br />4.Ramani SL, Samet J, Franz CK, Hsieh C, Nguyen CV, Horbinski C, et al. Musculoskeletal involvement of COVID-19: review of imaging. Skeletal Radiol. 2021;50(9):1763-73.<br />5.Revzin MV, Raza S, Srivastava NC, Warshawsky R, D'Agostino C, Malhotra A, et al. Multisystem Imaging Manifestations of COVID-19, Part 2: From Cardiac Complications to Pediatric Manifestations. Radiographics. 2020;40(7):1866-92.<br />6.Patel Z, Franz CK, Bharat A, Walter JM, Wolfe LF, Koralnik IJ, et al. Diaphragm and Phrenic Nerve Ultrasound in COVID-19 Patients and Beyond: Imaging Technique, Findings, and Clinical Applications. J Ultrasound Med. 2021.<br />7.Taleja H. Spontaneous Hematomas in COVID-19 Patients on Low-Molecular-Weight Heparin. Dubai Med J. 2021.<br />8.Conway R, Konig MF, Graef ER, Webb K, Yazdany J, Kim AHJ. Inflammatory arthritis in patients with COVID-19. Transl Res. 2021;232:49-59.<br />9.Kobayashi S, Taniguchi Y, Kida I, Tamura N. SARS-CoV2-triggered acute arthritis: Viral arthritis rather than reactive arthritis. J Med Virol. 2021.<br />10.Colatutto D, Sonaglia A, Zabotti A, Cereser L, Girometti R, Quartuccio L. Post-COVID-19 Arthritis and Sacroiliitis: Natural History with Longitudinal Magnetic Resonance Imaging Study in Two Cases and Review of the Literature. Viruses. 2021;13(8).<br />11.Hoong CWS, Amin M, Tan TC, Lee JE. Viral arthralgia a new manifestation of COVID-19 infection? A cohort study of COVID-19-associated musculoskeletal symptoms. Int J Infect Dis. 2021;104:363-9.<br />12.Kocyigit BF, Akyol A. Reactive arthritis after COVID-19: a case-based review. Rheumatol Int. 2021;41(11):2031-9.<br />13.Mukarram MS, Ishaq Ghauri M, Sethar S, Afsar N, Riaz A, Ishaq K. COVID-19: An Emerging Culprit of Inflammatory Arthritis. Case Rep Rheumatol. 2021;2021:6610340.<br />14.Zacharias H, Dubey S, Koduri G, D'Cruz D. Rheumatological complications of Covid 19. Autoimmun Rev. 2021;20(9):102883.<br />15.Ciaffi J, Mancarella L, Borlandelli E, Facchini G, Meliconi R, Ursini F. May polyenthesitis follow COVID-19? Joint Bone Spine. 2021;88(3):105158.<br />16.Zeidler H, Hudson AP. Reactive Arthritis Update: Spotlight on New and Rare Infectious Agents Implicated as Pathogens. Curr Rheumatol Rep. 2021;23(7):53.<br />17.Bureau BL, Obeidat A, Dhariwal MS, Jha P. Peripheral Neuropathy as a Complication of SARS-Cov-2. Cureus. 2020;12(11):e11452.<br />18.Soliman SB, Klochko CL, Dhillon MK, Vandermissen NR, van Holsbeeck MT. Peripheral Polyneuropathy Associated with COVID-19 in Two Patients: A Musculoskeletal Ultrasound Case Report. J Med Ultrasound. 2020;28(4):249-52.<br />19.Finsterer J. Comment on Peripheral Polyneuropathy Associated with COVID-19 in Two Patients: A Musculoskeletal Ultrasound Case Report. J Med Ultrasound. 2021;29(2):134-5.<br />20.Soliman SB. Reply to Comment on Peripheral Polyneuropathy Associated with COVID-19 in Two Patients: A Musculoskeletal Ultrasound Case Report. J Med Ultrasound. 2021;29(2):136-7.<br />21.Cantarelli Rodrigues T, Hidalgo PF, Skaf AY, Serfaty A. Subacromial-subdeltoid bursitis following COVID-19 vaccination: a case of shoulder injury related to vaccine administration (SIRVA). Skeletal Radiol. 2021;50(11):2293-7.]]></itunes:summary><itunes:duration>520</itunes:duration><itunes:keywords>covid-19,es</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>COVID-19: VERDADES E DÚVIDAS. ATUALIZAÇÃO EM SETEMBRO DE 2021. PARTE V: COVID-19 PÓS-AGUDA</title><link>https://www.spreaker.com/episode/covid-19-verdades-e-duvidas-atualizacao-em-setembro-de-2021-parte-v-covid-19-pos-aguda--46699350</link><description><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller NL, Muller CIS, Walsh JP, Jalal S, et al. RSNA Expert Consensus Statement on Reporting Chest CT Findings Related to COVID-19: Interobserver Agreement Between Chest Radiologists. Can Assoc Radiol J. 2021;72(1):159-66.<br />21.Fonseca E, Loureiro BMC, Strabelli DG, Farias LPG, Garcia JVR, Gama VAA, et al. Evaluation of the RSNA and CORADS classifications for COVID-19 on chest computed tomography in the Brazilian population. Clinics (Sao Paulo). 2021;76:e2476.<br />22.Barisione E, Grillo F, Ball L, Bianchi R, Grosso M, Morbini P, et al. Fibrotic progression and radiologic correlation in matched lung samples from COVID-19 post-mortems. Virchows Arch. 2021;478(3):471-85.<br />23.Kianzad A, Meijboom LJ, Nossent EJ, Roos E, Schurink B, Bonta PI, et al. COVID-19: Histopathological correlates of imaging patterns on chest computed tomography. Respirology. 2021;26(9):869-77.<br />24.Aesif SW, Bribriesco AC, Yadav R, Nugent SL, Zubkus D, Tan CD, et al. Pulmonary Pathology of COVID-19 Following 8 Weeks to 4 Months of Severe Disease: A Report of Three Cases, Including One With Bilateral Lung Transplantation. Am J Clin Pathol. 2021;155(4):506-14.<br />25.De Cobelli F, Palumbo D, Ciceri F, Landoni G, Ruggeri A, Rovere-Querini P, et al. Pulmonary Vascular Thrombosis in COVID-19 Pneumonia. J Cardiothorac Vasc Anesth. 2021.<br />26.Vlachou M, Drebes A, Candilio L, Weeraman D, Mir N, Murch N, et al. Pulmonary thrombosis in Covid-19: before, during and after hospital admission. J Thromb Thrombolysis. 2021;51(4):978-84.<br />27.Caruso D, Guido G, Zerunian M, Polidori T, Lucertini E, Pucciarelli F, et al. Postacute Sequelae of COVID-19 Pneumonia: 6-month Chest CT Follow-up. Radiology. 2021:210834.<br />28.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />29.Solomon JJ, Heyman B, Ko JP, Condos R, Lynch DA. CT of Post-Acute Lung Complications of COVID-19. Radiology. 2021:211396.<br />30.Wells AU, Devaraj A, Desai SR. Interstitial Lung Disease after COVID-19 Infection: A Catalog of Uncertainties. Radiology. 2021;299(1):E216-E8.<br />31.Han X, Fan Y, Alwalid O, Zhang X, Jia X, Zheng Y, et al. Fibrotic Interstitial Lung Abnormalities at 1-year Follow-up CT after Severe COVID-19. Radiology. 2021:210972.<br />32.Lindahl A, Reijula J, Malmberg LP, Aro M, Vasankari T, Makela MJ. Small airway function in Finnish COVID-19 survivors. Respir Res. 2021;22(1):237.<br />33.Small Airways Disease is a Post-Acute Sequelae of SARS-CoV-2 Infection<br /> [Internet]. 2021.<br />34.Lopes AJ, Mafort TT, da Cal MS, Monnerat LB, Litrento PF, Ramos I, et al. Impulse Oscillometry Findings and Their Associations With Lung Ultrasound Signs in COVID-19 Survivors. Respir Care. 2021.<br />35.Wells AU, Devaraj A. Residual Lung Disease at 6-month Follow-up CT after COVID-19: Clinical Significance Is a Key Issue. Radiology. 2021:211284.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46699350</guid><pubDate>Sun, 26 Sep 2021 23:23:54 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46699350/covid_19_verdades_e_duvidas_atualizacao_em_setembro_de_2021_parte_v_covid_19_pos_aguda.mp3" length="2508013" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.
2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller...]]></itunes:summary><itunes:duration>157</itunes:duration><itunes:keywords>covid-19,covidlonga,pós-aguda</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>COVID-19: VERDADES E DÚVIDAS. ATUALIZAÇÃO DE SETEMBRO DE 2021. PARTE IV: DOENÇA TROMBOEMBÓLICA</title><link>https://www.spreaker.com/episode/covid-19-verdades-e-duvidas-atualizacao-de-setembro-de-2021-parte-iv-doenca-tromboembolica--46699258</link><description><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller NL, Muller CIS, Walsh JP, Jalal S, et al. RSNA Expert Consensus Statement on Reporting Chest CT Findings Related to COVID-19: Interobserver Agreement Between Chest Radiologists. Can Assoc Radiol J. 2021;72(1):159-66.<br />21.Fonseca E, Loureiro BMC, Strabelli DG, Farias LPG, Garcia JVR, Gama VAA, et al. Evaluation of the RSNA and CORADS classifications for COVID-19 on chest computed tomography in the Brazilian population. Clinics (Sao Paulo). 2021;76:e2476.<br />22.Barisione E, Grillo F, Ball L, Bianchi R, Grosso M, Morbini P, et al. Fibrotic progression and radiologic correlation in matched lung samples from COVID-19 post-mortems. Virchows Arch. 2021;478(3):471-85.<br />23.Kianzad A, Meijboom LJ, Nossent EJ, Roos E, Schurink B, Bonta PI, et al. COVID-19: Histopathological correlates of imaging patterns on chest computed tomography. Respirology. 2021;26(9):869-77.<br />24.Aesif SW, Bribriesco AC, Yadav R, Nugent SL, Zubkus D, Tan CD, et al. Pulmonary Pathology of COVID-19 Following 8 Weeks to 4 Months of Severe Disease: A Report of Three Cases, Including One With Bilateral Lung Transplantation. Am J Clin Pathol. 2021;155(4):506-14.<br />25.De Cobelli F, Palumbo D, Ciceri F, Landoni G, Ruggeri A, Rovere-Querini P, et al. Pulmonary Vascular Thrombosis in COVID-19 Pneumonia. J Cardiothorac Vasc Anesth. 2021.<br />26.Vlachou M, Drebes A, Candilio L, Weeraman D, Mir N, Murch N, et al. Pulmonary thrombosis in Covid-19: before, during and after hospital admission. J Thromb Thrombolysis. 2021;51(4):978-84.<br />27.Caruso D, Guido G, Zerunian M, Polidori T, Lucertini E, Pucciarelli F, et al. Postacute Sequelae of COVID-19 Pneumonia: 6-month Chest CT Follow-up. Radiology. 2021:210834.<br />28.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />29.Solomon JJ, Heyman B, Ko JP, Condos R, Lynch DA. CT of Post-Acute Lung Complications of COVID-19. Radiology. 2021:211396.<br />30.Wells AU, Devaraj A, Desai SR. Interstitial Lung Disease after COVID-19 Infection: A Catalog of Uncertainties. Radiology. 2021;299(1):E216-E8.<br />31.Han X, Fan Y, Alwalid O, Zhang X, Jia X, Zheng Y, et al. Fibrotic Interstitial Lung Abnormalities at 1-year Follow-up CT after Severe COVID-19. Radiology. 2021:210972.<br />32.Lindahl A, Reijula J, Malmberg LP, Aro M, Vasankari T, Makela MJ. Small airway function in Finnish COVID-19 survivors. Respir Res. 2021;22(1):237.<br />33.Small Airways Disease is a Post-Acute Sequelae of SARS-CoV-2 Infection<br /> [Internet]. 2021.<br />34.Lopes AJ, Mafort TT, da Cal MS, Monnerat LB, Litrento PF, Ramos I, et al. Impulse Oscillometry Findings and Their Associations With Lung Ultrasound Signs in COVID-19 Survivors. Respir Care. 2021.<br />35.Wells AU, Devaraj A. Residual Lung Disease at 6-month Follow-up CT after COVID-19: Clinical Significance Is a Key Issue. Radiology. 2021:211284.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46699258</guid><pubDate>Sun, 26 Sep 2021 23:16:04 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46699258/covid_19_verdades_e_duvidas_parte_iv_doenca_tromboembolica.mp3" length="1535004" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.
2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller...]]></itunes:summary><itunes:duration>96</itunes:duration><itunes:keywords>covid-19,emboliapulmonar,tep</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>COVID-19: VERDADES E DÚVIDAS. ATUALIZAÇÃO DE SETEMBRO DE 2021. PARTE III: COMPARAÇÕES ENTRE A TC E HISTOPATOLOGIA</title><link>https://www.spreaker.com/episode/covid-19-verdades-e-duvidas-atualizacao-de-setembro-de-2021-parte-iii-comparacoes-entre-a-tc-e-histopatologia--46699228</link><description><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller NL, Muller CIS, Walsh JP, Jalal S, et al. RSNA Expert Consensus Statement on Reporting Chest CT Findings Related to COVID-19: Interobserver Agreement Between Chest Radiologists. Can Assoc Radiol J. 2021;72(1):159-66.<br />21.Fonseca E, Loureiro BMC, Strabelli DG, Farias LPG, Garcia JVR, Gama VAA, et al. Evaluation of the RSNA and CORADS classifications for COVID-19 on chest computed tomography in the Brazilian population. Clinics (Sao Paulo). 2021;76:e2476.<br />22.Barisione E, Grillo F, Ball L, Bianchi R, Grosso M, Morbini P, et al. Fibrotic progression and radiologic correlation in matched lung samples from COVID-19 post-mortems. Virchows Arch. 2021;478(3):471-85.<br />23.Kianzad A, Meijboom LJ, Nossent EJ, Roos E, Schurink B, Bonta PI, et al. COVID-19: Histopathological correlates of imaging patterns on chest computed tomography. Respirology. 2021;26(9):869-77.<br />24.Aesif SW, Bribriesco AC, Yadav R, Nugent SL, Zubkus D, Tan CD, et al. Pulmonary Pathology of COVID-19 Following 8 Weeks to 4 Months of Severe Disease: A Report of Three Cases, Including One With Bilateral Lung Transplantation. Am J Clin Pathol. 2021;155(4):506-14.<br />25.De Cobelli F, Palumbo D, Ciceri F, Landoni G, Ruggeri A, Rovere-Querini P, et al. Pulmonary Vascular Thrombosis in COVID-19 Pneumonia. J Cardiothorac Vasc Anesth. 2021.<br />26.Vlachou M, Drebes A, Candilio L, Weeraman D, Mir N, Murch N, et al. Pulmonary thrombosis in Covid-19: before, during and after hospital admission. J Thromb Thrombolysis. 2021;51(4):978-84.<br />27.Caruso D, Guido G, Zerunian M, Polidori T, Lucertini E, Pucciarelli F, et al. Postacute Sequelae of COVID-19 Pneumonia: 6-month Chest CT Follow-up. Radiology. 2021:210834.<br />28.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />29.Solomon JJ, Heyman B, Ko JP, Condos R, Lynch DA. CT of Post-Acute Lung Complications of COVID-19. Radiology. 2021:211396.<br />30.Wells AU, Devaraj A, Desai SR. Interstitial Lung Disease after COVID-19 Infection: A Catalog of Uncertainties. Radiology. 2021;299(1):E216-E8.<br />31.Han X, Fan Y, Alwalid O, Zhang X, Jia X, Zheng Y, et al. Fibrotic Interstitial Lung Abnormalities at 1-year Follow-up CT after Severe COVID-19. Radiology. 2021:210972.<br />32.Lindahl A, Reijula J, Malmberg LP, Aro M, Vasankari T, Makela MJ. Small airway function in Finnish COVID-19 survivors. Respir Res. 2021;22(1):237.<br />33.Small Airways Disease is a Post-Acute Sequelae of SARS-CoV-2 Infection<br /> [Internet]. 2021.<br />34.Lopes AJ, Mafort TT, da Cal MS, Monnerat LB, Litrento PF, Ramos I, et al. Impulse Oscillometry Findings and Their Associations With Lung Ultrasound Signs in COVID-19 Survivors. Respir Care. 2021.<br />35.Wells AU, Devaraj A. Residual Lung Disease at 6-month Follow-up CT after COVID-19: Clinical Significance Is a Key Issue. Radiology. 2021:211284.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46699228</guid><pubDate>Sun, 26 Sep 2021 23:12:00 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46699228/covid_19_verdades_e_duvidas_parte_iii_comparacoes_entre_a_tc_e_histopatologia.mp3" length="2042406" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.
2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller...]]></itunes:summary><itunes:duration>128</itunes:duration><itunes:keywords>covid-19,tc</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>COVID-19: VERDADES E DÚVIDAS. ATUALIZAÇÃO DE SETEMBRO DE 2021. PARTE II: PROTOCOLOS DE LEITURA DA RSNA E O CORADS</title><link>https://www.spreaker.com/episode/covid-19-verdades-e-duvidas-atualizacao-de-setembro-de-2021-parte-ii-protocolos-de-leitura-da-rsna-e-o-corads--46699188</link><description><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller NL, Muller CIS, Walsh JP, Jalal S, et al. RSNA Expert Consensus Statement on Reporting Chest CT Findings Related to COVID-19: Interobserver Agreement Between Chest Radiologists. Can Assoc Radiol J. 2021;72(1):159-66.<br />21.Fonseca E, Loureiro BMC, Strabelli DG, Farias LPG, Garcia JVR, Gama VAA, et al. Evaluation of the RSNA and CORADS classifications for COVID-19 on chest computed tomography in the Brazilian population. Clinics (Sao Paulo). 2021;76:e2476.<br />22.Barisione E, Grillo F, Ball L, Bianchi R, Grosso M, Morbini P, et al. Fibrotic progression and radiologic correlation in matched lung samples from COVID-19 post-mortems. Virchows Arch. 2021;478(3):471-85.<br />23.Kianzad A, Meijboom LJ, Nossent EJ, Roos E, Schurink B, Bonta PI, et al. COVID-19: Histopathological correlates of imaging patterns on chest computed tomography. Respirology. 2021;26(9):869-77.<br />24.Aesif SW, Bribriesco AC, Yadav R, Nugent SL, Zubkus D, Tan CD, et al. Pulmonary Pathology of COVID-19 Following 8 Weeks to 4 Months of Severe Disease: A Report of Three Cases, Including One With Bilateral Lung Transplantation. Am J Clin Pathol. 2021;155(4):506-14.<br />25.De Cobelli F, Palumbo D, Ciceri F, Landoni G, Ruggeri A, Rovere-Querini P, et al. Pulmonary Vascular Thrombosis in COVID-19 Pneumonia. J Cardiothorac Vasc Anesth. 2021.<br />26.Vlachou M, Drebes A, Candilio L, Weeraman D, Mir N, Murch N, et al. Pulmonary thrombosis in Covid-19: before, during and after hospital admission. J Thromb Thrombolysis. 2021;51(4):978-84.<br />27.Caruso D, Guido G, Zerunian M, Polidori T, Lucertini E, Pucciarelli F, et al. Postacute Sequelae of COVID-19 Pneumonia: 6-month Chest CT Follow-up. Radiology. 2021:210834.<br />28.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />29.Solomon JJ, Heyman B, Ko JP, Condos R, Lynch DA. CT of Post-Acute Lung Complications of COVID-19. Radiology. 2021:211396.<br />30.Wells AU, Devaraj A, Desai SR. Interstitial Lung Disease after COVID-19 Infection: A Catalog of Uncertainties. Radiology. 2021;299(1):E216-E8.<br />31.Han X, Fan Y, Alwalid O, Zhang X, Jia X, Zheng Y, et al. Fibrotic Interstitial Lung Abnormalities at 1-year Follow-up CT after Severe COVID-19. Radiology. 2021:210972.<br />32.Lindahl A, Reijula J, Malmberg LP, Aro M, Vasankari T, Makela MJ. Small airway function in Finnish COVID-19 survivors. Respir Res. 2021;22(1):237.<br />33.Small Airways Disease is a Post-Acute Sequelae of SARS-CoV-2 Infection<br /> [Internet]. 2021.<br />34.Lopes AJ, Mafort TT, da Cal MS, Monnerat LB, Litrento PF, Ramos I, et al. Impulse Oscillometry Findings and Their Associations With Lung Ultrasound Signs in COVID-19 Survivors. Respir Care. 2021.<br />35.Wells AU, Devaraj A. Residual Lung Disease at 6-month Follow-up CT after COVID-19: Clinical Significance Is a Key Issue. Radiology. 2021:211284.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46699188</guid><pubDate>Sun, 26 Sep 2021 23:06:27 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46699188/covid_19_verdades_e_duvidas_atualizacao_de_2021_parte_ii_protocolos_de_leitura_da_rsna_e_o_corads.mp3" length="2862860" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.
2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller...]]></itunes:summary><itunes:duration>179</itunes:duration><itunes:keywords>corads,covid-19,rsna</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>COVID-19: VERDADES E DÚVIDAS. ATUALIZAÇÃO EM SETEMBRO DE 2021.  - PARTE I: O PAPEL DA TC E RX NA COVID-19</title><link>https://www.spreaker.com/episode/covid-19-verdades-e-duvidas-atualizacao-em-setembro-de-2021-parte-i-o-papel-da-tc-e-rx-na-covid-19--46699079</link><description><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller NL, Muller CIS, Walsh JP, Jalal S, et al. RSNA Expert Consensus Statement on Reporting Chest CT Findings Related to COVID-19: Interobserver Agreement Between Chest Radiologists. Can Assoc Radiol J. 2021;72(1):159-66.<br />21.Fonseca E, Loureiro BMC, Strabelli DG, Farias LPG, Garcia JVR, Gama VAA, et al. Evaluation of the RSNA and CORADS classifications for COVID-19 on chest computed tomography in the Brazilian population. Clinics (Sao Paulo). 2021;76:e2476.<br />22.Barisione E, Grillo F, Ball L, Bianchi R, Grosso M, Morbini P, et al. Fibrotic progression and radiologic correlation in matched lung samples from COVID-19 post-mortems. Virchows Arch. 2021;478(3):471-85.<br />23.Kianzad A, Meijboom LJ, Nossent EJ, Roos E, Schurink B, Bonta PI, et al. COVID-19: Histopathological correlates of imaging patterns on chest computed tomography. Respirology. 2021;26(9):869-77.<br />24.Aesif SW, Bribriesco AC, Yadav R, Nugent SL, Zubkus D, Tan CD, et al. Pulmonary Pathology of COVID-19 Following 8 Weeks to 4 Months of Severe Disease: A Report of Three Cases, Including One With Bilateral Lung Transplantation. Am J Clin Pathol. 2021;155(4):506-14.<br />25.De Cobelli F, Palumbo D, Ciceri F, Landoni G, Ruggeri A, Rovere-Querini P, et al. Pulmonary Vascular Thrombosis in COVID-19 Pneumonia. J Cardiothorac Vasc Anesth. 2021.<br />26.Vlachou M, Drebes A, Candilio L, Weeraman D, Mir N, Murch N, et al. Pulmonary thrombosis in Covid-19: before, during and after hospital admission. J Thromb Thrombolysis. 2021;51(4):978-84.<br />27.Caruso D, Guido G, Zerunian M, Polidori T, Lucertini E, Pucciarelli F, et al. Postacute Sequelae of COVID-19 Pneumonia: 6-month Chest CT Follow-up. Radiology. 2021:210834.<br />28.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />29.Solomon JJ, Heyman B, Ko JP, Condos R, Lynch DA. CT of Post-Acute Lung Complications of COVID-19. Radiology. 2021:211396.<br />30.Wells AU, Devaraj A, Desai SR. Interstitial Lung Disease after COVID-19 Infection: A Catalog of Uncertainties. Radiology. 2021;299(1):E216-E8.<br />31.Han X, Fan Y, Alwalid O, Zhang X, Jia X, Zheng Y, et al. Fibrotic Interstitial Lung Abnormalities at 1-year Follow-up CT after Severe COVID-19. Radiology. 2021:210972.<br />32.Lindahl A, Reijula J, Malmberg LP, Aro M, Vasankari T, Makela MJ. Small airway function in Finnish COVID-19 survivors. Respir Res. 2021;22(1):237.<br />33.Small Airways Disease is a Post-Acute Sequelae of SARS-CoV-2 Infection<br /> [Internet]. 2021.<br />34.Lopes AJ, Mafort TT, da Cal MS, Monnerat LB, Litrento PF, Ramos I, et al. Impulse Oscillometry Findings and Their Associations With Lung Ultrasound Signs in COVID-19 Survivors. Respir Care. 2021.<br />35.Wells AU, Devaraj A. Residual Lung Disease at 6-month Follow-up CT after COVID-19: Clinical Significance Is a Key Issue. Radiology. 2021:211284.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46699079</guid><pubDate>Sun, 26 Sep 2021 22:50:57 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46699079/covid_19_verdades_e_duvidas_atualizacao_em_setembro_de_2021_parte_i_o_papel_da_tc_e_rx_na_covid_19.mp3" length="5378138" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.
2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Pontone G, Scafuri S, Mancini ME, Agalbato C, Guglielmo M, Baggiano A, et al. Role of computed tomography in COVID-19. J Cardiovasc Comput Tomogr. 2021;15(1):27-36.<br />2.Cereser L, Da Re J, Zuiani C, Girometti R. Chest high-resolution computed tomography is associated to short-time progression to severe disease in patients with COVID-19 pneumonia. Clin Imaging. 2021;70:61-6.<br />3.Hochhegger B, Mandelli NS, Stuker G, Meirelles GSP, Zanon M, Mohammed TL, et al. Coronavirus Disease 2019 (COVID-19) Pneumonia Presentations in Chest Computed Tomography: A Pictorial Review. Curr Probl Diagn Radiol. 2021;50(3):436-42.<br />4.Besutti G, Ottone M, Fasano T, Pattacini P, Iotti V, Spaggiari L, et al. The value of computed tomography in assessing the risk of death in COVID-19 patients presenting to the emergency room. Eur Radiol. 2021.<br />5.Mogami R, Lopes AJ, Araujo Filho RC, de Almeida FCS, Messeder A, Koifman ACB, et al. Chest computed tomography in COVID-19 pneumonia: a retrospective study of 155 patients at a university hospital in Rio de Janeiro, Brazil. Radiol Bras. 2021;54(1):1-8.<br />6.Cau R, Falaschi Z, Pasche A, Danna P, Arioli R, Arru CD, et al. CT findings of COVID-19 pneumonia in ICU-patients. J Public Health Res. 2021.<br />7.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021;299(3):E262-E79.<br />8.Pourhoseingholi MA, Jafari R, Jafari NJ, Rahimi-Bashar F, Nourbakhsh M, Vahedian-Azimi A, et al. Predicting 1-year post-COVID-19 mortality based on chest computed tomography scan. J Med Virol. 2021;93(10):5694-6.<br />9.Kato S, Ishiwata Y, Aoki R, Iwasawa T, Hagiwara E, Ogura T, et al. Imaging of COVID-19: An update of current evidences. Diagn Interv Imaging. 2021;102(9):493-500.<br />10.Ozer H, Kilincer A, Uysal E, Yormaz B, Cebeci H, Durmaz MS, et al. Diagnostic performance of Radiological Society of North America structured reporting language for chest computed tomography findings in patients with COVID-19. Jpn J Radiol. 2021;39(9):877-88.<br />11.Ramanan RV, Joshi AR, Venkataramanan A, Nambi SP, Badhe R. Incidental chest computed tomography findings in asymptomatic Covid-19 patients. A multicentre Indian perspective. Indian J Radiol Imaging. 2021;31(Suppl 1):S45-S52.<br />12.Axiaq A, Almohtadi A, Massias SA, Ngemoh D, Harky A. The role of computed tomography scan in the diagnosis of COVID-19 pneumonia. Curr Opin Pulm Med. 2021;27(3):163-8.<br />13.Ishfaq A, Yousaf Farooq SM, Goraya A, Yousaf M, Gilani SA, Kiran A, et al. Role of High Resolution Computed Tomography chest in the diagnosis and evaluation of COVID -19 patients -A systematic review and meta-analysis. Eur J Radiol Open. 2021;8:100350.<br />14.Razek A, Fouda N, Fahmy D, Tanatawy MS, Sultan A, Bilal M, et al. Computed tomography of the chest in patients with COVID-19: what do radiologists want to know? Pol J Radiol. 2021;86:e122-e35.<br />15.Revel MP, Boussouar S, de Margerie-Mellon C, Saab I, Lapotre T, Mompoint D, et al. Study of Thoracic CT in COVID-19: The STOIC Project. Radiology. 2021;301(1):E361-E70.<br />16.Au-Yong I, Higashi Y, Giannotti E, Fogarty A, Morling JR, Grainge M, et al. Chest Radiograph Scoring Alone or Combined with Other Risk Scores for Predicting Outcomes in COVID-19. Radiology. 2021:210986.<br />17.Little BP. Disease Severity Scoring for COVID-19: A Welcome (Semi)Quantitative Role for Chest Radiography. Radiology. 2021:212212.<br />18.Prokop M, van Everdingen W, van Rees Vellinga T, Quarles van Ufford H, Stoger L, Beenen L, et al. CO-RADS: A Categorical CT Assessment Scheme for Patients Suspected of Having COVID-19-Definition and Evaluation. Radiology. 2020;296(2):E97-E104.<br />19.Ozel M, Aslan A, Arac S. Use of the COVID-19 Reporting and Data System (CO-RADS) classification and chest computed tomography involvement score (CT-IS) in COVID-19 pneumonia. Radiol Med. 2021;126(5):679-87.<br />20.Byrne D, Neill SBO, Muller...]]></itunes:summary><itunes:duration>337</itunes:duration><itunes:keywords>covid-19,radiologia,tc</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MANGUITO ROTADOR PARTE II</title><link>https://www.spreaker.com/episode/manguito-rotador-parte-ii--46593592</link><description><![CDATA[REFERÊNCIAS<br />1.Bunker T. Rotator Cuff Disease. Curr Orthop. 2002;16:223-33.<br />2.Schaeffeler C, Mueller D, Kirchhoff C, Wolf P, Rummeny EJ, Woertler K. Tears at the rotator cuff footprint: prevalence and imaging characteristics in 305 MR arthrograms of the shoulder. Eur Radiol. 2011;21(7):1477-84.<br />3.Zumstein MA. Rotator Cuff Pathology: State of the Art. JISAKOS. 2017:1-9.<br />4.McCrum E. MR Imaging of the Rotator Cuff. Magn Reson Imaging Clin N Am. 2019.<br />5.Huri G, Kaymakoglu M, Garbis N. Rotator cable and rotator interval: anatomy, biomechanics and clinical importance. EFORT Open Rev. 2019;4(2):56-62.<br />6.Akhtar A, Richards J, Monga P. The biomechanics of the rotator cuff in health and disease - A narrative review. J Clin Orthop Trauma. 2021;18:150-6.<br />7.Llopis E. Rotator Cuff. In: Hodler J, editor. Musculoskeletal Diseases: 2021-2024: Springer; 2021. p. 11.<br />8.Sahu D, Phadnis A. Revisiting the rotator cuff footprint. J Clin Orthop Trauma. 2021;21:101514.<br />9.Kellam P. Anatomy of the Subscapularis: A Review. J Shoulder Elbow Arth. 2019;3:1-6.<br />10.Arai R, Sugaya H, Mochizuki T, Nimura A, Moriishi J, Akita K. Subscapularis tendon tear: an anatomic and clinical investigation. Arthroscopy. 2008;24(9):997-1004.<br />11.Morag Y, Jamadar DA, Miller B, Dong Q, Jacobson JA. The subscapularis: anatomy, injury, and imaging. Skeletal Radiol. 2011;40(3):255-69.<br />12.Ide J, Tokiyoshi A, Hirose J, Mizuta H. An anatomic study of the subscapularis insertion to the humerus: the subscapularis footprint. Arthroscopy. 2008;24(7):749-53.<br />13.Tebaa E. Histologic characteristics of the subscapularis tendon from the muscle to bone: reference to subscapularis lesions. J Shoulder Elbow Surg. 2018.<br />14.Chang EY. Imaging Diagnosis of Rotator Cuff Pathology and Impingement Syndromes2019.<br />15.Kim SY, Boynton EL, Ravichandiran K, Fung LY, Bleakney R, Agur AM. Three-dimensional study of the musculotendinous architecture of supraspinatus and its functional correlations. Clin Anat. 2007;20(6):648-55.<br />16.Roh MS, Wang VM, April EW, Pollock RG, Bigliani LU, Flatow EL. Anterior and posterior musculotendinous anatomy of the supraspinatus. J Shoulder Elbow Surg. 2000;9(5):436-40.<br />17.Vieira AC, Montez Perez E, M FH, Abascal F, Cerezal L. Myotendinous junction tear of the anterior bundle of the supraspinatus muscle-a rare pattern of injury involving rotator cuff muscles. BJR Case Rep. 2020;6(4):20200004.<br />18.Mochizuki T. Humeral Insertion of the Supraspinatus and Infraspinatus. New Anatomical Findings Regarding the Footprint of the Rotator Cuff. J Bone Joint Surg Am. 2009:1-7.<br />19.Bacle G, Gregoire JM, Patat F, Clavert P, de Pinieux G, Laulan J, et al. Anatomy and relations of the infraspinatus and the teres minor muscles: a fresh cadaver dissection study. Surg Radiol Anat. 2017;39(2):119-26.<br />20.Rahu M, Kolts I, Poldoja E, Kask K. Rotator cuff tendon connections with the rotator cable. Knee Surg Sports Traumatol Arthrosc. 2017;25(7):2047-50.<br />21.de Almeida Filho IA, Coelho DA. Rotator Cuff Healing. Rev Bras Ortop (Sao Paulo). 2021;56(3):291-8.<br />22.Sheah K, Bredella MA, Warner JJ, Halpern EF, Palmer WE. Transverse thickening along the articular surface of the rotator cuff consistent with the rotator cable: identification with MR arthrography and relevance in rotator cuff evaluation. AJR Am J Roentgenol. 2009;193(3):679-86.<br />23.Morag Y, Jacobson JA, Lucas D, Miller B, Brigido MK, Jamadar DA. US appearance of the rotator cable with histologic correlation: preliminary results. Radiology. 2006;241(2):485-91.<br />24.Podgorski MT, Olewnik L, Grzelak P, Polguj M, Topol M. Rotator cable in pathological shoulders: comparison with normal anatomy in a cadaveric study. Anat Sci Int. 2019;94(1):53-7.<br />25.Codding JL, Keener JD. Natural History of Degenerative Rotator Cuff Tears. Curr Rev Musculoskelet Med. 2018;11(1):77-85.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46593592</guid><pubDate>Sun, 19 Sep 2021 22:13:56 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46593592/manguito_rotador_parte_ii.mp3" length="10077253" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Bunker T. Rotator Cuff Disease. Curr Orthop. 2002;16:223-33.
2.Schaeffeler C, Mueller D, Kirchhoff C, Wolf P, Rummeny EJ, Woertler K. Tears at the rotator cuff footprint: prevalence and imaging characteristics in 305 MR arthrograms of...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Bunker T. Rotator Cuff Disease. Curr Orthop. 2002;16:223-33.<br />2.Schaeffeler C, Mueller D, Kirchhoff C, Wolf P, Rummeny EJ, Woertler K. Tears at the rotator cuff footprint: prevalence and imaging characteristics in 305 MR arthrograms of the shoulder. Eur Radiol. 2011;21(7):1477-84.<br />3.Zumstein MA. Rotator Cuff Pathology: State of the Art. JISAKOS. 2017:1-9.<br />4.McCrum E. MR Imaging of the Rotator Cuff. Magn Reson Imaging Clin N Am. 2019.<br />5.Huri G, Kaymakoglu M, Garbis N. Rotator cable and rotator interval: anatomy, biomechanics and clinical importance. EFORT Open Rev. 2019;4(2):56-62.<br />6.Akhtar A, Richards J, Monga P. The biomechanics of the rotator cuff in health and disease - A narrative review. J Clin Orthop Trauma. 2021;18:150-6.<br />7.Llopis E. Rotator Cuff. In: Hodler J, editor. Musculoskeletal Diseases: 2021-2024: Springer; 2021. p. 11.<br />8.Sahu D, Phadnis A. Revisiting the rotator cuff footprint. J Clin Orthop Trauma. 2021;21:101514.<br />9.Kellam P. Anatomy of the Subscapularis: A Review. J Shoulder Elbow Arth. 2019;3:1-6.<br />10.Arai R, Sugaya H, Mochizuki T, Nimura A, Moriishi J, Akita K. Subscapularis tendon tear: an anatomic and clinical investigation. Arthroscopy. 2008;24(9):997-1004.<br />11.Morag Y, Jamadar DA, Miller B, Dong Q, Jacobson JA. The subscapularis: anatomy, injury, and imaging. Skeletal Radiol. 2011;40(3):255-69.<br />12.Ide J, Tokiyoshi A, Hirose J, Mizuta H. An anatomic study of the subscapularis insertion to the humerus: the subscapularis footprint. Arthroscopy. 2008;24(7):749-53.<br />13.Tebaa E. Histologic characteristics of the subscapularis tendon from the muscle to bone: reference to subscapularis lesions. J Shoulder Elbow Surg. 2018.<br />14.Chang EY. Imaging Diagnosis of Rotator Cuff Pathology and Impingement Syndromes2019.<br />15.Kim SY, Boynton EL, Ravichandiran K, Fung LY, Bleakney R, Agur AM. Three-dimensional study of the musculotendinous architecture of supraspinatus and its functional correlations. Clin Anat. 2007;20(6):648-55.<br />16.Roh MS, Wang VM, April EW, Pollock RG, Bigliani LU, Flatow EL. Anterior and posterior musculotendinous anatomy of the supraspinatus. J Shoulder Elbow Surg. 2000;9(5):436-40.<br />17.Vieira AC, Montez Perez E, M FH, Abascal F, Cerezal L. Myotendinous junction tear of the anterior bundle of the supraspinatus muscle-a rare pattern of injury involving rotator cuff muscles. BJR Case Rep. 2020;6(4):20200004.<br />18.Mochizuki T. Humeral Insertion of the Supraspinatus and Infraspinatus. New Anatomical Findings Regarding the Footprint of the Rotator Cuff. J Bone Joint Surg Am. 2009:1-7.<br />19.Bacle G, Gregoire JM, Patat F, Clavert P, de Pinieux G, Laulan J, et al. Anatomy and relations of the infraspinatus and the teres minor muscles: a fresh cadaver dissection study. Surg Radiol Anat. 2017;39(2):119-26.<br />20.Rahu M, Kolts I, Poldoja E, Kask K. Rotator cuff tendon connections with the rotator cable. Knee Surg Sports Traumatol Arthrosc. 2017;25(7):2047-50.<br />21.de Almeida Filho IA, Coelho DA. Rotator Cuff Healing. Rev Bras Ortop (Sao Paulo). 2021;56(3):291-8.<br />22.Sheah K, Bredella MA, Warner JJ, Halpern EF, Palmer WE. Transverse thickening along the articular surface of the rotator cuff consistent with the rotator cable: identification with MR arthrography and relevance in rotator cuff evaluation. AJR Am J Roentgenol. 2009;193(3):679-86.<br />23.Morag Y, Jacobson JA, Lucas D, Miller B, Brigido MK, Jamadar DA. US appearance of the rotator cable with histologic correlation: preliminary results. Radiology. 2006;241(2):485-91.<br />24.Podgorski MT, Olewnik L, Grzelak P, Polguj M, Topol M. Rotator cable in pathological shoulders: comparison with normal anatomy in a cadaveric study. Anat Sci Int. 2019;94(1):53-7.<br />25.Codding JL, Keener JD. Natural History of Degenerative Rotator Cuff Tears. Curr Rev Musculoskelet Med. 2018;11(1):77-85.]]></itunes:summary><itunes:duration>630</itunes:duration><itunes:keywords>infraespinal,manguitorotador,subescapular,supraespinal</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MANGUITO ROTADOR PARTE I</title><link>https://www.spreaker.com/episode/manguito-rotador-parte-i--46593451</link><description><![CDATA[REFERÊNCIAS<br />1.Bunker T. Rotator Cuff Disease. Curr Orthop. 2002;16:223-33.<br />2.Schaeffeler C, Mueller D, Kirchhoff C, Wolf P, Rummeny EJ, Woertler K. Tears at the rotator cuff footprint: prevalence and imaging characteristics in 305 MR arthrograms of the shoulder. Eur Radiol. 2011;21(7):1477-84.<br />3.Zumstein MA. Rotator Cuff Pathology: State of the Art. JISAKOS. 2017:1-9.<br />4.McCrum E. MR Imaging of the Rotator Cuff. Magn Reson Imaging Clin N Am. 2019.<br />5.Huri G, Kaymakoglu M, Garbis N. Rotator cable and rotator interval: anatomy, biomechanics and clinical importance. EFORT Open Rev. 2019;4(2):56-62.<br />6.Akhtar A, Richards J, Monga P. The biomechanics of the rotator cuff in health and disease - A narrative review. J Clin Orthop Trauma. 2021;18:150-6.<br />7.Llopis E. Rotator Cuff. In: Hodler J, editor. Musculoskeletal Diseases: 2021-2024: Springer; 2021. p. 11.<br />8.Sahu D, Phadnis A. Revisiting the rotator cuff footprint. J Clin Orthop Trauma. 2021;21:101514.<br />9.Kellam P. Anatomy of the Subscapularis: A Review. J Shoulder Elbow Arth. 2019;3:1-6.<br />10.Arai R, Sugaya H, Mochizuki T, Nimura A, Moriishi J, Akita K. Subscapularis tendon tear: an anatomic and clinical investigation. Arthroscopy. 2008;24(9):997-1004.<br />11.Morag Y, Jamadar DA, Miller B, Dong Q, Jacobson JA. The subscapularis: anatomy, injury, and imaging. Skeletal Radiol. 2011;40(3):255-69.<br />12.Ide J, Tokiyoshi A, Hirose J, Mizuta H. An anatomic study of the subscapularis insertion to the humerus: the subscapularis footprint. Arthroscopy. 2008;24(7):749-53.<br />13.Tebaa E. Histologic characteristics of the subscapularis tendon from the muscle to bone: reference to subscapularis lesions. J Shoulder Elbow Surg. 2018.<br />14.Chang EY. Imaging Diagnosis of Rotator Cuff Pathology and Impingement Syndromes2019.<br />15.Kim SY, Boynton EL, Ravichandiran K, Fung LY, Bleakney R, Agur AM. Three-dimensional study of the musculotendinous architecture of supraspinatus and its functional correlations. Clin Anat. 2007;20(6):648-55.<br />16.Roh MS, Wang VM, April EW, Pollock RG, Bigliani LU, Flatow EL. Anterior and posterior musculotendinous anatomy of the supraspinatus. J Shoulder Elbow Surg. 2000;9(5):436-40.<br />17.Vieira AC, Montez Perez E, M FH, Abascal F, Cerezal L. Myotendinous junction tear of the anterior bundle of the supraspinatus muscle-a rare pattern of injury involving rotator cuff muscles. BJR Case Rep. 2020;6(4):20200004.<br />18.Mochizuki T. Humeral Insertion of the Supraspinatus and Infraspinatus. New Anatomical Findings Regarding the Footprint of the Rotator Cuff. J Bone Joint Surg Am. 2009:1-7.<br />19.Bacle G, Gregoire JM, Patat F, Clavert P, de Pinieux G, Laulan J, et al. Anatomy and relations of the infraspinatus and the teres minor muscles: a fresh cadaver dissection study. Surg Radiol Anat. 2017;39(2):119-26.<br />20.Rahu M, Kolts I, Poldoja E, Kask K. Rotator cuff tendon connections with the rotator cable. Knee Surg Sports Traumatol Arthrosc. 2017;25(7):2047-50.<br />21.de Almeida Filho IA, Coelho DA. Rotator Cuff Healing. Rev Bras Ortop (Sao Paulo). 2021;56(3):291-8.<br />22.Sheah K, Bredella MA, Warner JJ, Halpern EF, Palmer WE. Transverse thickening along the articular surface of the rotator cuff consistent with the rotator cable: identification with MR arthrography and relevance in rotator cuff evaluation. AJR Am J Roentgenol. 2009;193(3):679-86.<br />23.Morag Y, Jacobson JA, Lucas D, Miller B, Brigido MK, Jamadar DA. US appearance of the rotator cable with histologic correlation: preliminary results. Radiology. 2006;241(2):485-91.<br />24.Podgorski MT, Olewnik L, Grzelak P, Polguj M, Topol M. Rotator cable in pathological shoulders: comparison with normal anatomy in a cadaveric study. Anat Sci Int. 2019;94(1):53-7.<br />25.Codding JL, Keener JD. Natural History of Degenerative Rotator Cuff Tears. Curr Rev Musculoskelet Med. 2018;11(1):77-85.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46593451</guid><pubDate>Sun, 19 Sep 2021 21:58:59 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46593451/manguito_rotador_parte_i.mp3" length="6669632" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Bunker T. Rotator Cuff Disease. Curr Orthop. 2002;16:223-33.
2.Schaeffeler C, Mueller D, Kirchhoff C, Wolf P, Rummeny EJ, Woertler K. Tears at the rotator cuff footprint: prevalence and imaging characteristics in 305 MR arthrograms of...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Bunker T. Rotator Cuff Disease. Curr Orthop. 2002;16:223-33.<br />2.Schaeffeler C, Mueller D, Kirchhoff C, Wolf P, Rummeny EJ, Woertler K. Tears at the rotator cuff footprint: prevalence and imaging characteristics in 305 MR arthrograms of the shoulder. Eur Radiol. 2011;21(7):1477-84.<br />3.Zumstein MA. Rotator Cuff Pathology: State of the Art. JISAKOS. 2017:1-9.<br />4.McCrum E. MR Imaging of the Rotator Cuff. Magn Reson Imaging Clin N Am. 2019.<br />5.Huri G, Kaymakoglu M, Garbis N. Rotator cable and rotator interval: anatomy, biomechanics and clinical importance. EFORT Open Rev. 2019;4(2):56-62.<br />6.Akhtar A, Richards J, Monga P. The biomechanics of the rotator cuff in health and disease - A narrative review. J Clin Orthop Trauma. 2021;18:150-6.<br />7.Llopis E. Rotator Cuff. In: Hodler J, editor. Musculoskeletal Diseases: 2021-2024: Springer; 2021. p. 11.<br />8.Sahu D, Phadnis A. Revisiting the rotator cuff footprint. J Clin Orthop Trauma. 2021;21:101514.<br />9.Kellam P. Anatomy of the Subscapularis: A Review. J Shoulder Elbow Arth. 2019;3:1-6.<br />10.Arai R, Sugaya H, Mochizuki T, Nimura A, Moriishi J, Akita K. Subscapularis tendon tear: an anatomic and clinical investigation. Arthroscopy. 2008;24(9):997-1004.<br />11.Morag Y, Jamadar DA, Miller B, Dong Q, Jacobson JA. The subscapularis: anatomy, injury, and imaging. Skeletal Radiol. 2011;40(3):255-69.<br />12.Ide J, Tokiyoshi A, Hirose J, Mizuta H. An anatomic study of the subscapularis insertion to the humerus: the subscapularis footprint. Arthroscopy. 2008;24(7):749-53.<br />13.Tebaa E. Histologic characteristics of the subscapularis tendon from the muscle to bone: reference to subscapularis lesions. J Shoulder Elbow Surg. 2018.<br />14.Chang EY. Imaging Diagnosis of Rotator Cuff Pathology and Impingement Syndromes2019.<br />15.Kim SY, Boynton EL, Ravichandiran K, Fung LY, Bleakney R, Agur AM. Three-dimensional study of the musculotendinous architecture of supraspinatus and its functional correlations. Clin Anat. 2007;20(6):648-55.<br />16.Roh MS, Wang VM, April EW, Pollock RG, Bigliani LU, Flatow EL. Anterior and posterior musculotendinous anatomy of the supraspinatus. J Shoulder Elbow Surg. 2000;9(5):436-40.<br />17.Vieira AC, Montez Perez E, M FH, Abascal F, Cerezal L. Myotendinous junction tear of the anterior bundle of the supraspinatus muscle-a rare pattern of injury involving rotator cuff muscles. BJR Case Rep. 2020;6(4):20200004.<br />18.Mochizuki T. Humeral Insertion of the Supraspinatus and Infraspinatus. New Anatomical Findings Regarding the Footprint of the Rotator Cuff. J Bone Joint Surg Am. 2009:1-7.<br />19.Bacle G, Gregoire JM, Patat F, Clavert P, de Pinieux G, Laulan J, et al. Anatomy and relations of the infraspinatus and the teres minor muscles: a fresh cadaver dissection study. Surg Radiol Anat. 2017;39(2):119-26.<br />20.Rahu M, Kolts I, Poldoja E, Kask K. Rotator cuff tendon connections with the rotator cable. Knee Surg Sports Traumatol Arthrosc. 2017;25(7):2047-50.<br />21.de Almeida Filho IA, Coelho DA. Rotator Cuff Healing. Rev Bras Ortop (Sao Paulo). 2021;56(3):291-8.<br />22.Sheah K, Bredella MA, Warner JJ, Halpern EF, Palmer WE. Transverse thickening along the articular surface of the rotator cuff consistent with the rotator cable: identification with MR arthrography and relevance in rotator cuff evaluation. AJR Am J Roentgenol. 2009;193(3):679-86.<br />23.Morag Y, Jacobson JA, Lucas D, Miller B, Brigido MK, Jamadar DA. US appearance of the rotator cable with histologic correlation: preliminary results. Radiology. 2006;241(2):485-91.<br />24.Podgorski MT, Olewnik L, Grzelak P, Polguj M, Topol M. Rotator cable in pathological shoulders: comparison with normal anatomy in a cadaveric study. Anat Sci Int. 2019;94(1):53-7.<br />25.Codding JL, Keener JD. Natural History of Degenerative Rotator Cuff Tears. Curr Rev Musculoskelet Med. 2018;11(1):77-85.]]></itunes:summary><itunes:duration>417</itunes:duration><itunes:keywords>infraespinal,manguitorotador,redondomenor,supraespinal</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>CABEÇA LONGA DO BÍCEPS2</title><link>https://www.spreaker.com/episode/cabeca-longa-do-biceps2--46310765</link><description><![CDATA[REFERÊNCIAS<br />1.Zappia M, Reginelli A, Russo A, D'Agosto GF, Di Pietto F, Genovese EA, et al. Long head of the biceps tendon and rotator interval. Musculoskelet Surg. 2013;97 Suppl 2:S99-108.<br />2.Khazzam M, George MS, Churchill RS, Kuhn JE. Disorders of the long head of biceps tendon. J Shoulder Elbow Surg. 2012;21(1):136-45.<br />3.Werner A, Mueller T, Boehm D, Gohlke F. The stabilizing sling for the long head of the biceps tendon in the rotator cuff interval. A histoanatomic study. Am J Sports Med. 2000;28(1):28-31.<br />4.Nakata W, Katou S, Fujita A, Nakata M, Lefor AT, Sugimoto H. Biceps pulley: normal anatomy and associated lesions at MR arthrography. Radiographics. 2011;31(3):791-810.<br />5.Elser F, Braun S, Dewing CB, Giphart JE, Millett PJ. Anatomy, function, injuries, and treatment of the long head of the biceps brachii tendon. Arthroscopy. 2011;27(4):581-92.<br />6.Krupp RJ, Kevern MA, Gaines MD, Kotara S, Singleton SB. Long head of the biceps tendon pain: differential diagnosis and treatment. J Orthop Sports Phys Ther. 2009;39(2):55-70.<br />7.Ahrens PM, Boileau P. The long head of biceps and associated tendinopathy. J Bone Joint Surg Br. 2007;89(8):1001-9.<br />8.Ejnisman B, Monteiro GC, Andreoli CV, de Castro Pochini A. Disorder of the long head of the biceps tendon. Br J Sports Med. 2010;44(5):347-54.<br />9.Mazzocca AD, McCarthy MB, Ledgard FA, Chowaniec DM, McKinnon WJ, Jr., Delaronde S, et al. Histomorphologic changes of the long head of the biceps tendon in common shoulder pathologies. Arthroscopy. 2013;29(6):972-81.<br />10.Boileau P, Ahrens PM, Hatzidakis AM. Entrapment of the long head of the biceps tendon: the hourglass biceps--a cause of pain and locking of the shoulder. J Shoulder Elbow Surg. 2004;13(3):249-57.<br />11.Zappia M, Chianca V, Di Pietto F, Reginelli A, Natella R, Maggialetti N, et al. Imaging of long head biceps tendon. A multimodality pictorial essay. Acta Biomed. 2019;90(5-S):84-94.<br />12.Castagna A, Mouhsine E, Conti M, Vinci E, Borroni M, Giardella A, et al. Chondral print on humeral head: an indirect sign of long head biceps tendon instability. Knee Surg Sports Traumatol Arthrosc. 2007;15(5):645-8.<br />13.Skendzel JG, Jacobson JA, Carpenter JE, Miller BS. Long head of biceps brachii tendon evaluation: accuracy of preoperative ultrasound. AJR Am J Roentgenol. 2011;197(4):942-8.<br />14.Carvalho CD, Cohen C, Belangero PS, Pochini AC, Andreoli CV, Ejnisman B. Supraspinatus Muscle Tendon Lesion and Its Relationship with Long Head of the Biceps Lesion. Rev Bras Ortop (Sao Paulo). 2020;55(3):329-38.<br />15.Gaskin CM, Anderson MW, Choudhri A, Diduch DR. Focal partial tears of the long head of the biceps brachii tendon at the entrance to the bicipital groove: MR imaging findings, surgical correlation, and clinical significance. Skeletal Radiol. 2009;38(10):959-65.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46310765</guid><pubDate>Tue, 31 Aug 2021 09:26:31 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46310765/cabeca_longa_do_biceps2.mp3" length="6096192" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Zappia M, Reginelli A, Russo A, D'Agosto GF, Di Pietto F, Genovese EA, et al. Long head of the biceps tendon and rotator interval. Musculoskelet Surg. 2013;97 Suppl 2:S99-108.
2.Khazzam M, George MS, Churchill RS, Kuhn JE. Disorders of...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Zappia M, Reginelli A, Russo A, D'Agosto GF, Di Pietto F, Genovese EA, et al. Long head of the biceps tendon and rotator interval. Musculoskelet Surg. 2013;97 Suppl 2:S99-108.<br />2.Khazzam M, George MS, Churchill RS, Kuhn JE. Disorders of the long head of biceps tendon. J Shoulder Elbow Surg. 2012;21(1):136-45.<br />3.Werner A, Mueller T, Boehm D, Gohlke F. The stabilizing sling for the long head of the biceps tendon in the rotator cuff interval. A histoanatomic study. Am J Sports Med. 2000;28(1):28-31.<br />4.Nakata W, Katou S, Fujita A, Nakata M, Lefor AT, Sugimoto H. Biceps pulley: normal anatomy and associated lesions at MR arthrography. Radiographics. 2011;31(3):791-810.<br />5.Elser F, Braun S, Dewing CB, Giphart JE, Millett PJ. Anatomy, function, injuries, and treatment of the long head of the biceps brachii tendon. Arthroscopy. 2011;27(4):581-92.<br />6.Krupp RJ, Kevern MA, Gaines MD, Kotara S, Singleton SB. Long head of the biceps tendon pain: differential diagnosis and treatment. J Orthop Sports Phys Ther. 2009;39(2):55-70.<br />7.Ahrens PM, Boileau P. The long head of biceps and associated tendinopathy. J Bone Joint Surg Br. 2007;89(8):1001-9.<br />8.Ejnisman B, Monteiro GC, Andreoli CV, de Castro Pochini A. Disorder of the long head of the biceps tendon. Br J Sports Med. 2010;44(5):347-54.<br />9.Mazzocca AD, McCarthy MB, Ledgard FA, Chowaniec DM, McKinnon WJ, Jr., Delaronde S, et al. Histomorphologic changes of the long head of the biceps tendon in common shoulder pathologies. Arthroscopy. 2013;29(6):972-81.<br />10.Boileau P, Ahrens PM, Hatzidakis AM. Entrapment of the long head of the biceps tendon: the hourglass biceps--a cause of pain and locking of the shoulder. J Shoulder Elbow Surg. 2004;13(3):249-57.<br />11.Zappia M, Chianca V, Di Pietto F, Reginelli A, Natella R, Maggialetti N, et al. Imaging of long head biceps tendon. A multimodality pictorial essay. Acta Biomed. 2019;90(5-S):84-94.<br />12.Castagna A, Mouhsine E, Conti M, Vinci E, Borroni M, Giardella A, et al. Chondral print on humeral head: an indirect sign of long head biceps tendon instability. Knee Surg Sports Traumatol Arthrosc. 2007;15(5):645-8.<br />13.Skendzel JG, Jacobson JA, Carpenter JE, Miller BS. Long head of biceps brachii tendon evaluation: accuracy of preoperative ultrasound. AJR Am J Roentgenol. 2011;197(4):942-8.<br />14.Carvalho CD, Cohen C, Belangero PS, Pochini AC, Andreoli CV, Ejnisman B. Supraspinatus Muscle Tendon Lesion and Its Relationship with Long Head of the Biceps Lesion. Rev Bras Ortop (Sao Paulo). 2020;55(3):329-38.<br />15.Gaskin CM, Anderson MW, Choudhri A, Diduch DR. Focal partial tears of the long head of the biceps brachii tendon at the entrance to the bicipital groove: MR imaging findings, surgical correlation, and clinical significance. Skeletal Radiol. 2009;38(10):959-65.]]></itunes:summary><itunes:duration>381</itunes:duration><itunes:keywords>biceps,mr,ressonanciamagnetica,ultrasound,ultrassonografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>CABEÇA LONGA DO BÍCEPS</title><link>https://www.spreaker.com/episode/cabeca-longa-do-biceps--46310690</link><description><![CDATA[REFERÊNCIAS<br />1.Zappia M, Reginelli A, Russo A, D'Agosto GF, Di Pietto F, Genovese EA, et al. Long head of the biceps tendon and rotator interval. Musculoskelet Surg. 2013;97 Suppl 2:S99-108.<br />2.Khazzam M, George MS, Churchill RS, Kuhn JE. Disorders of the long head of biceps tendon. J Shoulder Elbow Surg. 2012;21(1):136-45.<br />3.Werner A, Mueller T, Boehm D, Gohlke F. The stabilizing sling for the long head of the biceps tendon in the rotator cuff interval. A histoanatomic study. Am J Sports Med. 2000;28(1):28-31.<br />4.Nakata W, Katou S, Fujita A, Nakata M, Lefor AT, Sugimoto H. Biceps pulley: normal anatomy and associated lesions at MR arthrography. Radiographics. 2011;31(3):791-810.<br />5.Elser F, Braun S, Dewing CB, Giphart JE, Millett PJ. Anatomy, function, injuries, and treatment of the long head of the biceps brachii tendon. Arthroscopy. 2011;27(4):581-92.<br />6.Krupp RJ, Kevern MA, Gaines MD, Kotara S, Singleton SB. Long head of the biceps tendon pain: differential diagnosis and treatment. J Orthop Sports Phys Ther. 2009;39(2):55-70.<br />7.Ahrens PM, Boileau P. The long head of biceps and associated tendinopathy. J Bone Joint Surg Br. 2007;89(8):1001-9.<br />8.Ejnisman B, Monteiro GC, Andreoli CV, de Castro Pochini A. Disorder of the long head of the biceps tendon. Br J Sports Med. 2010;44(5):347-54.<br />9.Mazzocca AD, McCarthy MB, Ledgard FA, Chowaniec DM, McKinnon WJ, Jr., Delaronde S, et al. Histomorphologic changes of the long head of the biceps tendon in common shoulder pathologies. Arthroscopy. 2013;29(6):972-81.<br />10.Boileau P, Ahrens PM, Hatzidakis AM. Entrapment of the long head of the biceps tendon: the hourglass biceps--a cause of pain and locking of the shoulder. J Shoulder Elbow Surg. 2004;13(3):249-57.<br />11.Zappia M, Chianca V, Di Pietto F, Reginelli A, Natella R, Maggialetti N, et al. Imaging of long head biceps tendon. A multimodality pictorial essay. Acta Biomed. 2019;90(5-S):84-94.<br />12.Castagna A, Mouhsine E, Conti M, Vinci E, Borroni M, Giardella A, et al. Chondral print on humeral head: an indirect sign of long head biceps tendon instability. Knee Surg Sports Traumatol Arthrosc. 2007;15(5):645-8.<br />13.Skendzel JG, Jacobson JA, Carpenter JE, Miller BS. Long head of biceps brachii tendon evaluation: accuracy of preoperative ultrasound. AJR Am J Roentgenol. 2011;197(4):942-8.<br />14.Carvalho CD, Cohen C, Belangero PS, Pochini AC, Andreoli CV, Ejnisman B. Supraspinatus Muscle Tendon Lesion and Its Relationship with Long Head of the Biceps Lesion. Rev Bras Ortop (Sao Paulo). 2020;55(3):329-38.<br />15.Gaskin CM, Anderson MW, Choudhri A, Diduch DR. Focal partial tears of the long head of the biceps brachii tendon at the entrance to the bicipital groove: MR imaging findings, surgical correlation, and clinical significance. Skeletal Radiol. 2009;38(10):959-65.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46310690</guid><pubDate>Tue, 31 Aug 2021 09:18:24 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46310690/cabeca_longa_do_biceps.mp3" length="3344349" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Zappia M, Reginelli A, Russo A, D'Agosto GF, Di Pietto F, Genovese EA, et al. Long head of the biceps tendon and rotator interval. Musculoskelet Surg. 2013;97 Suppl 2:S99-108.
2.Khazzam M, George MS, Churchill RS, Kuhn JE. Disorders of...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Zappia M, Reginelli A, Russo A, D'Agosto GF, Di Pietto F, Genovese EA, et al. Long head of the biceps tendon and rotator interval. Musculoskelet Surg. 2013;97 Suppl 2:S99-108.<br />2.Khazzam M, George MS, Churchill RS, Kuhn JE. Disorders of the long head of biceps tendon. J Shoulder Elbow Surg. 2012;21(1):136-45.<br />3.Werner A, Mueller T, Boehm D, Gohlke F. The stabilizing sling for the long head of the biceps tendon in the rotator cuff interval. A histoanatomic study. Am J Sports Med. 2000;28(1):28-31.<br />4.Nakata W, Katou S, Fujita A, Nakata M, Lefor AT, Sugimoto H. Biceps pulley: normal anatomy and associated lesions at MR arthrography. Radiographics. 2011;31(3):791-810.<br />5.Elser F, Braun S, Dewing CB, Giphart JE, Millett PJ. Anatomy, function, injuries, and treatment of the long head of the biceps brachii tendon. Arthroscopy. 2011;27(4):581-92.<br />6.Krupp RJ, Kevern MA, Gaines MD, Kotara S, Singleton SB. Long head of the biceps tendon pain: differential diagnosis and treatment. J Orthop Sports Phys Ther. 2009;39(2):55-70.<br />7.Ahrens PM, Boileau P. The long head of biceps and associated tendinopathy. J Bone Joint Surg Br. 2007;89(8):1001-9.<br />8.Ejnisman B, Monteiro GC, Andreoli CV, de Castro Pochini A. Disorder of the long head of the biceps tendon. Br J Sports Med. 2010;44(5):347-54.<br />9.Mazzocca AD, McCarthy MB, Ledgard FA, Chowaniec DM, McKinnon WJ, Jr., Delaronde S, et al. Histomorphologic changes of the long head of the biceps tendon in common shoulder pathologies. Arthroscopy. 2013;29(6):972-81.<br />10.Boileau P, Ahrens PM, Hatzidakis AM. Entrapment of the long head of the biceps tendon: the hourglass biceps--a cause of pain and locking of the shoulder. J Shoulder Elbow Surg. 2004;13(3):249-57.<br />11.Zappia M, Chianca V, Di Pietto F, Reginelli A, Natella R, Maggialetti N, et al. Imaging of long head biceps tendon. A multimodality pictorial essay. Acta Biomed. 2019;90(5-S):84-94.<br />12.Castagna A, Mouhsine E, Conti M, Vinci E, Borroni M, Giardella A, et al. Chondral print on humeral head: an indirect sign of long head biceps tendon instability. Knee Surg Sports Traumatol Arthrosc. 2007;15(5):645-8.<br />13.Skendzel JG, Jacobson JA, Carpenter JE, Miller BS. Long head of biceps brachii tendon evaluation: accuracy of preoperative ultrasound. AJR Am J Roentgenol. 2011;197(4):942-8.<br />14.Carvalho CD, Cohen C, Belangero PS, Pochini AC, Andreoli CV, Ejnisman B. Supraspinatus Muscle Tendon Lesion and Its Relationship with Long Head of the Biceps Lesion. Rev Bras Ortop (Sao Paulo). 2020;55(3):329-38.<br />15.Gaskin CM, Anderson MW, Choudhri A, Diduch DR. Focal partial tears of the long head of the biceps brachii tendon at the entrance to the bicipital groove: MR imaging findings, surgical correlation, and clinical significance. Skeletal Radiol. 2009;38(10):959-65.]]></itunes:summary><itunes:duration>209</itunes:duration><itunes:keywords>biceps,mr,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>IMAGEM DAS DOENÇAS NÃO-TUMORAIS DA PAREDE ABDOMINAL E REGIÕES INGUINAIS - PARTE II</title><link>https://www.spreaker.com/episode/imagem-das-doencas-nao-tumorais-da-parede-abdominal-e-regioes-inguinais-parte-ii--46066729</link><description><![CDATA[REFERÊNCIAS<br />1.Draghi F, Cocco G, Richelmi FM, Schiavone C. Abdominal wall sonography: a pictorial review. J Ultrasound. 2020;23(3):265-78.<br />2.Stavros AT, Rapp C. Dynamic ultrasound of hernias of the groin and anterior abdominal wall. Ultrasound Q. 2010;26(3):135-69.<br />3.Matalon SA, Askari R, Gates JD, Patel K, Sodickson AD, Khurana B. Don't Forget the Abdominal Wall: Imaging Spectrum of Abdominal Wall Injuries after Nonpenetrating Trauma. Radiographics. 2017;37(4):1218-35.<br />4.Stensby JD, Baker JC, Fox MG. Athletic injuries of the lateral abdominal wall: review of anatomy and MR imaging appearance. Skeletal Radiol. 2016;45(2):155-62.<br />5.Sameshima YT, Yamanari MG, Silva MA, Neto MJ, Funari MB. The challenging sonographic inguinal canal evaluation in neonates and children: an update of differential diagnoses. Pediatr Radiol. 2017;47(4):461-72.<br />6.Miller HJ. Inguinal Hernia: Mastering the Anatomy. Surg Clin North Am. 2018;98(3):607-21.<br />7.Lassandro F, Iasiello F, Pizza NL, Valente T, Stefano ML, Grassi R, et al. Abdominal hernias: Radiological features. World J Gastrointest Endosc. 2011;3(6):110-7.<br />8.Rettenbacher T, Hollerweger A, Macheiner P, Gritzmann N, Gotwald T, Frass R, et al. Abdominal wall hernias: cross-sectional imaging signs of incarceration determined with sonography. AJR Am J Roentgenol. 2001;177(5):1061-6.<br />9.Murphy KP, O'Connor OJ, Maher MM. Adult abdominal hernias. AJR Am J Roentgenol. 2014;202(6):W506-11.<br />10.Sinha R, Rajiah P, Tiwary P. Abdominal hernias: imaging review and historical perspectives. Curr Probl Diagn Radiol. 2007;36(1):30-42.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46066729</guid><pubDate>Thu, 12 Aug 2021 11:49:34 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46066729/imagem_das_doencas_nao_tumorais_da_parede_abdominal_e_regioes_inguinais_parte_ii.mp3" length="12662732" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Draghi F, Cocco G, Richelmi FM, Schiavone C. Abdominal wall sonography: a pictorial review. J Ultrasound. 2020;23(3):265-78.
2.Stavros AT, Rapp C. Dynamic ultrasound of hernias of the groin and anterior abdominal wall. Ultrasound Q....</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Draghi F, Cocco G, Richelmi FM, Schiavone C. Abdominal wall sonography: a pictorial review. J Ultrasound. 2020;23(3):265-78.<br />2.Stavros AT, Rapp C. Dynamic ultrasound of hernias of the groin and anterior abdominal wall. Ultrasound Q. 2010;26(3):135-69.<br />3.Matalon SA, Askari R, Gates JD, Patel K, Sodickson AD, Khurana B. Don't Forget the Abdominal Wall: Imaging Spectrum of Abdominal Wall Injuries after Nonpenetrating Trauma. Radiographics. 2017;37(4):1218-35.<br />4.Stensby JD, Baker JC, Fox MG. Athletic injuries of the lateral abdominal wall: review of anatomy and MR imaging appearance. Skeletal Radiol. 2016;45(2):155-62.<br />5.Sameshima YT, Yamanari MG, Silva MA, Neto MJ, Funari MB. The challenging sonographic inguinal canal evaluation in neonates and children: an update of differential diagnoses. Pediatr Radiol. 2017;47(4):461-72.<br />6.Miller HJ. Inguinal Hernia: Mastering the Anatomy. Surg Clin North Am. 2018;98(3):607-21.<br />7.Lassandro F, Iasiello F, Pizza NL, Valente T, Stefano ML, Grassi R, et al. Abdominal hernias: Radiological features. World J Gastrointest Endosc. 2011;3(6):110-7.<br />8.Rettenbacher T, Hollerweger A, Macheiner P, Gritzmann N, Gotwald T, Frass R, et al. Abdominal wall hernias: cross-sectional imaging signs of incarceration determined with sonography. AJR Am J Roentgenol. 2001;177(5):1061-6.<br />9.Murphy KP, O'Connor OJ, Maher MM. Adult abdominal hernias. AJR Am J Roentgenol. 2014;202(6):W506-11.<br />10.Sinha R, Rajiah P, Tiwary P. Abdominal hernias: imaging review and historical perspectives. Curr Probl Diagn Radiol. 2007;36(1):30-42.]]></itunes:summary><itunes:duration>792</itunes:duration><itunes:keywords>canalfemoral,es,hernias,inguinal,retosabdominais,spiegel</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>IMAGEM DAS DOENÇAS NÃO-TUMORAIS DA PAREDE ABDOMINAL E REGIÕES INGUINAIS - PARTE I</title><link>https://www.spreaker.com/episode/imagem-das-doencas-nao-tumorais-da-parede-abdominal-e-regioes-inguinais-parte-i--46066549</link><description><![CDATA[REFERÊNCIAS<br />1.Draghi F, Cocco G, Richelmi FM, Schiavone C. Abdominal wall sonography: a pictorial review. J Ultrasound. 2020;23(3):265-78.<br />2.Stavros AT, Rapp C. Dynamic ultrasound of hernias of the groin and anterior abdominal wall. Ultrasound Q. 2010;26(3):135-69.<br />3.Matalon SA, Askari R, Gates JD, Patel K, Sodickson AD, Khurana B. Don't Forget the Abdominal Wall: Imaging Spectrum of Abdominal Wall Injuries after Nonpenetrating Trauma. Radiographics. 2017;37(4):1218-35.<br />4.Stensby JD, Baker JC, Fox MG. Athletic injuries of the lateral abdominal wall: review of anatomy and MR imaging appearance. Skeletal Radiol. 2016;45(2):155-62.<br />5.Sameshima YT, Yamanari MG, Silva MA, Neto MJ, Funari MB. The challenging sonographic inguinal canal evaluation in neonates and children: an update of differential diagnoses. Pediatr Radiol. 2017;47(4):461-72.<br />6.Miller HJ. Inguinal Hernia: Mastering the Anatomy. Surg Clin North Am. 2018;98(3):607-21.<br />7.Lassandro F, Iasiello F, Pizza NL, Valente T, Stefano ML, Grassi R, et al. Abdominal hernias: Radiological features. World J Gastrointest Endosc. 2011;3(6):110-7.<br />8.Rettenbacher T, Hollerweger A, Macheiner P, Gritzmann N, Gotwald T, Frass R, et al. Abdominal wall hernias: cross-sectional imaging signs of incarceration determined with sonography. AJR Am J Roentgenol. 2001;177(5):1061-6.<br />9.Murphy KP, O'Connor OJ, Maher MM. Adult abdominal hernias. AJR Am J Roentgenol. 2014;202(6):W506-11.<br />10.Sinha R, Rajiah P, Tiwary P. Abdominal hernias: imaging review and historical perspectives. Curr Probl Diagn Radiol. 2007;36(1):30-42.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/46066549</guid><pubDate>Thu, 12 Aug 2021 11:29:48 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/46066549/imagem_das_doencas_nao_tumorais_da_parede_abdominal_e_regioes_inguinais_parte_i.mp3" length="8091512" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Draghi F, Cocco G, Richelmi FM, Schiavone C. Abdominal wall sonography: a pictorial review. J Ultrasound. 2020;23(3):265-78.
2.Stavros AT, Rapp C. Dynamic ultrasound of hernias of the groin and anterior abdominal wall. Ultrasound Q....</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Draghi F, Cocco G, Richelmi FM, Schiavone C. Abdominal wall sonography: a pictorial review. J Ultrasound. 2020;23(3):265-78.<br />2.Stavros AT, Rapp C. Dynamic ultrasound of hernias of the groin and anterior abdominal wall. Ultrasound Q. 2010;26(3):135-69.<br />3.Matalon SA, Askari R, Gates JD, Patel K, Sodickson AD, Khurana B. Don't Forget the Abdominal Wall: Imaging Spectrum of Abdominal Wall Injuries after Nonpenetrating Trauma. Radiographics. 2017;37(4):1218-35.<br />4.Stensby JD, Baker JC, Fox MG. Athletic injuries of the lateral abdominal wall: review of anatomy and MR imaging appearance. Skeletal Radiol. 2016;45(2):155-62.<br />5.Sameshima YT, Yamanari MG, Silva MA, Neto MJ, Funari MB. The challenging sonographic inguinal canal evaluation in neonates and children: an update of differential diagnoses. Pediatr Radiol. 2017;47(4):461-72.<br />6.Miller HJ. Inguinal Hernia: Mastering the Anatomy. Surg Clin North Am. 2018;98(3):607-21.<br />7.Lassandro F, Iasiello F, Pizza NL, Valente T, Stefano ML, Grassi R, et al. Abdominal hernias: Radiological features. World J Gastrointest Endosc. 2011;3(6):110-7.<br />8.Rettenbacher T, Hollerweger A, Macheiner P, Gritzmann N, Gotwald T, Frass R, et al. Abdominal wall hernias: cross-sectional imaging signs of incarceration determined with sonography. AJR Am J Roentgenol. 2001;177(5):1061-6.<br />9.Murphy KP, O'Connor OJ, Maher MM. Adult abdominal hernias. AJR Am J Roentgenol. 2014;202(6):W506-11.<br />10.Sinha R, Rajiah P, Tiwary P. Abdominal hernias: imaging review and historical perspectives. Curr Probl Diagn Radiol. 2007;36(1):30-42.]]></itunes:summary><itunes:duration>506</itunes:duration><itunes:keywords>canalfemoral,es,hérnias,inguinal,retosabdominais,spiegel</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>TENDINOPATIA CALCÁRIA DO OMBRO</title><link>https://www.spreaker.com/episode/tendinopatia-calcaria-do-ombro--45644020</link><description><![CDATA[Referências:<br />1.Sansone V, Maiorano E, Galluzzo A, Pascale V. Calcific tendinopathy of the shoulder: clinical perspectives into the mechanisms, pathogenesis, and treatment. Orthop Res Rev. 2018;10:63-72.<br />2.Hurt G, Baker CL, Jr. Calcific tendinitis of the shoulder. Orthop Clin North Am. 2003;34(4):567-75.<br />3.Albano D, Coppola A, Gitto S, Rapisarda S, Messina C, Sconfienza LM. Imaging of calcific tendinopathy around the shoulder: usual and unusual presentations and common pitfalls. Radiol Med. 2021;126(4):608-19.<br />4.Serafini G, Sconfienza LM, Lacelli F, Silvestri E, Aliprandi A, Sardanelli F. Rotator cuff calcific tendonitis: short-term and 10-year outcomes after two-needle us-guided percutaneous treatment--nonrandomized controlled trial. Radiology. 2009;252(1):157-64.<br />5.Darrieutort-Laffite C, Blanchard F, Le Goff B. Calcific tendonitis of the rotator cuff: From formation to resorption. Joint Bone Spine. 2018;85(6):687-92.<br />6.Uhthoff HK, Loehr JW. Calcific Tendinopathy of the Rotator Cuff: Pathogenesis, Diagnosis, and Management. J Am Acad Orthop Surg. 1997;5(4):183-91.<br />7.Beggs I. Shoulder ultrasound. Semin Ultrasound CT MR. 2011;32(2):101-13.<br />8.Merolla G, Bhat MG, Paladini P, Porcellini G. Complications of calcific tendinitis of the shoulder: a concise review. J Orthop Traumatol. 2015;16(3):175-83.<br />9.Chiou HJ, Chou YH, Wu JJ, Huang TF, Ma HL, Hsu CC, et al. The role of high-resolution ultrasonography in management of calcific tendonitis of the rotator cuff. Ultrasound Med Biol. 2001;27(6):735-43.<br />10.Le Goff B, Berthelot JM, Guillot P, Glemarec J, Maugars Y. Assessment of calcific tendonitis of rotator cuff by ultrasonography: comparison between symptomatic and asymptomatic shoulders. Joint Bone Spine. 2010;77(3):258-63.<br />11.Brinkman JC, Zaw TM, Fox MG, Wilcox JG, Hattrup SJ, Chhabra A, et al. Calcific Tendonitis of the Shoulder: Protector or Predictor of Cuff Pathology? A Magnetic Resonance Imaging-Based Study. Arthroscopy. 2020;36(4):983-90.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/45644020</guid><pubDate>Fri, 09 Jul 2021 22:31:54 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/45644020/tendinopatia_calcaria_do_ombro.mp3" length="5861299" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências:
1.Sansone V, Maiorano E, Galluzzo A, Pascale V. Calcific tendinopathy of the shoulder: clinical perspectives into the mechanisms, pathogenesis, and treatment. Orthop Res Rev. 2018;10:63-72.
2.Hurt G, Baker CL, Jr. Calcific tendinitis of...</itunes:subtitle><itunes:summary><![CDATA[Referências:<br />1.Sansone V, Maiorano E, Galluzzo A, Pascale V. Calcific tendinopathy of the shoulder: clinical perspectives into the mechanisms, pathogenesis, and treatment. Orthop Res Rev. 2018;10:63-72.<br />2.Hurt G, Baker CL, Jr. Calcific tendinitis of the shoulder. Orthop Clin North Am. 2003;34(4):567-75.<br />3.Albano D, Coppola A, Gitto S, Rapisarda S, Messina C, Sconfienza LM. Imaging of calcific tendinopathy around the shoulder: usual and unusual presentations and common pitfalls. Radiol Med. 2021;126(4):608-19.<br />4.Serafini G, Sconfienza LM, Lacelli F, Silvestri E, Aliprandi A, Sardanelli F. Rotator cuff calcific tendonitis: short-term and 10-year outcomes after two-needle us-guided percutaneous treatment--nonrandomized controlled trial. Radiology. 2009;252(1):157-64.<br />5.Darrieutort-Laffite C, Blanchard F, Le Goff B. Calcific tendonitis of the rotator cuff: From formation to resorption. Joint Bone Spine. 2018;85(6):687-92.<br />6.Uhthoff HK, Loehr JW. Calcific Tendinopathy of the Rotator Cuff: Pathogenesis, Diagnosis, and Management. J Am Acad Orthop Surg. 1997;5(4):183-91.<br />7.Beggs I. Shoulder ultrasound. Semin Ultrasound CT MR. 2011;32(2):101-13.<br />8.Merolla G, Bhat MG, Paladini P, Porcellini G. Complications of calcific tendinitis of the shoulder: a concise review. J Orthop Traumatol. 2015;16(3):175-83.<br />9.Chiou HJ, Chou YH, Wu JJ, Huang TF, Ma HL, Hsu CC, et al. The role of high-resolution ultrasonography in management of calcific tendonitis of the rotator cuff. Ultrasound Med Biol. 2001;27(6):735-43.<br />10.Le Goff B, Berthelot JM, Guillot P, Glemarec J, Maugars Y. Assessment of calcific tendonitis of rotator cuff by ultrasonography: comparison between symptomatic and asymptomatic shoulders. Joint Bone Spine. 2010;77(3):258-63.<br />11.Brinkman JC, Zaw TM, Fox MG, Wilcox JG, Hattrup SJ, Chhabra A, et al. Calcific Tendonitis of the Shoulder: Protector or Predictor of Cuff Pathology? A Magnetic Resonance Imaging-Based Study. Arthroscopy. 2020;36(4):983-90.]]></itunes:summary><itunes:duration>367</itunes:duration><itunes:keywords>hdroxiapatita,tendinopatia_calcária</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>OSTEARTRITE DE MÃO - WHOLE JOINT DISEASE</title><link>https://www.spreaker.com/episode/osteartrite-de-mao-whole-joint-disease--45625293</link><description><![CDATA[Referências:<br />1.Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019; 23 (5): 569-78.<br />2.Hunter DJ, Bierma-Zeinstra S. Osteoarthritis. Lancet. 2019; 393 (10182): 1745-59.<br />3.Roemer FW, Crema MD, Trattnig S, Guermazi A. Advances in imaging of osteoarthritis and cartilage. Radiology. 2011; 260 (2): 332-54.<br />4.Mcgonagle D, Tan AL, Grainger AJ, Benjamim M. Heberden’s nodes and what Heberden could not see: the pivotal role of ligaments in the pathogenesis of early nodal osteoarthritis and beyond. Rheumatology 2008; 47: 1278–1285<br />5.Sophia Fox AJ, Bedi A, Rodeo SA. The basic science of articular cartilage: structure, composition, and function. Sports Health. 2009; 1 (6): 461-8.<br />6.Pathria MN, Chung CB, Resnick DL. Acute and Stress-related Injuries of Bone and Cartilage: Pertinent Anatomy, Basic Biomechanics, and Imaging Perspective. Radiology 2016; 280 (1): 21-38.<br />7.Huber M, Trattnig S, Lintner F. Anatomy, biochemistry, and physiology of articular cartilage. Invest Radiol. 2000; 35 (10): 573-80.<br />8.Heijink A, Gomoll AH, Madry H, Drobnic M, Filardo G, Espregueira-Mendes J et al. Biomechanical Considerations in the Pathogenesis of Osteoarthritis of the Knee. Knee Surg Sports Traumatol Arthrosc 2012; 20: 423-435<br />9.Martinez-Moreno D, Jimenez G, Galvez-Martin P, Rus G, Marchal JA. Cartilage biomechanics: A key factor for osteoarthritis regenerative medicine. Biochim Biophys Acta Mol Basis Dis. 2019; 1865 (6): 1067-75.<br />10.Wang X, Hunter DJ, Jin X, Ding C. The importance of synovial inflammation in osteoarthritis: current evidence from imaging assessments and clinical trials. Osteoarthritis and Cartilage 2018; 26 (2): 165e174<br />11.Haugen IK, Boyesen P. Imaging modalities in hand osteoarthritis – status and perspectives of conventional radiography, magnetic resonance imaging, and ultrasonography. Arthritis Res Ther 2011; 13 (6): 248<br />12.Ridley WE, Xiang H, Han J, Ridley LJ. Gull-wing Deformity: Osteoarthritis. J Med Im Rad Onc 2018; 62 (S1): 141.<br />13.Zhang Y, Niu J, Kelly-Hayes M, Chaisson CE, Aliabadi P, Felson DT. Prevalence of symptomatic hand osteoarthritis and its impact on functional status among the elderly: The Framingham Study. Am J Epidemiol. 2002; 156 (11): 1021-7.<br />14.N S. Hand Osteoarthritis — Clinical Presentation, Phenotypes and Management. 2015.<br />15.Tan AL, Grainger AJ, Tanner SF, Shelley DM, Pease C, Emery P, et al. High-resolution magnetic resonance imaging for the assessment of hand osteoarthritis. Arthritis Rheum. 2005; 52 (8): 2355-65.<br />16.Mathiessen A, Slatkowsky-Christensen B, Kvien TK, Hammer HB, Haugen IK. Ultrasound-detected inflammation predicts radiographic progression in hand osteoarthritis after 5 years. Ann Rheum Dis. 2016; 75 (5): 825-30.<br />17.Okano T, Mamoto K, Di Carlo M, Salaffi F. Clinical utility and potential of ultrasound in osteoarthritis. Radiol Med. 2019; 124 (11): 1101-11.<br />18.Hammer HB, Iagnocco A, Mathiessen A, Filippucci E, Gandjbakhch F, Kortekaas MC, et al. Global ultrasound assessment of structural lesions in osteoarthritis: a reliability study by the OMERACT ultrasonography group on scoring cartilage and osteophytes in finger joints. Ann Rheum Dis. 2016; 75 (2): 402-7.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/45625293</guid><pubDate>Thu, 08 Jul 2021 12:35:38 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/45625293/osteartrite_de_mao_whole_joint_disease.mp3" length="13361560" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências:
1.Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019; 23 (5): 569-78.
2.Hunter DJ, Bierma-Zeinstra S. Osteoarthritis. Lancet. 2019; 393 (10182): 1745-59.
3.Roemer FW, Crema...</itunes:subtitle><itunes:summary><![CDATA[Referências:<br />1.Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019; 23 (5): 569-78.<br />2.Hunter DJ, Bierma-Zeinstra S. Osteoarthritis. Lancet. 2019; 393 (10182): 1745-59.<br />3.Roemer FW, Crema MD, Trattnig S, Guermazi A. Advances in imaging of osteoarthritis and cartilage. Radiology. 2011; 260 (2): 332-54.<br />4.Mcgonagle D, Tan AL, Grainger AJ, Benjamim M. Heberden’s nodes and what Heberden could not see: the pivotal role of ligaments in the pathogenesis of early nodal osteoarthritis and beyond. Rheumatology 2008; 47: 1278–1285<br />5.Sophia Fox AJ, Bedi A, Rodeo SA. The basic science of articular cartilage: structure, composition, and function. Sports Health. 2009; 1 (6): 461-8.<br />6.Pathria MN, Chung CB, Resnick DL. Acute and Stress-related Injuries of Bone and Cartilage: Pertinent Anatomy, Basic Biomechanics, and Imaging Perspective. Radiology 2016; 280 (1): 21-38.<br />7.Huber M, Trattnig S, Lintner F. Anatomy, biochemistry, and physiology of articular cartilage. Invest Radiol. 2000; 35 (10): 573-80.<br />8.Heijink A, Gomoll AH, Madry H, Drobnic M, Filardo G, Espregueira-Mendes J et al. Biomechanical Considerations in the Pathogenesis of Osteoarthritis of the Knee. Knee Surg Sports Traumatol Arthrosc 2012; 20: 423-435<br />9.Martinez-Moreno D, Jimenez G, Galvez-Martin P, Rus G, Marchal JA. Cartilage biomechanics: A key factor for osteoarthritis regenerative medicine. Biochim Biophys Acta Mol Basis Dis. 2019; 1865 (6): 1067-75.<br />10.Wang X, Hunter DJ, Jin X, Ding C. The importance of synovial inflammation in osteoarthritis: current evidence from imaging assessments and clinical trials. Osteoarthritis and Cartilage 2018; 26 (2): 165e174<br />11.Haugen IK, Boyesen P. Imaging modalities in hand osteoarthritis – status and perspectives of conventional radiography, magnetic resonance imaging, and ultrasonography. Arthritis Res Ther 2011; 13 (6): 248<br />12.Ridley WE, Xiang H, Han J, Ridley LJ. Gull-wing Deformity: Osteoarthritis. J Med Im Rad Onc 2018; 62 (S1): 141.<br />13.Zhang Y, Niu J, Kelly-Hayes M, Chaisson CE, Aliabadi P, Felson DT. Prevalence of symptomatic hand osteoarthritis and its impact on functional status among the elderly: The Framingham Study. Am J Epidemiol. 2002; 156 (11): 1021-7.<br />14.N S. Hand Osteoarthritis — Clinical Presentation, Phenotypes and Management. 2015.<br />15.Tan AL, Grainger AJ, Tanner SF, Shelley DM, Pease C, Emery P, et al. High-resolution magnetic resonance imaging for the assessment of hand osteoarthritis. Arthritis Rheum. 2005; 52 (8): 2355-65.<br />16.Mathiessen A, Slatkowsky-Christensen B, Kvien TK, Hammer HB, Haugen IK. Ultrasound-detected inflammation predicts radiographic progression in hand osteoarthritis after 5 years. Ann Rheum Dis. 2016; 75 (5): 825-30.<br />17.Okano T, Mamoto K, Di Carlo M, Salaffi F. Clinical utility and potential of ultrasound in osteoarthritis. Radiol Med. 2019; 124 (11): 1101-11.<br />18.Hammer HB, Iagnocco A, Mathiessen A, Filippucci E, Gandjbakhch F, Kortekaas MC, et al. Global ultrasound assessment of structural lesions in osteoarthritis: a reliability study by the OMERACT ultrasonography group on scoring cartilage and osteophytes in finger joints. Ann Rheum Dis. 2016; 75 (2): 402-7.]]></itunes:summary><itunes:duration>835</itunes:duration><itunes:keywords>mãos,osteoartrite,sinovite,whole_joint_disease</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>SÍNDROME PÓS-COVID PARTE II</title><link>https://www.spreaker.com/episode/sindrome-pos-covid-parte-ii--45092669</link><description><![CDATA[Referências<br />1.Wu X, Liu X, Zhou Y, Yu H, Li R, Zhan Q, et al. 3-month, 6-month, 9-month, and 12-month respiratory outcomes in patients following COVID-19-related hospitalisation: a prospective study. Lancet Respir Med. 2021.<br />2.Cherrez-Ojeda I, Gochicoa-Rangel L, Salles-Rojas A, Mautong H. [Follow-up of patients after COVID-19 pneumonia. Pulmonary sequelae]. Rev Alerg Mex. 2020;67(4):350-69.<br />3.Kamal M, Abo Omirah M, Hussein A, Saeed H. Assessment and characterisation of post-COVID-19 manifestations. Int J Clin Pract. 2021;75(3):e13746.<br />4.Mikkelsen M, Abramoff B. COVID-19: Evaluation and management of adults following acute viral illness 2021 [homepage on the internet]; [updated Apr 26, 2021; cited May 29, 2021]. Availabel from <a href="https://www.uptodate.com/contents/covid-19-evaluation-and-management-of-adults-following-acute-viral-illness" rel="noopener">https://www.uptodate.com/contents/covid-19-evaluation-and-management-of-adults-following-acute-viral-illness</a><br />5.NHS. National guidance for post-COVID syndrome assessment clinics 2021 [homepage on the internet]; [updated Apr 26, 2021; cited May 29, 2021]. Available form <a href="https://www.england.nhs.uk/coronavirus/publication/national-guidance-for-post-covid-syndrome-assessment-clinics/" rel="noopener">https://www.england.nhs.uk/coronavirus/publication/national-guidance-for-post-covid-syndrome-assessment-clinics/</a><br />6.Ayoubkhani D, Khunti K, Nafilyan V, Maddox T, Humberstone B, Diamond I, et al. Post-covid syndrome in individuals admitted to hospital with covid-19: retrospective cohort study. BMJ. 2021;372:n693.<br />7.Nalbandian A, Sehgal K, Gupta A, Madhavan MV, McGroder C, Stevens JS, et al. Post-acute COVID-19 syndrome. Nat Med. 2021;27(4):601-15.<br />8.Fernandez-de-Las-Penas C, Palacios-Cena D, Gomez-Mayordomo V, Cuadrado ML, Florencio LL. Defining Post-COVID Symptoms (Post-Acute COVID, Long COVID, Persistent Post-COVID): An Integrative Classification. Int J Environ Res Public Health. 2021;18(5).<br />9.Mandal S, Barnett J, Brill SE, Brown JS, Denneny EK, Hare SS, et al. 'Long-COVID': a cross-sectional study of persisting symptoms, biomarker and imaging abnormalities following hospitalisation for COVID-19. Thorax. 2020.<br />10.Moreno-Perez O, Merino E, Leon-Ramirez JM, Andres M, Ramos JM, Arenas-Jimenez J, et al. Post-acute COVID-19 syndrome. Incidence and risk factors: A Mediterranean cohort study. J Infect. 2021;82(3):378-83.<br />11.British Thoracic Society Guidance on Respiratory Follow Up of Patients with a Clinico-Radiological Diagnosis of COVID-19 Pneumonia. [homepage on the internet]; [updated Apr 16, 2021; cited May 29, 2021]. Available from <a href="https://www.brit-thoracic.org.uk/covid-19/covid-19-information-for-the-respiratory-community/" rel="noopener">https://www.brit-thoracic.org.uk/covid-19/covid-19-information-for-the-respiratory-community/</a><br />12.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />13.D'Cruz RF, Waller MD, Perrin F, Periselneris J, Norton S, Smith LJ, et al. Chest radiography is a poor predictor of respiratory symptoms and functional impairment in survivors of severe COVID-19 pneumonia. ERJ Open Res. 2021;7(1).<br />14.Wallis TJM, Heiden E, Horno J, Welham B, Burke H, Freeman A, et al. Risk factors for persistent abnormality on chest radiographs at 12-weeks post hospitalisation with PCR confirmed COVID-19. Respir Res. 2021;22(1):157.<br />15.Donnelly JP, Wang XQ, Iwashyna TJ, Prescott HC. Readmission and Death After Initial Hospital Discharge Among Patients With COVID-19 in a Large Multihospital System. JAMA. 2021;325(3):304-6.<br />16.Aronson KI, Podolanczuk AJ. Lungs after COVID-19: Evolving Knowledge of Post-COVID-19 Interstitial Lung Disease. Ann Am Thorac Soc. 2021;18(5):773-4.<br />17.Myall KJ, Mukherjee B, Castanheira AM, Lam JL, Benedetti G, Mak SM, et al. Persistent Post-COVID-19 Interstitial Lung Disease. An Observational Study of Corticosteroid Treatment. Ann Am Thorac Soc. 2021;18(5):799-806.<br />18.Rai D. Post‐COVID‐19 Sequelae‐Issue Which Remain Unanswered. Journal of Applied Sciences and Clinical Practice. 2020;1(1):7-10.<br />19.Oronsky B, Larson C, Hammond TC, Oronsky A, Kesari S, Lybeck M, et al. A Review of Persistent Post-COVID Syndrome (PPCS). Clin Rev Allergy Immunol. 2021.<br />20.McDonald LT. Healing after COVID-19: are survivors at risk for pulmonary fibrosis? Am J Physiol Lung Cell Mol Physiol. 2021;320(2):L257-L65.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/45092669</guid><pubDate>Sat, 29 May 2021 22:57:34 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/45092669/sindrome_pos_covid_parte_ii.mp3" length="5973053" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências&#13;
1.Wu X, Liu X, Zhou Y, Yu H, Li R, Zhan Q, et al. 3-month, 6-month, 9-month, and 12-month respiratory outcomes in patients following COVID-19-related hospitalisation: a prospective study. Lancet Respir Med. 2021.&#13;
2.Cherrez-Ojeda I,...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Wu X, Liu X, Zhou Y, Yu H, Li R, Zhan Q, et al. 3-month, 6-month, 9-month, and 12-month respiratory outcomes in patients following COVID-19-related hospitalisation: a prospective study. Lancet Respir Med. 2021.<br />2.Cherrez-Ojeda I, Gochicoa-Rangel L, Salles-Rojas A, Mautong H. [Follow-up of patients after COVID-19 pneumonia. Pulmonary sequelae]. Rev Alerg Mex. 2020;67(4):350-69.<br />3.Kamal M, Abo Omirah M, Hussein A, Saeed H. Assessment and characterisation of post-COVID-19 manifestations. Int J Clin Pract. 2021;75(3):e13746.<br />4.Mikkelsen M, Abramoff B. COVID-19: Evaluation and management of adults following acute viral illness 2021 [homepage on the internet]; [updated Apr 26, 2021; cited May 29, 2021]. Availabel from <a href="https://www.uptodate.com/contents/covid-19-evaluation-and-management-of-adults-following-acute-viral-illness" rel="noopener">https://www.uptodate.com/contents/covid-19-evaluation-and-management-of-adults-following-acute-viral-illness</a><br />5.NHS. National guidance for post-COVID syndrome assessment clinics 2021 [homepage on the internet]; [updated Apr 26, 2021; cited May 29, 2021]. Available form <a href="https://www.england.nhs.uk/coronavirus/publication/national-guidance-for-post-covid-syndrome-assessment-clinics/" rel="noopener">https://www.england.nhs.uk/coronavirus/publication/national-guidance-for-post-covid-syndrome-assessment-clinics/</a><br />6.Ayoubkhani D, Khunti K, Nafilyan V, Maddox T, Humberstone B, Diamond I, et al. Post-covid syndrome in individuals admitted to hospital with covid-19: retrospective cohort study. BMJ. 2021;372:n693.<br />7.Nalbandian A, Sehgal K, Gupta A, Madhavan MV, McGroder C, Stevens JS, et al. Post-acute COVID-19 syndrome. Nat Med. 2021;27(4):601-15.<br />8.Fernandez-de-Las-Penas C, Palacios-Cena D, Gomez-Mayordomo V, Cuadrado ML, Florencio LL. Defining Post-COVID Symptoms (Post-Acute COVID, Long COVID, Persistent Post-COVID): An Integrative Classification. Int J Environ Res Public Health. 2021;18(5).<br />9.Mandal S, Barnett J, Brill SE, Brown JS, Denneny EK, Hare SS, et al. 'Long-COVID': a cross-sectional study of persisting symptoms, biomarker and imaging abnormalities following hospitalisation for COVID-19. Thorax. 2020.<br />10.Moreno-Perez O, Merino E, Leon-Ramirez JM, Andres M, Ramos JM, Arenas-Jimenez J, et al. Post-acute COVID-19 syndrome. Incidence and risk factors: A Mediterranean cohort study. J Infect. 2021;82(3):378-83.<br />11.British Thoracic Society Guidance on Respiratory Follow Up of Patients with a Clinico-Radiological Diagnosis of COVID-19 Pneumonia. [homepage on the internet]; [updated Apr 16, 2021; cited May 29, 2021]. Available from <a href="https://www.brit-thoracic.org.uk/covid-19/covid-19-information-for-the-respiratory-community/" rel="noopener">https://www.brit-thoracic.org.uk/covid-19/covid-19-information-for-the-respiratory-community/</a><br />12.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />13.D'Cruz RF, Waller MD, Perrin F, Periselneris J, Norton S, Smith LJ, et al. Chest radiography is a poor predictor of respiratory symptoms and functional impairment in survivors of severe COVID-19 pneumonia. ERJ Open Res. 2021;7(1).<br />14.Wallis TJM, Heiden E, Horno J, Welham B, Burke H, Freeman A, et al. Risk factors for persistent abnormality on chest radiographs at 12-weeks post hospitalisation with PCR confirmed COVID-19. Respir Res. 2021;22(1):157.<br />15.Donnelly JP, Wang XQ, Iwashyna TJ, Prescott HC. Readmission and Death After Initial Hospital Discharge Among Patients With COVID-19 in a Large Multihospital System. JAMA. 2021;325(3):304-6.<br />16.Aronson KI, Podolanczuk AJ. Lungs after COVID-19: Evolving Knowledge of Post-COVID-19 Interstitial Lung Disease. Ann Am Thorac Soc. 2021;18(5):773-4.<br />17.Myall KJ, Mukherjee B, Castanheira AM, Lam JL, Benedetti G, Mak SM, et al. Persistent...]]></itunes:summary><itunes:duration>374</itunes:duration><itunes:keywords>covid-19,pós-covid</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>SÍNDROME PÓS-COVID PARTE I</title><link>https://www.spreaker.com/episode/sindrome-pos-covid-parte-i--45092662</link><description><![CDATA[Referências<br />1.Wu X, Liu X, Zhou Y, Yu H, Li R, Zhan Q, et al. 3-month, 6-month, 9-month, and 12-month respiratory outcomes in patients following COVID-19-related hospitalisation: a prospective study. Lancet Respir Med. 2021.<br />2.Cherrez-Ojeda I, Gochicoa-Rangel L, Salles-Rojas A, Mautong H. [Follow-up of patients after COVID-19 pneumonia. Pulmonary sequelae]. Rev Alerg Mex. 2020;67(4):350-69.<br />3.Kamal M, Abo Omirah M, Hussein A, Saeed H. Assessment and characterisation of post-COVID-19 manifestations. Int J Clin Pract. 2021;75(3):e13746.<br />4.Mikkelsen M, Abramoff B. COVID-19: Evaluation and management of adults following acute viral illness 2021 [homepage on the internet]; [updated Apr 26, 2021; cited May 29, 2021]. Availabel from <a href="https://www.uptodate.com/contents/covid-19-evaluation-and-management-of-adults-following-acute-viral-illness" rel="noopener">https://www.uptodate.com/contents/covid-19-evaluation-and-management-of-adults-following-acute-viral-illness</a><br />5.NHS. National guidance for post-COVID syndrome assessment clinics 2021 [homepage on the internet]; [updated Apr 26, 2021; cited May 29, 2021]. Available form <a href="https://www.england.nhs.uk/coronavirus/publication/national-guidance-for-post-covid-syndrome-assessment-clinics/" rel="noopener">https://www.england.nhs.uk/coronavirus/publication/national-guidance-for-post-covid-syndrome-assessment-clinics/</a><br />6.Ayoubkhani D, Khunti K, Nafilyan V, Maddox T, Humberstone B, Diamond I, et al. Post-covid syndrome in individuals admitted to hospital with covid-19: retrospective cohort study. BMJ. 2021;372:n693.<br />7.Nalbandian A, Sehgal K, Gupta A, Madhavan MV, McGroder C, Stevens JS, et al. Post-acute COVID-19 syndrome. Nat Med. 2021;27(4):601-15.<br />8.Fernandez-de-Las-Penas C, Palacios-Cena D, Gomez-Mayordomo V, Cuadrado ML, Florencio LL. Defining Post-COVID Symptoms (Post-Acute COVID, Long COVID, Persistent Post-COVID): An Integrative Classification. Int J Environ Res Public Health. 2021;18(5).<br />9.Mandal S, Barnett J, Brill SE, Brown JS, Denneny EK, Hare SS, et al. 'Long-COVID': a cross-sectional study of persisting symptoms, biomarker and imaging abnormalities following hospitalisation for COVID-19. Thorax. 2020.<br />10.Moreno-Perez O, Merino E, Leon-Ramirez JM, Andres M, Ramos JM, Arenas-Jimenez J, et al. Post-acute COVID-19 syndrome. Incidence and risk factors: A Mediterranean cohort study. J Infect. 2021;82(3):378-83.<br />11.British Thoracic Society Guidance on Respiratory Follow Up of Patients with a Clinico-Radiological Diagnosis of COVID-19 Pneumonia. [homepage on the internet]; [updated Apr 16, 2021; cited May 29, 2021]. Available from <a href="https://www.brit-thoracic.org.uk/covid-19/covid-19-information-for-the-respiratory-community/" rel="noopener">https://www.brit-thoracic.org.uk/covid-19/covid-19-information-for-the-respiratory-community/</a><br />12.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />13.D'Cruz RF, Waller MD, Perrin F, Periselneris J, Norton S, Smith LJ, et al. Chest radiography is a poor predictor of respiratory symptoms and functional impairment in survivors of severe COVID-19 pneumonia. ERJ Open Res. 2021;7(1).<br />14.Wallis TJM, Heiden E, Horno J, Welham B, Burke H, Freeman A, et al. Risk factors for persistent abnormality on chest radiographs at 12-weeks post hospitalisation with PCR confirmed COVID-19. Respir Res. 2021;22(1):157.<br />15.Donnelly JP, Wang XQ, Iwashyna TJ, Prescott HC. Readmission and Death After Initial Hospital Discharge Among Patients With COVID-19 in a Large Multihospital System. JAMA. 2021;325(3):304-6.<br />16.Aronson KI, Podolanczuk AJ. Lungs after COVID-19: Evolving Knowledge of Post-COVID-19 Interstitial Lung Disease. Ann Am Thorac Soc. 2021;18(5):773-4.<br />17.Myall KJ, Mukherjee B, Castanheira AM, Lam JL, Benedetti G, Mak SM, et al. Persistent Post-COVID-19 Interstitial Lung Disease. An Observational Study of Corticosteroid Treatment. Ann Am Thorac Soc. 2021;18(5):799-806.<br />18.Rai D. Post‐COVID‐19 Sequelae‐Issue Which Remain Unanswered. Journal of Applied Sciences and Clinical Practice. 2020;1(1):7-10.<br />19.Oronsky B, Larson C, Hammond TC, Oronsky A, Kesari S, Lybeck M, et al. A Review of Persistent Post-COVID Syndrome (PPCS). Clin Rev Allergy Immunol. 2021.<br />20.McDonald LT. Healing after COVID-19: are survivors at risk for pulmonary fibrosis? Am J Physiol Lung Cell Mol Physiol. 2021;320(2):L257-L65.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/45092662</guid><pubDate>Sat, 29 May 2021 22:56:47 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/45092662/sindrome_pos_covid_parte_i.mp3" length="6013177" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências&#13;
1.Wu X, Liu X, Zhou Y, Yu H, Li R, Zhan Q, et al. 3-month, 6-month, 9-month, and 12-month respiratory outcomes in patients following COVID-19-related hospitalisation: a prospective study. Lancet Respir Med. 2021.&#13;
2.Cherrez-Ojeda I,...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Wu X, Liu X, Zhou Y, Yu H, Li R, Zhan Q, et al. 3-month, 6-month, 9-month, and 12-month respiratory outcomes in patients following COVID-19-related hospitalisation: a prospective study. Lancet Respir Med. 2021.<br />2.Cherrez-Ojeda I, Gochicoa-Rangel L, Salles-Rojas A, Mautong H. [Follow-up of patients after COVID-19 pneumonia. Pulmonary sequelae]. Rev Alerg Mex. 2020;67(4):350-69.<br />3.Kamal M, Abo Omirah M, Hussein A, Saeed H. Assessment and characterisation of post-COVID-19 manifestations. Int J Clin Pract. 2021;75(3):e13746.<br />4.Mikkelsen M, Abramoff B. COVID-19: Evaluation and management of adults following acute viral illness 2021 [homepage on the internet]; [updated Apr 26, 2021; cited May 29, 2021]. Availabel from <a href="https://www.uptodate.com/contents/covid-19-evaluation-and-management-of-adults-following-acute-viral-illness" rel="noopener">https://www.uptodate.com/contents/covid-19-evaluation-and-management-of-adults-following-acute-viral-illness</a><br />5.NHS. National guidance for post-COVID syndrome assessment clinics 2021 [homepage on the internet]; [updated Apr 26, 2021; cited May 29, 2021]. Available form <a href="https://www.england.nhs.uk/coronavirus/publication/national-guidance-for-post-covid-syndrome-assessment-clinics/" rel="noopener">https://www.england.nhs.uk/coronavirus/publication/national-guidance-for-post-covid-syndrome-assessment-clinics/</a><br />6.Ayoubkhani D, Khunti K, Nafilyan V, Maddox T, Humberstone B, Diamond I, et al. Post-covid syndrome in individuals admitted to hospital with covid-19: retrospective cohort study. BMJ. 2021;372:n693.<br />7.Nalbandian A, Sehgal K, Gupta A, Madhavan MV, McGroder C, Stevens JS, et al. Post-acute COVID-19 syndrome. Nat Med. 2021;27(4):601-15.<br />8.Fernandez-de-Las-Penas C, Palacios-Cena D, Gomez-Mayordomo V, Cuadrado ML, Florencio LL. Defining Post-COVID Symptoms (Post-Acute COVID, Long COVID, Persistent Post-COVID): An Integrative Classification. Int J Environ Res Public Health. 2021;18(5).<br />9.Mandal S, Barnett J, Brill SE, Brown JS, Denneny EK, Hare SS, et al. 'Long-COVID': a cross-sectional study of persisting symptoms, biomarker and imaging abnormalities following hospitalisation for COVID-19. Thorax. 2020.<br />10.Moreno-Perez O, Merino E, Leon-Ramirez JM, Andres M, Ramos JM, Arenas-Jimenez J, et al. Post-acute COVID-19 syndrome. Incidence and risk factors: A Mediterranean cohort study. J Infect. 2021;82(3):378-83.<br />11.British Thoracic Society Guidance on Respiratory Follow Up of Patients with a Clinico-Radiological Diagnosis of COVID-19 Pneumonia. [homepage on the internet]; [updated Apr 16, 2021; cited May 29, 2021]. Available from <a href="https://www.brit-thoracic.org.uk/covid-19/covid-19-information-for-the-respiratory-community/" rel="noopener">https://www.brit-thoracic.org.uk/covid-19/covid-19-information-for-the-respiratory-community/</a><br />12.Han X, Fan Y, Alwalid O, Li N, Jia X, Yuan M, et al. Six-month Follow-up Chest CT Findings after Severe COVID-19 Pneumonia. Radiology. 2021;299(1):E177-E86.<br />13.D'Cruz RF, Waller MD, Perrin F, Periselneris J, Norton S, Smith LJ, et al. Chest radiography is a poor predictor of respiratory symptoms and functional impairment in survivors of severe COVID-19 pneumonia. ERJ Open Res. 2021;7(1).<br />14.Wallis TJM, Heiden E, Horno J, Welham B, Burke H, Freeman A, et al. Risk factors for persistent abnormality on chest radiographs at 12-weeks post hospitalisation with PCR confirmed COVID-19. Respir Res. 2021;22(1):157.<br />15.Donnelly JP, Wang XQ, Iwashyna TJ, Prescott HC. Readmission and Death After Initial Hospital Discharge Among Patients With COVID-19 in a Large Multihospital System. JAMA. 2021;325(3):304-6.<br />16.Aronson KI, Podolanczuk AJ. Lungs after COVID-19: Evolving Knowledge of Post-COVID-19 Interstitial Lung Disease. Ann Am Thorac Soc. 2021;18(5):773-4.<br />17.Myall KJ, Mukherjee B, Castanheira AM, Lam JL, Benedetti G, Mak SM, et al. Persistent...]]></itunes:summary><itunes:duration>376</itunes:duration><itunes:keywords>covid-19,pós-covid</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>EMBOLIA PULMONAR E TC DE TÓRAX PARTE IV - COVID-19</title><link>https://www.spreaker.com/episode/embolia-pulmonar-e-tc-de-torax-parte-iv-covid-19--44852574</link><description><![CDATA[Referências<br /><br />1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.<br />2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola VP, et al. 2019 ESC Guidelines for the diagnosis and management of acute pulmonary embolism developed in collaboration with the European Respiratory Society (ERS). Eur Heart J. 2020;41(4):543-603.<br />3.Essien EO, Rali P, Mathai SC. Pulmonary Embolism. Med Clin North Am. 2019;103(3):549-64.<br />4.Albrecht MH, Bickford MW, Nance JW, Jr., Zhang L, De Cecco CN, Wichmann JL, et al. State-of-the-Art Pulmonary CT Angiography for Acute Pulmonary Embolism. AJR Am J Roentgenol. 2017;208(3):495-504.<br />5.Moore AJE, Wachsmann J, Chamarthy MR, Panjikaran L, Tanabe Y, Rajiah P. Imaging of acute pulmonary embolism: an update. Cardiovasc Diagn Ther. 2018;8(3):225-43.<br />6.Kline JA. Diagnosis and Exclusion of Pulmonary Embolism. Thromb Res. 2018;163:207-20.<br />7.Raju S, Ghosh S, Mehta AC. Chest CT Signs in Pulmonary Disease: A Pictorial Review. Chest. 2017;151(6):1356-74.<br />8.Lyhne MD, Schultz JG, MacMahon PJ, Haddad F, Kalra M, Tso DM, et al. Septal bowing and pulmonary artery diameter on computed tomography pulmonary angiography are associated with short-term outcomes in patients with acute pulmonary embolism. Emerg Radiol. 2019;26(6):623-30.<br />9.Beenen LFM, Bossuyt PMM, Stoker J, Middeldorp S. Prognostic value of cardiovascular parameters in computed tomography pulmonary angiography in patients with acute pulmonary embolism. Eur Respir J. 2018;52(1).<br />10.Doherty S. Pulmonary embolism An update. Aust Fam Physician. 2017;46(11):816-20.<br />11.Peiman S, Abbasi M, Allameh SF, Asadi Gharabaghi M, Abtahi H, Safavi E. Subsegmental pulmonary embolism: A narrative review. Thromb Res. 2016;138:55-60.<br />12.Im DJ, Hur J, Han KH, Lee HJ, Kim YJ, Kwon W, et al. Acute Pulmonary Embolism: Retrospective Cohort Study of the Predictive Value of Perfusion Defect Volume Measured With Dual-Energy CT. AJR Am J Roentgenol. 2017;209(5):1015-22.<br />13.Weidman EK, Plodkowski AJ, Halpenny DF, Hayes SA, Perez-Johnston R, Zheng J, et al. Dual-Energy CT Angiography for Detection of Pulmonary Emboli: Incremental Benefit of Iodine Maps. Radiology. 2018;289(2):546-53.<br />14.Celtikci P, Hekimoglu K, Kahraman G, Bozbas S, Gultekin B, Akay HT. Diagnostic Impact of Quantitative Dual-Energy Computed Tomography Perfusion Imaging for the Assessment of Subsegmental Pulmonary Embolism. J Comput Assist Tomogr. 2021;45(1):151-6.<br />15.O'Shea A, Parakh A, Hedgire S, Lee SI. Multisystem Assessment of the Imaging Manifestations of Coagulopathy in Hospitalized Patients With Coronavirus Disease (COVID-19). AJR Am J Roentgenol. 2021;216(4):1088-98.<br />16.Patelli G, Paganoni S, Besana F, Codazzi F, Ronzoni M, Manini S, et al. Preliminary detection of lung hypoperfusion in discharged Covid-19 patients during recovery. Eur J Radiol. 2020;129:109121.<br />17.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020;297(3):E335-E8.<br />18.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021:204522.<br />19.Hammer MM, Raptis CA. COVID-19 and Pulmonary Thromboembolism. Radiology. 2021;299(2):E252.<br />20.Suh YJ, Hong H, Ohana M, Bompard F, Revel MP, Valle C, et al. Pulmonary Embolism and Deep Vein Thrombosis in COVID-19: A Systematic Review and Meta-Analysis. Radiology. 2021;298(2):E70-E80.<br />21.Woodard PK. Pulmonary Thromboembolism in COVID-19. Radiology. 2021;298(2):E107-E8.<br />22.Valle C, Bonaffini PA, Dal Corso M, Mercanzin E, Franco PN, Sonzogni A, et al. Association between pulmonary embolism and COVID-19 severe pneumonia: Experience from two centers in the core of the infection Italian peak. Eur J Radiol. 2021;137:109613.<br />23.Ooi MWX, Rajai A, Patel R, Gerova N, Godhamgaonkar V, Liong SY. Pulmonary thromboembolic disease in COVID-19 patients on CT pulmonary angiography - Prevalence, pattern of disease and relationship to D-dimer. Eur J Radiol. 2020;132:109336.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44852574</guid><pubDate>Sun, 16 May 2021 14:33:55 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44852574/embolia_pulmonar_e_tc_de_torax_parte_iv_covid_19.mp3" length="2301282" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências

1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.
2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola...</itunes:subtitle><itunes:summary><![CDATA[Referências<br /><br />1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.<br />2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola VP, et al. 2019 ESC Guidelines for the diagnosis and management of acute pulmonary embolism developed in collaboration with the European Respiratory Society (ERS). Eur Heart J. 2020;41(4):543-603.<br />3.Essien EO, Rali P, Mathai SC. Pulmonary Embolism. Med Clin North Am. 2019;103(3):549-64.<br />4.Albrecht MH, Bickford MW, Nance JW, Jr., Zhang L, De Cecco CN, Wichmann JL, et al. State-of-the-Art Pulmonary CT Angiography for Acute Pulmonary Embolism. AJR Am J Roentgenol. 2017;208(3):495-504.<br />5.Moore AJE, Wachsmann J, Chamarthy MR, Panjikaran L, Tanabe Y, Rajiah P. Imaging of acute pulmonary embolism: an update. Cardiovasc Diagn Ther. 2018;8(3):225-43.<br />6.Kline JA. Diagnosis and Exclusion of Pulmonary Embolism. Thromb Res. 2018;163:207-20.<br />7.Raju S, Ghosh S, Mehta AC. Chest CT Signs in Pulmonary Disease: A Pictorial Review. Chest. 2017;151(6):1356-74.<br />8.Lyhne MD, Schultz JG, MacMahon PJ, Haddad F, Kalra M, Tso DM, et al. Septal bowing and pulmonary artery diameter on computed tomography pulmonary angiography are associated with short-term outcomes in patients with acute pulmonary embolism. Emerg Radiol. 2019;26(6):623-30.<br />9.Beenen LFM, Bossuyt PMM, Stoker J, Middeldorp S. Prognostic value of cardiovascular parameters in computed tomography pulmonary angiography in patients with acute pulmonary embolism. Eur Respir J. 2018;52(1).<br />10.Doherty S. Pulmonary embolism An update. Aust Fam Physician. 2017;46(11):816-20.<br />11.Peiman S, Abbasi M, Allameh SF, Asadi Gharabaghi M, Abtahi H, Safavi E. Subsegmental pulmonary embolism: A narrative review. Thromb Res. 2016;138:55-60.<br />12.Im DJ, Hur J, Han KH, Lee HJ, Kim YJ, Kwon W, et al. Acute Pulmonary Embolism: Retrospective Cohort Study of the Predictive Value of Perfusion Defect Volume Measured With Dual-Energy CT. AJR Am J Roentgenol. 2017;209(5):1015-22.<br />13.Weidman EK, Plodkowski AJ, Halpenny DF, Hayes SA, Perez-Johnston R, Zheng J, et al. Dual-Energy CT Angiography for Detection of Pulmonary Emboli: Incremental Benefit of Iodine Maps. Radiology. 2018;289(2):546-53.<br />14.Celtikci P, Hekimoglu K, Kahraman G, Bozbas S, Gultekin B, Akay HT. Diagnostic Impact of Quantitative Dual-Energy Computed Tomography Perfusion Imaging for the Assessment of Subsegmental Pulmonary Embolism. J Comput Assist Tomogr. 2021;45(1):151-6.<br />15.O'Shea A, Parakh A, Hedgire S, Lee SI. Multisystem Assessment of the Imaging Manifestations of Coagulopathy in Hospitalized Patients With Coronavirus Disease (COVID-19). AJR Am J Roentgenol. 2021;216(4):1088-98.<br />16.Patelli G, Paganoni S, Besana F, Codazzi F, Ronzoni M, Manini S, et al. Preliminary detection of lung hypoperfusion in discharged Covid-19 patients during recovery. Eur J Radiol. 2020;129:109121.<br />17.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020;297(3):E335-E8.<br />18.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021:204522.<br />19.Hammer MM, Raptis CA. COVID-19 and Pulmonary Thromboembolism. Radiology. 2021;299(2):E252.<br />20.Suh YJ, Hong H, Ohana M, Bompard F, Revel MP, Valle C, et al. Pulmonary Embolism and Deep Vein Thrombosis in COVID-19: A Systematic Review and Meta-Analysis. Radiology. 2021;298(2):E70-E80.<br />21.Woodard PK. Pulmonary Thromboembolism in COVID-19. Radiology. 2021;298(2):E107-E8.<br />22.Valle C, Bonaffini PA, Dal Corso M, Mercanzin E, Franco PN, Sonzogni A, et al. Association between pulmonary embolism and COVID-19 severe pneumonia: Experience from two centers in the core of the infection Italian peak. Eur J Radiol. 2021;137:109613.<br...]]></itunes:summary><itunes:duration>144</itunes:duration><itunes:keywords>covid-19,embolia,tc,tomografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>EMBOLIA PULMONAR E TC DE TÓRAX PARTE III</title><link>https://www.spreaker.com/episode/embolia-pulmonar-e-tc-de-torax-parte-iii--44852515</link><description><![CDATA[Referências<br /><br />1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.<br />2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola VP, et al. 2019 ESC Guidelines for the diagnosis and management of acute pulmonary embolism developed in collaboration with the European Respiratory Society (ERS). Eur Heart J. 2020;41(4):543-603.<br />3.Essien EO, Rali P, Mathai SC. Pulmonary Embolism. Med Clin North Am. 2019;103(3):549-64.<br />4.Albrecht MH, Bickford MW, Nance JW, Jr., Zhang L, De Cecco CN, Wichmann JL, et al. State-of-the-Art Pulmonary CT Angiography for Acute Pulmonary Embolism. AJR Am J Roentgenol. 2017;208(3):495-504.<br />5.Moore AJE, Wachsmann J, Chamarthy MR, Panjikaran L, Tanabe Y, Rajiah P. Imaging of acute pulmonary embolism: an update. Cardiovasc Diagn Ther. 2018;8(3):225-43.<br />6.Kline JA. Diagnosis and Exclusion of Pulmonary Embolism. Thromb Res. 2018;163:207-20.<br />7.Raju S, Ghosh S, Mehta AC. Chest CT Signs in Pulmonary Disease: A Pictorial Review. Chest. 2017;151(6):1356-74.<br />8.Lyhne MD, Schultz JG, MacMahon PJ, Haddad F, Kalra M, Tso DM, et al. Septal bowing and pulmonary artery diameter on computed tomography pulmonary angiography are associated with short-term outcomes in patients with acute pulmonary embolism. Emerg Radiol. 2019;26(6):623-30.<br />9.Beenen LFM, Bossuyt PMM, Stoker J, Middeldorp S. Prognostic value of cardiovascular parameters in computed tomography pulmonary angiography in patients with acute pulmonary embolism. Eur Respir J. 2018;52(1).<br />10.Doherty S. Pulmonary embolism An update. Aust Fam Physician. 2017;46(11):816-20.<br />11.Peiman S, Abbasi M, Allameh SF, Asadi Gharabaghi M, Abtahi H, Safavi E. Subsegmental pulmonary embolism: A narrative review. Thromb Res. 2016;138:55-60.<br />12.Im DJ, Hur J, Han KH, Lee HJ, Kim YJ, Kwon W, et al. Acute Pulmonary Embolism: Retrospective Cohort Study of the Predictive Value of Perfusion Defect Volume Measured With Dual-Energy CT. AJR Am J Roentgenol. 2017;209(5):1015-22.<br />13.Weidman EK, Plodkowski AJ, Halpenny DF, Hayes SA, Perez-Johnston R, Zheng J, et al. Dual-Energy CT Angiography for Detection of Pulmonary Emboli: Incremental Benefit of Iodine Maps. Radiology. 2018;289(2):546-53.<br />14.Celtikci P, Hekimoglu K, Kahraman G, Bozbas S, Gultekin B, Akay HT. Diagnostic Impact of Quantitative Dual-Energy Computed Tomography Perfusion Imaging for the Assessment of Subsegmental Pulmonary Embolism. J Comput Assist Tomogr. 2021;45(1):151-6.<br />15.O'Shea A, Parakh A, Hedgire S, Lee SI. Multisystem Assessment of the Imaging Manifestations of Coagulopathy in Hospitalized Patients With Coronavirus Disease (COVID-19). AJR Am J Roentgenol. 2021;216(4):1088-98.<br />16.Patelli G, Paganoni S, Besana F, Codazzi F, Ronzoni M, Manini S, et al. Preliminary detection of lung hypoperfusion in discharged Covid-19 patients during recovery. Eur J Radiol. 2020;129:109121.<br />17.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020;297(3):E335-E8.<br />18.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021:204522.<br />19.Hammer MM, Raptis CA. COVID-19 and Pulmonary Thromboembolism. Radiology. 2021;299(2):E252.<br />20.Suh YJ, Hong H, Ohana M, Bompard F, Revel MP, Valle C, et al. Pulmonary Embolism and Deep Vein Thrombosis in COVID-19: A Systematic Review and Meta-Analysis. Radiology. 2021;298(2):E70-E80.<br />21.Woodard PK. Pulmonary Thromboembolism in COVID-19. Radiology. 2021;298(2):E107-E8.<br />22.Valle C, Bonaffini PA, Dal Corso M, Mercanzin E, Franco PN, Sonzogni A, et al. Association between pulmonary embolism and COVID-19 severe pneumonia: Experience from two centers in the core of the infection Italian peak. Eur J Radiol. 2021;137:109613.<br />23.Ooi MWX, Rajai A, Patel R, Gerova N, Godhamgaonkar V, Liong SY. Pulmonary thromboembolic disease in COVID-19 patients on CT pulmonary angiography - Prevalence, pattern of disease and relationship to D-dimer. Eur J Radiol. 2020;132:109336.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44852515</guid><pubDate>Sun, 16 May 2021 14:30:12 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44852515/embolia_pulmonar_e_tc_de_torax_parte_iii.mp3" length="4432874" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências

1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.
2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola...</itunes:subtitle><itunes:summary><![CDATA[Referências<br /><br />1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.<br />2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola VP, et al. 2019 ESC Guidelines for the diagnosis and management of acute pulmonary embolism developed in collaboration with the European Respiratory Society (ERS). Eur Heart J. 2020;41(4):543-603.<br />3.Essien EO, Rali P, Mathai SC. Pulmonary Embolism. Med Clin North Am. 2019;103(3):549-64.<br />4.Albrecht MH, Bickford MW, Nance JW, Jr., Zhang L, De Cecco CN, Wichmann JL, et al. State-of-the-Art Pulmonary CT Angiography for Acute Pulmonary Embolism. AJR Am J Roentgenol. 2017;208(3):495-504.<br />5.Moore AJE, Wachsmann J, Chamarthy MR, Panjikaran L, Tanabe Y, Rajiah P. Imaging of acute pulmonary embolism: an update. Cardiovasc Diagn Ther. 2018;8(3):225-43.<br />6.Kline JA. Diagnosis and Exclusion of Pulmonary Embolism. Thromb Res. 2018;163:207-20.<br />7.Raju S, Ghosh S, Mehta AC. Chest CT Signs in Pulmonary Disease: A Pictorial Review. Chest. 2017;151(6):1356-74.<br />8.Lyhne MD, Schultz JG, MacMahon PJ, Haddad F, Kalra M, Tso DM, et al. Septal bowing and pulmonary artery diameter on computed tomography pulmonary angiography are associated with short-term outcomes in patients with acute pulmonary embolism. Emerg Radiol. 2019;26(6):623-30.<br />9.Beenen LFM, Bossuyt PMM, Stoker J, Middeldorp S. Prognostic value of cardiovascular parameters in computed tomography pulmonary angiography in patients with acute pulmonary embolism. Eur Respir J. 2018;52(1).<br />10.Doherty S. Pulmonary embolism An update. Aust Fam Physician. 2017;46(11):816-20.<br />11.Peiman S, Abbasi M, Allameh SF, Asadi Gharabaghi M, Abtahi H, Safavi E. Subsegmental pulmonary embolism: A narrative review. Thromb Res. 2016;138:55-60.<br />12.Im DJ, Hur J, Han KH, Lee HJ, Kim YJ, Kwon W, et al. Acute Pulmonary Embolism: Retrospective Cohort Study of the Predictive Value of Perfusion Defect Volume Measured With Dual-Energy CT. AJR Am J Roentgenol. 2017;209(5):1015-22.<br />13.Weidman EK, Plodkowski AJ, Halpenny DF, Hayes SA, Perez-Johnston R, Zheng J, et al. Dual-Energy CT Angiography for Detection of Pulmonary Emboli: Incremental Benefit of Iodine Maps. Radiology. 2018;289(2):546-53.<br />14.Celtikci P, Hekimoglu K, Kahraman G, Bozbas S, Gultekin B, Akay HT. Diagnostic Impact of Quantitative Dual-Energy Computed Tomography Perfusion Imaging for the Assessment of Subsegmental Pulmonary Embolism. J Comput Assist Tomogr. 2021;45(1):151-6.<br />15.O'Shea A, Parakh A, Hedgire S, Lee SI. Multisystem Assessment of the Imaging Manifestations of Coagulopathy in Hospitalized Patients With Coronavirus Disease (COVID-19). AJR Am J Roentgenol. 2021;216(4):1088-98.<br />16.Patelli G, Paganoni S, Besana F, Codazzi F, Ronzoni M, Manini S, et al. Preliminary detection of lung hypoperfusion in discharged Covid-19 patients during recovery. Eur J Radiol. 2020;129:109121.<br />17.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020;297(3):E335-E8.<br />18.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021:204522.<br />19.Hammer MM, Raptis CA. COVID-19 and Pulmonary Thromboembolism. Radiology. 2021;299(2):E252.<br />20.Suh YJ, Hong H, Ohana M, Bompard F, Revel MP, Valle C, et al. Pulmonary Embolism and Deep Vein Thrombosis in COVID-19: A Systematic Review and Meta-Analysis. Radiology. 2021;298(2):E70-E80.<br />21.Woodard PK. Pulmonary Thromboembolism in COVID-19. Radiology. 2021;298(2):E107-E8.<br />22.Valle C, Bonaffini PA, Dal Corso M, Mercanzin E, Franco PN, Sonzogni A, et al. Association between pulmonary embolism and COVID-19 severe pneumonia: Experience from two centers in the core of the infection Italian peak. Eur J Radiol. 2021;137:109613.<br...]]></itunes:summary><itunes:duration>277</itunes:duration><itunes:keywords>covid-19,embolia,tc,tomografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>EMBOLIA PULMONAR E TC DE TÓRAX PARTE II</title><link>https://www.spreaker.com/episode/embolia-pulmonar-e-tc-de-torax-parte-ii--44852432</link><description><![CDATA[Referências<br /><br />1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.<br />2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola VP, et al. 2019 ESC Guidelines for the diagnosis and management of acute pulmonary embolism developed in collaboration with the European Respiratory Society (ERS). Eur Heart J. 2020;41(4):543-603.<br />3.Essien EO, Rali P, Mathai SC. Pulmonary Embolism. Med Clin North Am. 2019;103(3):549-64.<br />4.Albrecht MH, Bickford MW, Nance JW, Jr., Zhang L, De Cecco CN, Wichmann JL, et al. State-of-the-Art Pulmonary CT Angiography for Acute Pulmonary Embolism. AJR Am J Roentgenol. 2017;208(3):495-504.<br />5.Moore AJE, Wachsmann J, Chamarthy MR, Panjikaran L, Tanabe Y, Rajiah P. Imaging of acute pulmonary embolism: an update. Cardiovasc Diagn Ther. 2018;8(3):225-43.<br />6.Kline JA. Diagnosis and Exclusion of Pulmonary Embolism. Thromb Res. 2018;163:207-20.<br />7.Raju S, Ghosh S, Mehta AC. Chest CT Signs in Pulmonary Disease: A Pictorial Review. Chest. 2017;151(6):1356-74.<br />8.Lyhne MD, Schultz JG, MacMahon PJ, Haddad F, Kalra M, Tso DM, et al. Septal bowing and pulmonary artery diameter on computed tomography pulmonary angiography are associated with short-term outcomes in patients with acute pulmonary embolism. Emerg Radiol. 2019;26(6):623-30.<br />9.Beenen LFM, Bossuyt PMM, Stoker J, Middeldorp S. Prognostic value of cardiovascular parameters in computed tomography pulmonary angiography in patients with acute pulmonary embolism. Eur Respir J. 2018;52(1).<br />10.Doherty S. Pulmonary embolism An update. Aust Fam Physician. 2017;46(11):816-20.<br />11.Peiman S, Abbasi M, Allameh SF, Asadi Gharabaghi M, Abtahi H, Safavi E. Subsegmental pulmonary embolism: A narrative review. Thromb Res. 2016;138:55-60.<br />12.Im DJ, Hur J, Han KH, Lee HJ, Kim YJ, Kwon W, et al. Acute Pulmonary Embolism: Retrospective Cohort Study of the Predictive Value of Perfusion Defect Volume Measured With Dual-Energy CT. AJR Am J Roentgenol. 2017;209(5):1015-22.<br />13.Weidman EK, Plodkowski AJ, Halpenny DF, Hayes SA, Perez-Johnston R, Zheng J, et al. Dual-Energy CT Angiography for Detection of Pulmonary Emboli: Incremental Benefit of Iodine Maps. Radiology. 2018;289(2):546-53.<br />14.Celtikci P, Hekimoglu K, Kahraman G, Bozbas S, Gultekin B, Akay HT. Diagnostic Impact of Quantitative Dual-Energy Computed Tomography Perfusion Imaging for the Assessment of Subsegmental Pulmonary Embolism. J Comput Assist Tomogr. 2021;45(1):151-6.<br />15.O'Shea A, Parakh A, Hedgire S, Lee SI. Multisystem Assessment of the Imaging Manifestations of Coagulopathy in Hospitalized Patients With Coronavirus Disease (COVID-19). AJR Am J Roentgenol. 2021;216(4):1088-98.<br />16.Patelli G, Paganoni S, Besana F, Codazzi F, Ronzoni M, Manini S, et al. Preliminary detection of lung hypoperfusion in discharged Covid-19 patients during recovery. Eur J Radiol. 2020;129:109121.<br />17.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020;297(3):E335-E8.<br />18.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021:204522.<br />19.Hammer MM, Raptis CA. COVID-19 and Pulmonary Thromboembolism. Radiology. 2021;299(2):E252.<br />20.Suh YJ, Hong H, Ohana M, Bompard F, Revel MP, Valle C, et al. Pulmonary Embolism and Deep Vein Thrombosis in COVID-19: A Systematic Review and Meta-Analysis. Radiology. 2021;298(2):E70-E80.<br />21.Woodard PK. Pulmonary Thromboembolism in COVID-19. Radiology. 2021;298(2):E107-E8.<br />22.Valle C, Bonaffini PA, Dal Corso M, Mercanzin E, Franco PN, Sonzogni A, et al. Association between pulmonary embolism and COVID-19 severe pneumonia: Experience from two centers in the core of the infection Italian peak. Eur J Radiol. 2021;137:109613.<br />23.Ooi MWX, Rajai A, Patel R, Gerova N, Godhamgaonkar V, Liong SY. Pulmonary thromboembolic disease in COVID-19 patients on CT pulmonary angiography - Prevalence, pattern of disease and relationship to D-dimer. Eur J Radiol. 2020;132:109336.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44852432</guid><pubDate>Sun, 16 May 2021 14:22:47 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44852432/embolia_pulmonar_e_tc_de_torax_parte_ii.mp3" length="3576475" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências

1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.
2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola...</itunes:subtitle><itunes:summary><![CDATA[Referências<br /><br />1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.<br />2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola VP, et al. 2019 ESC Guidelines for the diagnosis and management of acute pulmonary embolism developed in collaboration with the European Respiratory Society (ERS). Eur Heart J. 2020;41(4):543-603.<br />3.Essien EO, Rali P, Mathai SC. Pulmonary Embolism. Med Clin North Am. 2019;103(3):549-64.<br />4.Albrecht MH, Bickford MW, Nance JW, Jr., Zhang L, De Cecco CN, Wichmann JL, et al. State-of-the-Art Pulmonary CT Angiography for Acute Pulmonary Embolism. AJR Am J Roentgenol. 2017;208(3):495-504.<br />5.Moore AJE, Wachsmann J, Chamarthy MR, Panjikaran L, Tanabe Y, Rajiah P. Imaging of acute pulmonary embolism: an update. Cardiovasc Diagn Ther. 2018;8(3):225-43.<br />6.Kline JA. Diagnosis and Exclusion of Pulmonary Embolism. Thromb Res. 2018;163:207-20.<br />7.Raju S, Ghosh S, Mehta AC. Chest CT Signs in Pulmonary Disease: A Pictorial Review. Chest. 2017;151(6):1356-74.<br />8.Lyhne MD, Schultz JG, MacMahon PJ, Haddad F, Kalra M, Tso DM, et al. Septal bowing and pulmonary artery diameter on computed tomography pulmonary angiography are associated with short-term outcomes in patients with acute pulmonary embolism. Emerg Radiol. 2019;26(6):623-30.<br />9.Beenen LFM, Bossuyt PMM, Stoker J, Middeldorp S. Prognostic value of cardiovascular parameters in computed tomography pulmonary angiography in patients with acute pulmonary embolism. Eur Respir J. 2018;52(1).<br />10.Doherty S. Pulmonary embolism An update. Aust Fam Physician. 2017;46(11):816-20.<br />11.Peiman S, Abbasi M, Allameh SF, Asadi Gharabaghi M, Abtahi H, Safavi E. Subsegmental pulmonary embolism: A narrative review. Thromb Res. 2016;138:55-60.<br />12.Im DJ, Hur J, Han KH, Lee HJ, Kim YJ, Kwon W, et al. Acute Pulmonary Embolism: Retrospective Cohort Study of the Predictive Value of Perfusion Defect Volume Measured With Dual-Energy CT. AJR Am J Roentgenol. 2017;209(5):1015-22.<br />13.Weidman EK, Plodkowski AJ, Halpenny DF, Hayes SA, Perez-Johnston R, Zheng J, et al. Dual-Energy CT Angiography for Detection of Pulmonary Emboli: Incremental Benefit of Iodine Maps. Radiology. 2018;289(2):546-53.<br />14.Celtikci P, Hekimoglu K, Kahraman G, Bozbas S, Gultekin B, Akay HT. Diagnostic Impact of Quantitative Dual-Energy Computed Tomography Perfusion Imaging for the Assessment of Subsegmental Pulmonary Embolism. J Comput Assist Tomogr. 2021;45(1):151-6.<br />15.O'Shea A, Parakh A, Hedgire S, Lee SI. Multisystem Assessment of the Imaging Manifestations of Coagulopathy in Hospitalized Patients With Coronavirus Disease (COVID-19). AJR Am J Roentgenol. 2021;216(4):1088-98.<br />16.Patelli G, Paganoni S, Besana F, Codazzi F, Ronzoni M, Manini S, et al. Preliminary detection of lung hypoperfusion in discharged Covid-19 patients during recovery. Eur J Radiol. 2020;129:109121.<br />17.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020;297(3):E335-E8.<br />18.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021:204522.<br />19.Hammer MM, Raptis CA. COVID-19 and Pulmonary Thromboembolism. Radiology. 2021;299(2):E252.<br />20.Suh YJ, Hong H, Ohana M, Bompard F, Revel MP, Valle C, et al. Pulmonary Embolism and Deep Vein Thrombosis in COVID-19: A Systematic Review and Meta-Analysis. Radiology. 2021;298(2):E70-E80.<br />21.Woodard PK. Pulmonary Thromboembolism in COVID-19. Radiology. 2021;298(2):E107-E8.<br />22.Valle C, Bonaffini PA, Dal Corso M, Mercanzin E, Franco PN, Sonzogni A, et al. Association between pulmonary embolism and COVID-19 severe pneumonia: Experience from two centers in the core of the infection Italian peak. Eur J Radiol. 2021;137:109613.<br...]]></itunes:summary><itunes:duration>224</itunes:duration><itunes:keywords>covid-19,embolia,tc,toografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>EMBOLIA PULMONAR E TC DE TÓRAX PARTE I</title><link>https://www.spreaker.com/episode/embolia-pulmonar-e-tc-de-torax-parte-i--44852327</link><description><![CDATA[Referências<br /><br />1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.<br />2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola VP, et al. 2019 ESC Guidelines for the diagnosis and management of acute pulmonary embolism developed in collaboration with the European Respiratory Society (ERS). Eur Heart J. 2020;41(4):543-603.<br />3.Essien EO, Rali P, Mathai SC. Pulmonary Embolism. Med Clin North Am. 2019;103(3):549-64.<br />4.Albrecht MH, Bickford MW, Nance JW, Jr., Zhang L, De Cecco CN, Wichmann JL, et al. State-of-the-Art Pulmonary CT Angiography for Acute Pulmonary Embolism. AJR Am J Roentgenol. 2017;208(3):495-504.<br />5.Moore AJE, Wachsmann J, Chamarthy MR, Panjikaran L, Tanabe Y, Rajiah P. Imaging of acute pulmonary embolism: an update. Cardiovasc Diagn Ther. 2018;8(3):225-43.<br />6.Kline JA. Diagnosis and Exclusion of Pulmonary Embolism. Thromb Res. 2018;163:207-20.<br />7.Raju S, Ghosh S, Mehta AC. Chest CT Signs in Pulmonary Disease: A Pictorial Review. Chest. 2017;151(6):1356-74.<br />8.Lyhne MD, Schultz JG, MacMahon PJ, Haddad F, Kalra M, Tso DM, et al. Septal bowing and pulmonary artery diameter on computed tomography pulmonary angiography are associated with short-term outcomes in patients with acute pulmonary embolism. Emerg Radiol. 2019;26(6):623-30.<br />9.Beenen LFM, Bossuyt PMM, Stoker J, Middeldorp S. Prognostic value of cardiovascular parameters in computed tomography pulmonary angiography in patients with acute pulmonary embolism. Eur Respir J. 2018;52(1).<br />10.Doherty S. Pulmonary embolism An update. Aust Fam Physician. 2017;46(11):816-20.<br />11.Peiman S, Abbasi M, Allameh SF, Asadi Gharabaghi M, Abtahi H, Safavi E. Subsegmental pulmonary embolism: A narrative review. Thromb Res. 2016;138:55-60.<br />12.Im DJ, Hur J, Han KH, Lee HJ, Kim YJ, Kwon W, et al. Acute Pulmonary Embolism: Retrospective Cohort Study of the Predictive Value of Perfusion Defect Volume Measured With Dual-Energy CT. AJR Am J Roentgenol. 2017;209(5):1015-22.<br />13.Weidman EK, Plodkowski AJ, Halpenny DF, Hayes SA, Perez-Johnston R, Zheng J, et al. Dual-Energy CT Angiography for Detection of Pulmonary Emboli: Incremental Benefit of Iodine Maps. Radiology. 2018;289(2):546-53.<br />14.Celtikci P, Hekimoglu K, Kahraman G, Bozbas S, Gultekin B, Akay HT. Diagnostic Impact of Quantitative Dual-Energy Computed Tomography Perfusion Imaging for the Assessment of Subsegmental Pulmonary Embolism. J Comput Assist Tomogr. 2021;45(1):151-6.<br />15.O'Shea A, Parakh A, Hedgire S, Lee SI. Multisystem Assessment of the Imaging Manifestations of Coagulopathy in Hospitalized Patients With Coronavirus Disease (COVID-19). AJR Am J Roentgenol. 2021;216(4):1088-98.<br />16.Patelli G, Paganoni S, Besana F, Codazzi F, Ronzoni M, Manini S, et al. Preliminary detection of lung hypoperfusion in discharged Covid-19 patients during recovery. Eur J Radiol. 2020;129:109121.<br />17.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020;297(3):E335-E8.<br />18.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021:204522.<br />19.Hammer MM, Raptis CA. COVID-19 and Pulmonary Thromboembolism. Radiology. 2021;299(2):E252.<br />20.Suh YJ, Hong H, Ohana M, Bompard F, Revel MP, Valle C, et al. Pulmonary Embolism and Deep Vein Thrombosis in COVID-19: A Systematic Review and Meta-Analysis. Radiology. 2021;298(2):E70-E80.<br />21.Woodard PK. Pulmonary Thromboembolism in COVID-19. Radiology. 2021;298(2):E107-E8.<br />22.Valle C, Bonaffini PA, Dal Corso M, Mercanzin E, Franco PN, Sonzogni A, et al. Association between pulmonary embolism and COVID-19 severe pneumonia: Experience from two centers in the core of the infection Italian peak. Eur J Radiol. 2021;137:109613.<br />23.Ooi MWX, Rajai A, Patel R, Gerova N, Godhamgaonkar V, Liong SY. Pulmonary thromboembolic disease in COVID-19 patients on CT pulmonary angiography - Prevalence, pattern of disease and relationship to D-dimer. Eur J Radiol. 2020;132:109336.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44852327</guid><pubDate>Sun, 16 May 2021 14:16:14 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44852327/embolia_pulmonar_e_tc_de_torax_parte_i.mp3" length="2502320" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências

1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.
2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola...</itunes:subtitle><itunes:summary><![CDATA[Referências<br /><br />1.Sista AK, Kuo WT, Schiebler M, Madoff DC. Stratification, Imaging, and Management of Acute Massive and Submassive Pulmonary Embolism. Radiology. 2017;284(1):5-24.<br />2.Konstantinides SV, Meyer G, Becattini C, Bueno H, Geersing GJ, Harjola VP, et al. 2019 ESC Guidelines for the diagnosis and management of acute pulmonary embolism developed in collaboration with the European Respiratory Society (ERS). Eur Heart J. 2020;41(4):543-603.<br />3.Essien EO, Rali P, Mathai SC. Pulmonary Embolism. Med Clin North Am. 2019;103(3):549-64.<br />4.Albrecht MH, Bickford MW, Nance JW, Jr., Zhang L, De Cecco CN, Wichmann JL, et al. State-of-the-Art Pulmonary CT Angiography for Acute Pulmonary Embolism. AJR Am J Roentgenol. 2017;208(3):495-504.<br />5.Moore AJE, Wachsmann J, Chamarthy MR, Panjikaran L, Tanabe Y, Rajiah P. Imaging of acute pulmonary embolism: an update. Cardiovasc Diagn Ther. 2018;8(3):225-43.<br />6.Kline JA. Diagnosis and Exclusion of Pulmonary Embolism. Thromb Res. 2018;163:207-20.<br />7.Raju S, Ghosh S, Mehta AC. Chest CT Signs in Pulmonary Disease: A Pictorial Review. Chest. 2017;151(6):1356-74.<br />8.Lyhne MD, Schultz JG, MacMahon PJ, Haddad F, Kalra M, Tso DM, et al. Septal bowing and pulmonary artery diameter on computed tomography pulmonary angiography are associated with short-term outcomes in patients with acute pulmonary embolism. Emerg Radiol. 2019;26(6):623-30.<br />9.Beenen LFM, Bossuyt PMM, Stoker J, Middeldorp S. Prognostic value of cardiovascular parameters in computed tomography pulmonary angiography in patients with acute pulmonary embolism. Eur Respir J. 2018;52(1).<br />10.Doherty S. Pulmonary embolism An update. Aust Fam Physician. 2017;46(11):816-20.<br />11.Peiman S, Abbasi M, Allameh SF, Asadi Gharabaghi M, Abtahi H, Safavi E. Subsegmental pulmonary embolism: A narrative review. Thromb Res. 2016;138:55-60.<br />12.Im DJ, Hur J, Han KH, Lee HJ, Kim YJ, Kwon W, et al. Acute Pulmonary Embolism: Retrospective Cohort Study of the Predictive Value of Perfusion Defect Volume Measured With Dual-Energy CT. AJR Am J Roentgenol. 2017;209(5):1015-22.<br />13.Weidman EK, Plodkowski AJ, Halpenny DF, Hayes SA, Perez-Johnston R, Zheng J, et al. Dual-Energy CT Angiography for Detection of Pulmonary Emboli: Incremental Benefit of Iodine Maps. Radiology. 2018;289(2):546-53.<br />14.Celtikci P, Hekimoglu K, Kahraman G, Bozbas S, Gultekin B, Akay HT. Diagnostic Impact of Quantitative Dual-Energy Computed Tomography Perfusion Imaging for the Assessment of Subsegmental Pulmonary Embolism. J Comput Assist Tomogr. 2021;45(1):151-6.<br />15.O'Shea A, Parakh A, Hedgire S, Lee SI. Multisystem Assessment of the Imaging Manifestations of Coagulopathy in Hospitalized Patients With Coronavirus Disease (COVID-19). AJR Am J Roentgenol. 2021;216(4):1088-98.<br />16.Patelli G, Paganoni S, Besana F, Codazzi F, Ronzoni M, Manini S, et al. Preliminary detection of lung hypoperfusion in discharged Covid-19 patients during recovery. Eur J Radiol. 2020;129:109121.<br />17.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020;297(3):E335-E8.<br />18.Kanne JP, Bai H, Bernheim A, Chung M, Haramati LB, Kallmes DF, et al. COVID-19 Imaging: What We Know Now and What Remains Unknown. Radiology. 2021:204522.<br />19.Hammer MM, Raptis CA. COVID-19 and Pulmonary Thromboembolism. Radiology. 2021;299(2):E252.<br />20.Suh YJ, Hong H, Ohana M, Bompard F, Revel MP, Valle C, et al. Pulmonary Embolism and Deep Vein Thrombosis in COVID-19: A Systematic Review and Meta-Analysis. Radiology. 2021;298(2):E70-E80.<br />21.Woodard PK. Pulmonary Thromboembolism in COVID-19. Radiology. 2021;298(2):E107-E8.<br />22.Valle C, Bonaffini PA, Dal Corso M, Mercanzin E, Franco PN, Sonzogni A, et al. Association between pulmonary embolism and COVID-19 severe pneumonia: Experience from two centers in the core of the infection Italian peak. Eur J Radiol. 2021;137:109613.<br...]]></itunes:summary><itunes:duration>157</itunes:duration><itunes:keywords>covid-19,embolia,tc,tomografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCULOSKELETAL PARACOCCIDIOIDOMYCOSIS</title><link>https://www.spreaker.com/episode/musculoskeletal-paracoccidioidomycosis--44723758</link><description><![CDATA[Reference<br />1.Correa-de-Castro B, Pompilio MA, Odashiro DN, Odashiro M, Arao-Filho A, Paniago AM. Unifocal bone paracoccidioidomycosis, Brazil. Am J Trop Med Hyg. 2012;86(3):470-3.<br />2.Franco FL, Niemeyer B, Marchiori E. Bone involvement in paracoccidioidomycosis. Rev Soc Bras Med Trop. 2019;52.<br />3.Monsignore LM, Martinez R, Simao MN, Teixeira SR, Elias J, Jr., Nogueira-Barbosa MH. Radiologic findings of osteoarticular infection in paracoccidioidomycosis. Skeletal Radiol. 2012;41(2):203-8.<br />4.Amstalden EM, Xavier R, Kattapuram SV, Bertolo MB, Swartz MN, Rosenberg AE. Paracoccidioidomycosis of bones and joints. A clinical, radiologic, and pathologic study of 9 cases. Medicine (Baltimore). 1996;75(4):213-25.<br />5.Martins PAG, Rodrigues RS, Barreto MM. Involvement of bone in disseminated paracoccidioidomycosis. Rev Soc Bras Med Trop. 2021;54.<br />6.de Freitas RS, Dantas KC, Garcia RS, Magri MM, de Andrade HF, Jr. Paracoccidioides brasiliensis causing a rib lesion in an adult AIDS patient. Hum Pathol. 2010;41(9):1350-4.<br />7.Rosa Junior M, Baldon IV, Amorim AFC, Fonseca APA, Volpato R, Lourenco RB, et al. Imaging paracoccidioidomycosis: A pictorial review from head to toe. Eur J Radiol. 2018;103:147-62.<br />8.Costa MAB, Carvalho TN, Araújo Junior, CRA, Borba AOC, Veloso GA, Texeira KSS. Manifestastações extrapulmonares da paracoccidioidomicose. Radiol Bras. 2005;38(1):45-52.<br />9.Trad H., Trad CS, Elias Junior J, Muglia VF. Revisão Radiológica de 173 casos consecutivos de paracoccidioidomicose. Radiol Bras. 2005;39(3):175-9.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44723758</guid><pubDate>Sun, 09 May 2021 19:40:12 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44723758/musculoskeletal_paracoccidioidomycosis.mp3" length="1034397" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Reference
1.Correa-de-Castro B, Pompilio MA, Odashiro DN, Odashiro M, Arao-Filho A, Paniago AM. Unifocal bone paracoccidioidomycosis, Brazil. Am J Trop Med Hyg. 2012;86(3):470-3.
2.Franco FL, Niemeyer B, Marchiori E. Bone involvement in...</itunes:subtitle><itunes:summary><![CDATA[Reference<br />1.Correa-de-Castro B, Pompilio MA, Odashiro DN, Odashiro M, Arao-Filho A, Paniago AM. Unifocal bone paracoccidioidomycosis, Brazil. Am J Trop Med Hyg. 2012;86(3):470-3.<br />2.Franco FL, Niemeyer B, Marchiori E. Bone involvement in paracoccidioidomycosis. Rev Soc Bras Med Trop. 2019;52.<br />3.Monsignore LM, Martinez R, Simao MN, Teixeira SR, Elias J, Jr., Nogueira-Barbosa MH. Radiologic findings of osteoarticular infection in paracoccidioidomycosis. Skeletal Radiol. 2012;41(2):203-8.<br />4.Amstalden EM, Xavier R, Kattapuram SV, Bertolo MB, Swartz MN, Rosenberg AE. Paracoccidioidomycosis of bones and joints. A clinical, radiologic, and pathologic study of 9 cases. Medicine (Baltimore). 1996;75(4):213-25.<br />5.Martins PAG, Rodrigues RS, Barreto MM. Involvement of bone in disseminated paracoccidioidomycosis. Rev Soc Bras Med Trop. 2021;54.<br />6.de Freitas RS, Dantas KC, Garcia RS, Magri MM, de Andrade HF, Jr. Paracoccidioides brasiliensis causing a rib lesion in an adult AIDS patient. Hum Pathol. 2010;41(9):1350-4.<br />7.Rosa Junior M, Baldon IV, Amorim AFC, Fonseca APA, Volpato R, Lourenco RB, et al. Imaging paracoccidioidomycosis: A pictorial review from head to toe. Eur J Radiol. 2018;103:147-62.<br />8.Costa MAB, Carvalho TN, Araújo Junior, CRA, Borba AOC, Veloso GA, Texeira KSS. Manifestastações extrapulmonares da paracoccidioidomicose. Radiol Bras. 2005;38(1):45-52.<br />9.Trad H., Trad CS, Elias Junior J, Muglia VF. Revisão Radiológica de 173 casos consecutivos de paracoccidioidomicose. Radiol Bras. 2005;39(3):175-9.]]></itunes:summary><itunes:duration>173</itunes:duration><itunes:keywords>paracoccidioidomycosis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>PARACOCCIDIOIDOMICOSE MUSCULOESQUELETICA</title><link>https://www.spreaker.com/episode/paracoccidioidomicose-musculoesqueletica--44720848</link><description><![CDATA[Referências<br />1.Correa-de-Castro B, Pompilio MA, Odashiro DN, Odashiro M, Arao-Filho A, Paniago AM. Unifocal bone paracoccidioidomycosis, Brazil. Am J Trop Med Hyg. 2012;86(3):470-3.<br />2.Franco FL, Niemeyer B, Marchiori E. Bone involvement in paracoccidioidomycosis. Rev Soc Bras Med Trop. 2019;52.<br />3.Monsignore LM, Martinez R, Simao MN, Teixeira SR, Elias J, Jr., Nogueira-Barbosa MH. Radiologic findings of osteoarticular infection in paracoccidioidomycosis. Skeletal Radiol. 2012;41(2):203-8.<br />4.Amstalden EM, Xavier R, Kattapuram SV, Bertolo MB, Swartz MN, Rosenberg AE. Paracoccidioidomycosis of bones and joints. A clinical, radiologic, and pathologic study of 9 cases. Medicine (Baltimore). 1996;75(4):213-25.<br />5.Martins PAG, Rodrigues RS, Barreto MM. Involvement of bone in disseminated paracoccidioidomycosis. Rev Soc Bras Med Trop. 2021;54.<br />6.de Freitas RS, Dantas KC, Garcia RS, Magri MM, de Andrade HF, Jr. Paracoccidioides brasiliensis causing a rib lesion in an adult AIDS patient. Hum Pathol. 2010;41(9):1350-4.<br />7.Rosa Junior M, Baldon IV, Amorim AFC, Fonseca APA, Volpato R, Lourenco RB, et al. Imaging paracoccidioidomycosis: A pictorial review from head to toe. Eur J Radiol. 2018;103:147-62.<br />8.Costa MAB, Carvalho TN, Araújo Junior, CRA, Borba AOC, Veloso GA, Texeira KSS. Manifestastações extrapulmonares da paracoccidioidomicose. Radiol Bras. 2005;38(1):45-52.<br />9.Trad H., Trad CS, Elias Junior J, Muglia VF. Revisão Radiológica de 173 casos consecutivos de paracoccidioidomicose. Radiol Bras. 2005;39(3):175-9.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44720848</guid><pubDate>Sun, 09 May 2021 15:08:50 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44720848/paracoccidioidomicose_musculoesqueletica.mp3" length="2770650" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Correa-de-Castro B, Pompilio MA, Odashiro DN, Odashiro M, Arao-Filho A, Paniago AM. Unifocal bone paracoccidioidomycosis, Brazil. Am J Trop Med Hyg. 2012;86(3):470-3.
2.Franco FL, Niemeyer B, Marchiori E. Bone involvement in...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Correa-de-Castro B, Pompilio MA, Odashiro DN, Odashiro M, Arao-Filho A, Paniago AM. Unifocal bone paracoccidioidomycosis, Brazil. Am J Trop Med Hyg. 2012;86(3):470-3.<br />2.Franco FL, Niemeyer B, Marchiori E. Bone involvement in paracoccidioidomycosis. Rev Soc Bras Med Trop. 2019;52.<br />3.Monsignore LM, Martinez R, Simao MN, Teixeira SR, Elias J, Jr., Nogueira-Barbosa MH. Radiologic findings of osteoarticular infection in paracoccidioidomycosis. Skeletal Radiol. 2012;41(2):203-8.<br />4.Amstalden EM, Xavier R, Kattapuram SV, Bertolo MB, Swartz MN, Rosenberg AE. Paracoccidioidomycosis of bones and joints. A clinical, radiologic, and pathologic study of 9 cases. Medicine (Baltimore). 1996;75(4):213-25.<br />5.Martins PAG, Rodrigues RS, Barreto MM. Involvement of bone in disseminated paracoccidioidomycosis. Rev Soc Bras Med Trop. 2021;54.<br />6.de Freitas RS, Dantas KC, Garcia RS, Magri MM, de Andrade HF, Jr. Paracoccidioides brasiliensis causing a rib lesion in an adult AIDS patient. Hum Pathol. 2010;41(9):1350-4.<br />7.Rosa Junior M, Baldon IV, Amorim AFC, Fonseca APA, Volpato R, Lourenco RB, et al. Imaging paracoccidioidomycosis: A pictorial review from head to toe. Eur J Radiol. 2018;103:147-62.<br />8.Costa MAB, Carvalho TN, Araújo Junior, CRA, Borba AOC, Veloso GA, Texeira KSS. Manifestastações extrapulmonares da paracoccidioidomicose. Radiol Bras. 2005;38(1):45-52.<br />9.Trad H., Trad CS, Elias Junior J, Muglia VF. Revisão Radiológica de 173 casos consecutivos de paracoccidioidomicose. Radiol Bras. 2005;39(3):175-9.]]></itunes:summary><itunes:duration>174</itunes:duration><itunes:keywords>paracoccidioidomicose,pcm</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>SARCOMA DE KAPOSI</title><link>https://www.spreaker.com/episode/sarcoma-de-kaposi--44634555</link><description><![CDATA[REFERÊNCIAS<br /><br />1.Ko JP, Girvin F, Moore W, Naidich DP. Approach to Peribronchovascular Disease on CT. Semin Ultrasound CT MR. 2019;40(3):187-99.<br />2.C. G. Pulmonary involvement in acquired immunodeficiency syndrome-associated Kaposi’s sarcoma: a descriptive analysis of thin-section manifestations in 29 patients. Quant Imaging Med Surg. 2021;11(2):714-24.<br />3.Restrepo CS, Ocazionez D. Kaposi's sarcoma: imaging overview. Semin Ultrasound CT MR. 2011;32(5):456-69.<br />4.Gasparetto TD, Marchiori E, Lourenco S, Zanetti G, Vianna AD, Santos AA, et al. Pulmonary involvement in Kaposi sarcoma: correlation between imaging and pathology. Orphanet J Rare Dis. 2009;4:18.<br />5.Chou SH, Prabhu SJ, Crothers K, Stern EJ, Godwin JD, Pipavath SN. Thoracic diseases associated with HIV infection in the era of antiretroviral therapy: clinical and imaging findings. Radiographics. 2014;34(4):895-911.<br />6.Godoy MC, Rouse H, Brown JA, Phillips P, Forrest DM, Muller NL. Imaging features of pulmonary Kaposi sarcoma-associated immune reconstitution syndrome. AJR Am J Roentgenol. 2007;189(4):956-65.<br />7.Bhatia K, Ellis S. Unusual lung tumours: an illustrated review of CT features suggestive of this diagnosis. Cancer Imaging. 2006;6:72-82.<br />8.D. OM. Imaging Techniques for Kaposi Sarcoma (KS)<br />. J HIV Ther 2008;13(3):65-71.<br />9.da Silva Filho FP, Marchiori E, Valiante PM, Escuissato DL, Gasparetto TD. AIDS-related Kaposi sarcoma of the lung presenting with a "crazy-paving" pattern on high-resolution CT: imaging and pathologic findings. J Thorac Imaging. 2008;23(2):135-7.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44634555</guid><pubDate>Tue, 04 May 2021 23:24:40 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44634555/sarcoma_de_kaposi.mp3" length="4289436" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS

1.Ko JP, Girvin F, Moore W, Naidich DP. Approach to Peribronchovascular Disease on CT. Semin Ultrasound CT MR. 2019;40(3):187-99.
2.C. G. Pulmonary involvement in acquired immunodeficiency syndrome-associated Kaposi’s sarcoma: a...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br /><br />1.Ko JP, Girvin F, Moore W, Naidich DP. Approach to Peribronchovascular Disease on CT. Semin Ultrasound CT MR. 2019;40(3):187-99.<br />2.C. G. Pulmonary involvement in acquired immunodeficiency syndrome-associated Kaposi’s sarcoma: a descriptive analysis of thin-section manifestations in 29 patients. Quant Imaging Med Surg. 2021;11(2):714-24.<br />3.Restrepo CS, Ocazionez D. Kaposi's sarcoma: imaging overview. Semin Ultrasound CT MR. 2011;32(5):456-69.<br />4.Gasparetto TD, Marchiori E, Lourenco S, Zanetti G, Vianna AD, Santos AA, et al. Pulmonary involvement in Kaposi sarcoma: correlation between imaging and pathology. Orphanet J Rare Dis. 2009;4:18.<br />5.Chou SH, Prabhu SJ, Crothers K, Stern EJ, Godwin JD, Pipavath SN. Thoracic diseases associated with HIV infection in the era of antiretroviral therapy: clinical and imaging findings. Radiographics. 2014;34(4):895-911.<br />6.Godoy MC, Rouse H, Brown JA, Phillips P, Forrest DM, Muller NL. Imaging features of pulmonary Kaposi sarcoma-associated immune reconstitution syndrome. AJR Am J Roentgenol. 2007;189(4):956-65.<br />7.Bhatia K, Ellis S. Unusual lung tumours: an illustrated review of CT features suggestive of this diagnosis. Cancer Imaging. 2006;6:72-82.<br />8.D. OM. Imaging Techniques for Kaposi Sarcoma (KS)<br />. J HIV Ther 2008;13(3):65-71.<br />9.da Silva Filho FP, Marchiori E, Valiante PM, Escuissato DL, Gasparetto TD. AIDS-related Kaposi sarcoma of the lung presenting with a "crazy-paving" pattern on high-resolution CT: imaging and pathologic findings. J Thorac Imaging. 2008;23(2):135-7.]]></itunes:summary><itunes:duration>269</itunes:duration><itunes:keywords>herpesvirus,kaposi,sarcoma,sida</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Linfomas mediastinais e pulmonares - parte II</title><link>https://www.spreaker.com/episode/linfomas-mediastinais-e-pulmonares-parte-ii--44595565</link><description><![CDATA[Referências:<br /><br />1.Hare SS, Souza CA, Bain G, Seely JM, Frcpc, Gomes MM, et al. The radiological spectrum of pulmonary lymphoproliferative disease. Br J Radiol. 2012;85(1015):848-64.<br />2.Carter BW, Wu CC, Khorashadi L, Godoy MC, de Groot PM, Abbott GF, et al. Multimodality imaging of cardiothoracic lymphoma. Eur J Radiol. 2014;83(8):1470-82.<br />3.Bligh MP, Borgaonkar JN, Burrell SC, MacDonald DA, Manos D. Spectrum of CT Findings in Thoracic Extranodal Non-Hodgkin Lymphoma. Radiographics. 2017;37(2):439-61.<br />4.Sharma A, Fidias P, Hayman LA, Loomis SL, Taber KH, Aquino SL. Patterns of lymphadenopathy in thoracic malignancies. Radiographics. 2004;24(2):419-34.<br />5.Restrepo CS, Carrillo J, Rosado de Christenson M, Ojeda Leon P, Lucia Rivera A, Koss MN. Lymphoproliferative lung disorders: a radiologic-pathologic overview. Part II: Neoplastic disorders. Semin Ultrasound CT MR. 2013;34(6):535-49.<br />6.Cozzi D, Dini C, Mungai F, Puccini B, Rigacci L, Miele V. Primary pulmonary lymphoma: imaging findings in 30 cases. Radiol Med. 2019;124(12):1262-9.<br />7.Lee WK, Duddalwar VA, Rouse HC, Lau EW, Bekhit E, Hennessy OF. Extranodal lymphoma in the thorax: cross-sectional imaging findings. Clin Radiol. 2009;64(5):542-9.<br />8.Johnson SA, Kumar A, Matasar MJ, Schoder H, Rademaker J. Imaging for Staging and Response Assessment in Lymphoma. Radiology. 2015;276(2):323-38.<br />9.He H, Tan F, Xue Q, Liu L, Peng Y, Bai G, et al. Clinicopathological characteristics and prognostic factors of primary pulmonary lymphoma. J Thorac Dis. 2021;13(2):1106-17.<br />10.Deng W, Wan Y, Yu JQ. Pulmonary MALT Lymphoma has variable features on CT. Sci Rep. 2019;9(1):8657.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44595565</guid><pubDate>Sun, 02 May 2021 14:47:33 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44595565/imported_f1a055f9_f18c_4fae_b2a2_08b6c19eca9a.mp3" length="2985339" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências:

1.Hare SS, Souza CA, Bain G, Seely JM, Frcpc, Gomes MM, et al. The radiological spectrum of pulmonary lymphoproliferative disease. Br J Radiol. 2012;85(1015):848-64.
2.Carter BW, Wu CC, Khorashadi L, Godoy MC, de Groot PM, Abbott GF, et...</itunes:subtitle><itunes:summary><![CDATA[Referências:<br /><br />1.Hare SS, Souza CA, Bain G, Seely JM, Frcpc, Gomes MM, et al. The radiological spectrum of pulmonary lymphoproliferative disease. Br J Radiol. 2012;85(1015):848-64.<br />2.Carter BW, Wu CC, Khorashadi L, Godoy MC, de Groot PM, Abbott GF, et al. Multimodality imaging of cardiothoracic lymphoma. Eur J Radiol. 2014;83(8):1470-82.<br />3.Bligh MP, Borgaonkar JN, Burrell SC, MacDonald DA, Manos D. Spectrum of CT Findings in Thoracic Extranodal Non-Hodgkin Lymphoma. Radiographics. 2017;37(2):439-61.<br />4.Sharma A, Fidias P, Hayman LA, Loomis SL, Taber KH, Aquino SL. Patterns of lymphadenopathy in thoracic malignancies. Radiographics. 2004;24(2):419-34.<br />5.Restrepo CS, Carrillo J, Rosado de Christenson M, Ojeda Leon P, Lucia Rivera A, Koss MN. Lymphoproliferative lung disorders: a radiologic-pathologic overview. Part II: Neoplastic disorders. Semin Ultrasound CT MR. 2013;34(6):535-49.<br />6.Cozzi D, Dini C, Mungai F, Puccini B, Rigacci L, Miele V. Primary pulmonary lymphoma: imaging findings in 30 cases. Radiol Med. 2019;124(12):1262-9.<br />7.Lee WK, Duddalwar VA, Rouse HC, Lau EW, Bekhit E, Hennessy OF. Extranodal lymphoma in the thorax: cross-sectional imaging findings. Clin Radiol. 2009;64(5):542-9.<br />8.Johnson SA, Kumar A, Matasar MJ, Schoder H, Rademaker J. Imaging for Staging and Response Assessment in Lymphoma. Radiology. 2015;276(2):323-38.<br />9.He H, Tan F, Xue Q, Liu L, Peng Y, Bai G, et al. Clinicopathological characteristics and prognostic factors of primary pulmonary lymphoma. J Thorac Dis. 2021;13(2):1106-17.<br />10.Deng W, Wan Y, Yu JQ. Pulmonary MALT Lymphoma has variable features on CT. Sci Rep. 2019;9(1):8657.]]></itunes:summary><itunes:duration>187</itunes:duration><itunes:keywords>linfoma,tomografia,tumores</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Linfomas mediastinais e pulmonares - parte I</title><link>https://www.spreaker.com/episode/linfomas-mediastinais-e-pulmonares-parte-i--44595477</link><description><![CDATA[Referências:<br /><br />1.Hare SS, Souza CA, Bain G, Seely JM, Frcpc, Gomes MM, et al. The radiological spectrum of pulmonary lymphoproliferative disease. Br J Radiol. 2012;85(1015):848-64.<br />2.Carter BW, Wu CC, Khorashadi L, Godoy MC, de Groot PM, Abbott GF, et al. Multimodality imaging of cardiothoracic lymphoma. Eur J Radiol. 2014;83(8):1470-82.<br />3.Bligh MP, Borgaonkar JN, Burrell SC, MacDonald DA, Manos D. Spectrum of CT Findings in Thoracic Extranodal Non-Hodgkin Lymphoma. Radiographics. 2017;37(2):439-61.<br />4.Sharma A, Fidias P, Hayman LA, Loomis SL, Taber KH, Aquino SL. Patterns of lymphadenopathy in thoracic malignancies. Radiographics. 2004;24(2):419-34.<br />5.Restrepo CS, Carrillo J, Rosado de Christenson M, Ojeda Leon P, Lucia Rivera A, Koss MN. Lymphoproliferative lung disorders: a radiologic-pathologic overview. Part II: Neoplastic disorders. Semin Ultrasound CT MR. 2013;34(6):535-49.<br />6.Cozzi D, Dini C, Mungai F, Puccini B, Rigacci L, Miele V. Primary pulmonary lymphoma: imaging findings in 30 cases. Radiol Med. 2019;124(12):1262-9.<br />7.Lee WK, Duddalwar VA, Rouse HC, Lau EW, Bekhit E, Hennessy OF. Extranodal lymphoma in the thorax: cross-sectional imaging findings. Clin Radiol. 2009;64(5):542-9.<br />8.Johnson SA, Kumar A, Matasar MJ, Schoder H, Rademaker J. Imaging for Staging and Response Assessment in Lymphoma. Radiology. 2015;276(2):323-38.<br />9.He H, Tan F, Xue Q, Liu L, Peng Y, Bai G, et al. Clinicopathological characteristics and prognostic factors of primary pulmonary lymphoma. J Thorac Dis. 2021;13(2):1106-17.<br />10.Deng W, Wan Y, Yu JQ. Pulmonary MALT Lymphoma has variable features on CT. Sci Rep. 2019;9(1):8657.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44595477</guid><pubDate>Sun, 02 May 2021 14:33:36 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44595477/linfomas_mediastinais_e_pulmonares_parte_i.mp3" length="3949624" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências:

1.Hare SS, Souza CA, Bain G, Seely JM, Frcpc, Gomes MM, et al. The radiological spectrum of pulmonary lymphoproliferative disease. Br J Radiol. 2012;85(1015):848-64.
2.Carter BW, Wu CC, Khorashadi L, Godoy MC, de Groot PM, Abbott GF, et...</itunes:subtitle><itunes:summary><![CDATA[Referências:<br /><br />1.Hare SS, Souza CA, Bain G, Seely JM, Frcpc, Gomes MM, et al. The radiological spectrum of pulmonary lymphoproliferative disease. Br J Radiol. 2012;85(1015):848-64.<br />2.Carter BW, Wu CC, Khorashadi L, Godoy MC, de Groot PM, Abbott GF, et al. Multimodality imaging of cardiothoracic lymphoma. Eur J Radiol. 2014;83(8):1470-82.<br />3.Bligh MP, Borgaonkar JN, Burrell SC, MacDonald DA, Manos D. Spectrum of CT Findings in Thoracic Extranodal Non-Hodgkin Lymphoma. Radiographics. 2017;37(2):439-61.<br />4.Sharma A, Fidias P, Hayman LA, Loomis SL, Taber KH, Aquino SL. Patterns of lymphadenopathy in thoracic malignancies. Radiographics. 2004;24(2):419-34.<br />5.Restrepo CS, Carrillo J, Rosado de Christenson M, Ojeda Leon P, Lucia Rivera A, Koss MN. Lymphoproliferative lung disorders: a radiologic-pathologic overview. Part II: Neoplastic disorders. Semin Ultrasound CT MR. 2013;34(6):535-49.<br />6.Cozzi D, Dini C, Mungai F, Puccini B, Rigacci L, Miele V. Primary pulmonary lymphoma: imaging findings in 30 cases. Radiol Med. 2019;124(12):1262-9.<br />7.Lee WK, Duddalwar VA, Rouse HC, Lau EW, Bekhit E, Hennessy OF. Extranodal lymphoma in the thorax: cross-sectional imaging findings. Clin Radiol. 2009;64(5):542-9.<br />8.Johnson SA, Kumar A, Matasar MJ, Schoder H, Rademaker J. Imaging for Staging and Response Assessment in Lymphoma. Radiology. 2015;276(2):323-38.<br />9.He H, Tan F, Xue Q, Liu L, Peng Y, Bai G, et al. Clinicopathological characteristics and prognostic factors of primary pulmonary lymphoma. J Thorac Dis. 2021;13(2):1106-17.<br />10.Deng W, Wan Y, Yu JQ. Pulmonary MALT Lymphoma has variable features on CT. Sci Rep. 2019;9(1):8657.]]></itunes:summary><itunes:duration>247</itunes:duration><itunes:keywords>linfoma,tomografia,tumores</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>LESÕES DISTAIS DO BÍCEPS BRAQUIAL PARTE II</title><link>https://www.spreaker.com/episode/lesoes-distais-do-biceps-braquial-parte-ii--44472323</link><description><![CDATA[REFERENCES <br /><br />1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.<br />2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a cadaveric study. J Bone Joint Surg Am. 2007;89(5):1044-9.<br />3.Athwal GS, Steinmann SP, Rispoli DM. The distal biceps tendon: footprint and relevant clinical anatomy. J Hand Surg Am. 2007;32(8):1225-9.<br />4.Konschake M, Stofferin H, Moriggl B. Ultrasound visualization of an underestimated structure: the bicipital aponeurosis. Surg Radiol Anat. 2017;39(12):1317-22.<br />5.Snoeck O, Lefevre P, Sprio E, Beslay R, Feipel V, Rooze M, et al. The lacertus fibrosus of the biceps brachii muscle: an anatomical study. Surg Radiol Anat. 2014;36(7):713-9.<br />6.Negrao JR, Mogami R, Ramirez Ruiz FA, Wagner FV, Haghighi P, Ward SR, et al. Distal insertional anatomy of the triceps brachii muscle: MRI assessment in cadaveric specimens employing histologic correlation and Play-doh((R)) models of the anatomic findings. Skeletal Radiol. 2020;49(7):1057-67.<br />7.Arrigoni P. Distal Biceps Brachii Injury: Springer; 2018.<br />8.Blasi M, De la Fuente J, Perez-Bellmunt A, Zabalza O, Martinez S, Casasayas O, et al. High-resolution ultrasound in the assessment of the distal biceps brachii tendinous complex. Skeletal Radiol. 2019;48(3):395-404.<br />9.Mazzocca AD, Cohen M, Berkson E, Nicholson G, Carofino BC, Arciero R, et al. The anatomy of the bicipital tuberosity and distal biceps tendon. J Shoulder Elbow Surg. 2007;16(1):122-7.<br />10.Schmidt CC, Savoie FH, 3rd, Steinmann SP, Hausman M, Voloshin I, Morrey BF, et al. Distal biceps tendon history, updates, and controversies: from the closed American Shoulder and Elbow Surgeons meeting-2015. J Shoulder Elbow Surg. 2016;25(10):1717-30.<br />11.de la Fuente J, Blasi M, Martinez S, Barcelo P, Cachan C, Miguel M, et al. Ultrasound classification of traumatic distal biceps brachii tendon injuries. Skeletal Radiol. 2018;47(4):519-32.<br />12.Williams BD, Schweitzer ME, Weishaupt D, Lerman J, Rubenstein DL, Miller LS, et al. Partial tears of the distal biceps tendon: MR appearance and associated clinical findings. Skeletal Radiol. 2001;30(10):560-4.<br />13.A. B. Varia: Distal Biceps Tendon Rupture: Springer; 2019.<br />14.Chew ML, Giuffre BM. Disorders of the distal biceps brachii tendon. Radiographics. 2005;25(5):1227-37.<br />15.Wenzke DR. MR imaging of the elbow in the injured athlete. Radiol Clin North Am. 2013;51(2):195-213.<br />16.Festa A, Mulieri PJ, Newman JS, Spitz DJ, Leslie BM. Effectiveness of magnetic resonance imaging in detecting partial and complete distal biceps tendon rupture. J Hand Surg Am. 2010;35(1):77-83.<br />17.Lobo Lda G, Fessell DP, Miller BS, Kelly A, Lee JY, Brandon C, et al. The role of sonography in differentiating full versus partial distal biceps tendon tears: correlation with surgical findings. AJR Am J Roentgenol. 2013;200(1):158-62.<br />18.Giuffre BM, Lisle DA. Tear of the distal biceps branchii tendon: a new method of ultrasound evaluation. Australas Radiol. 2005;49(5):404-6.<br />19.Midtgaard KS, Hallgren HB, Franlund K, Gidmark F, Soreide E, Johansson T, et al. An intact lacertus fibrosus improves strength after reinsertion of the distal biceps tendon. Knee Surg Sports Traumatol Arthrosc. 2020;28(7):2279-84.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44472323</guid><pubDate>Sat, 24 Apr 2021 23:03:32 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44472323/lesoes_distais_do_biceps_parte_ii.mp3" length="3871972" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES 

1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.
2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a...</itunes:subtitle><itunes:summary><![CDATA[REFERENCES <br /><br />1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.<br />2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a cadaveric study. J Bone Joint Surg Am. 2007;89(5):1044-9.<br />3.Athwal GS, Steinmann SP, Rispoli DM. The distal biceps tendon: footprint and relevant clinical anatomy. J Hand Surg Am. 2007;32(8):1225-9.<br />4.Konschake M, Stofferin H, Moriggl B. Ultrasound visualization of an underestimated structure: the bicipital aponeurosis. Surg Radiol Anat. 2017;39(12):1317-22.<br />5.Snoeck O, Lefevre P, Sprio E, Beslay R, Feipel V, Rooze M, et al. The lacertus fibrosus of the biceps brachii muscle: an anatomical study. Surg Radiol Anat. 2014;36(7):713-9.<br />6.Negrao JR, Mogami R, Ramirez Ruiz FA, Wagner FV, Haghighi P, Ward SR, et al. Distal insertional anatomy of the triceps brachii muscle: MRI assessment in cadaveric specimens employing histologic correlation and Play-doh((R)) models of the anatomic findings. Skeletal Radiol. 2020;49(7):1057-67.<br />7.Arrigoni P. Distal Biceps Brachii Injury: Springer; 2018.<br />8.Blasi M, De la Fuente J, Perez-Bellmunt A, Zabalza O, Martinez S, Casasayas O, et al. High-resolution ultrasound in the assessment of the distal biceps brachii tendinous complex. Skeletal Radiol. 2019;48(3):395-404.<br />9.Mazzocca AD, Cohen M, Berkson E, Nicholson G, Carofino BC, Arciero R, et al. The anatomy of the bicipital tuberosity and distal biceps tendon. J Shoulder Elbow Surg. 2007;16(1):122-7.<br />10.Schmidt CC, Savoie FH, 3rd, Steinmann SP, Hausman M, Voloshin I, Morrey BF, et al. Distal biceps tendon history, updates, and controversies: from the closed American Shoulder and Elbow Surgeons meeting-2015. J Shoulder Elbow Surg. 2016;25(10):1717-30.<br />11.de la Fuente J, Blasi M, Martinez S, Barcelo P, Cachan C, Miguel M, et al. Ultrasound classification of traumatic distal biceps brachii tendon injuries. Skeletal Radiol. 2018;47(4):519-32.<br />12.Williams BD, Schweitzer ME, Weishaupt D, Lerman J, Rubenstein DL, Miller LS, et al. Partial tears of the distal biceps tendon: MR appearance and associated clinical findings. Skeletal Radiol. 2001;30(10):560-4.<br />13.A. B. Varia: Distal Biceps Tendon Rupture: Springer; 2019.<br />14.Chew ML, Giuffre BM. Disorders of the distal biceps brachii tendon. Radiographics. 2005;25(5):1227-37.<br />15.Wenzke DR. MR imaging of the elbow in the injured athlete. Radiol Clin North Am. 2013;51(2):195-213.<br />16.Festa A, Mulieri PJ, Newman JS, Spitz DJ, Leslie BM. Effectiveness of magnetic resonance imaging in detecting partial and complete distal biceps tendon rupture. J Hand Surg Am. 2010;35(1):77-83.<br />17.Lobo Lda G, Fessell DP, Miller BS, Kelly A, Lee JY, Brandon C, et al. The role of sonography in differentiating full versus partial distal biceps tendon tears: correlation with surgical findings. AJR Am J Roentgenol. 2013;200(1):158-62.<br />18.Giuffre BM, Lisle DA. Tear of the distal biceps branchii tendon: a new method of ultrasound evaluation. Australas Radiol. 2005;49(5):404-6.<br />19.Midtgaard KS, Hallgren HB, Franlund K, Gidmark F, Soreide E, Johansson T, et al. An intact lacertus fibrosus improves strength after reinsertion of the distal biceps tendon. Knee Surg Sports Traumatol Arthrosc. 2020;28(7):2279-84.]]></itunes:summary><itunes:duration>242</itunes:duration><itunes:keywords>biceps,es,lacertus,rm,roturas,ultrassonografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>LESÕES DISTAIS DO BÍCEPS BRAQUIAL PARTE I</title><link>https://www.spreaker.com/episode/lesoes-distais-do-biceps-braquial-parte-i--44472289</link><description><![CDATA[REFERENCES <br /><br />1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.<br />2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a cadaveric study. J Bone Joint Surg Am. 2007;89(5):1044-9.<br />3.Athwal GS, Steinmann SP, Rispoli DM. The distal biceps tendon: footprint and relevant clinical anatomy. J Hand Surg Am. 2007;32(8):1225-9.<br />4.Konschake M, Stofferin H, Moriggl B. Ultrasound visualization of an underestimated structure: the bicipital aponeurosis. Surg Radiol Anat. 2017;39(12):1317-22.<br />5.Snoeck O, Lefevre P, Sprio E, Beslay R, Feipel V, Rooze M, et al. The lacertus fibrosus of the biceps brachii muscle: an anatomical study. Surg Radiol Anat. 2014;36(7):713-9.<br />6.Negrao JR, Mogami R, Ramirez Ruiz FA, Wagner FV, Haghighi P, Ward SR, et al. Distal insertional anatomy of the triceps brachii muscle: MRI assessment in cadaveric specimens employing histologic correlation and Play-doh((R)) models of the anatomic findings. Skeletal Radiol. 2020;49(7):1057-67.<br />7.Arrigoni P. Distal Biceps Brachii Injury: Springer; 2018.<br />8.Blasi M, De la Fuente J, Perez-Bellmunt A, Zabalza O, Martinez S, Casasayas O, et al. High-resolution ultrasound in the assessment of the distal biceps brachii tendinous complex. Skeletal Radiol. 2019;48(3):395-404.<br />9.Mazzocca AD, Cohen M, Berkson E, Nicholson G, Carofino BC, Arciero R, et al. The anatomy of the bicipital tuberosity and distal biceps tendon. J Shoulder Elbow Surg. 2007;16(1):122-7.<br />10.Schmidt CC, Savoie FH, 3rd, Steinmann SP, Hausman M, Voloshin I, Morrey BF, et al. Distal biceps tendon history, updates, and controversies: from the closed American Shoulder and Elbow Surgeons meeting-2015. J Shoulder Elbow Surg. 2016;25(10):1717-30.<br />11.de la Fuente J, Blasi M, Martinez S, Barcelo P, Cachan C, Miguel M, et al. Ultrasound classification of traumatic distal biceps brachii tendon injuries. Skeletal Radiol. 2018;47(4):519-32.<br />12.Williams BD, Schweitzer ME, Weishaupt D, Lerman J, Rubenstein DL, Miller LS, et al. Partial tears of the distal biceps tendon: MR appearance and associated clinical findings. Skeletal Radiol. 2001;30(10):560-4.<br />13.A. B. Varia: Distal Biceps Tendon Rupture: Springer; 2019.<br />14.Chew ML, Giuffre BM. Disorders of the distal biceps brachii tendon. Radiographics. 2005;25(5):1227-37.<br />15.Wenzke DR. MR imaging of the elbow in the injured athlete. Radiol Clin North Am. 2013;51(2):195-213.<br />16.Festa A, Mulieri PJ, Newman JS, Spitz DJ, Leslie BM. Effectiveness of magnetic resonance imaging in detecting partial and complete distal biceps tendon rupture. J Hand Surg Am. 2010;35(1):77-83.<br />17.Lobo Lda G, Fessell DP, Miller BS, Kelly A, Lee JY, Brandon C, et al. The role of sonography in differentiating full versus partial distal biceps tendon tears: correlation with surgical findings. AJR Am J Roentgenol. 2013;200(1):158-62.<br />18.Giuffre BM, Lisle DA. Tear of the distal biceps branchii tendon: a new method of ultrasound evaluation. Australas Radiol. 2005;49(5):404-6.<br />19.Midtgaard KS, Hallgren HB, Franlund K, Gidmark F, Soreide E, Johansson T, et al. An intact lacertus fibrosus improves strength after reinsertion of the distal biceps tendon. Knee Surg Sports Traumatol Arthrosc. 2020;28(7):2279-84.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44472289</guid><pubDate>Sat, 24 Apr 2021 22:57:38 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44472289/lesoes_distais_do_biceps_braquial_parte_i.mp3" length="4313337" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES 

1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.
2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a...</itunes:subtitle><itunes:summary><![CDATA[REFERENCES <br /><br />1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.<br />2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a cadaveric study. J Bone Joint Surg Am. 2007;89(5):1044-9.<br />3.Athwal GS, Steinmann SP, Rispoli DM. The distal biceps tendon: footprint and relevant clinical anatomy. J Hand Surg Am. 2007;32(8):1225-9.<br />4.Konschake M, Stofferin H, Moriggl B. Ultrasound visualization of an underestimated structure: the bicipital aponeurosis. Surg Radiol Anat. 2017;39(12):1317-22.<br />5.Snoeck O, Lefevre P, Sprio E, Beslay R, Feipel V, Rooze M, et al. The lacertus fibrosus of the biceps brachii muscle: an anatomical study. Surg Radiol Anat. 2014;36(7):713-9.<br />6.Negrao JR, Mogami R, Ramirez Ruiz FA, Wagner FV, Haghighi P, Ward SR, et al. Distal insertional anatomy of the triceps brachii muscle: MRI assessment in cadaveric specimens employing histologic correlation and Play-doh((R)) models of the anatomic findings. Skeletal Radiol. 2020;49(7):1057-67.<br />7.Arrigoni P. Distal Biceps Brachii Injury: Springer; 2018.<br />8.Blasi M, De la Fuente J, Perez-Bellmunt A, Zabalza O, Martinez S, Casasayas O, et al. High-resolution ultrasound in the assessment of the distal biceps brachii tendinous complex. Skeletal Radiol. 2019;48(3):395-404.<br />9.Mazzocca AD, Cohen M, Berkson E, Nicholson G, Carofino BC, Arciero R, et al. The anatomy of the bicipital tuberosity and distal biceps tendon. J Shoulder Elbow Surg. 2007;16(1):122-7.<br />10.Schmidt CC, Savoie FH, 3rd, Steinmann SP, Hausman M, Voloshin I, Morrey BF, et al. Distal biceps tendon history, updates, and controversies: from the closed American Shoulder and Elbow Surgeons meeting-2015. J Shoulder Elbow Surg. 2016;25(10):1717-30.<br />11.de la Fuente J, Blasi M, Martinez S, Barcelo P, Cachan C, Miguel M, et al. Ultrasound classification of traumatic distal biceps brachii tendon injuries. Skeletal Radiol. 2018;47(4):519-32.<br />12.Williams BD, Schweitzer ME, Weishaupt D, Lerman J, Rubenstein DL, Miller LS, et al. Partial tears of the distal biceps tendon: MR appearance and associated clinical findings. Skeletal Radiol. 2001;30(10):560-4.<br />13.A. B. Varia: Distal Biceps Tendon Rupture: Springer; 2019.<br />14.Chew ML, Giuffre BM. Disorders of the distal biceps brachii tendon. Radiographics. 2005;25(5):1227-37.<br />15.Wenzke DR. MR imaging of the elbow in the injured athlete. Radiol Clin North Am. 2013;51(2):195-213.<br />16.Festa A, Mulieri PJ, Newman JS, Spitz DJ, Leslie BM. Effectiveness of magnetic resonance imaging in detecting partial and complete distal biceps tendon rupture. J Hand Surg Am. 2010;35(1):77-83.<br />17.Lobo Lda G, Fessell DP, Miller BS, Kelly A, Lee JY, Brandon C, et al. The role of sonography in differentiating full versus partial distal biceps tendon tears: correlation with surgical findings. AJR Am J Roentgenol. 2013;200(1):158-62.<br />18.Giuffre BM, Lisle DA. Tear of the distal biceps branchii tendon: a new method of ultrasound evaluation. Australas Radiol. 2005;49(5):404-6.<br />19.Midtgaard KS, Hallgren HB, Franlund K, Gidmark F, Soreide E, Johansson T, et al. An intact lacertus fibrosus improves strength after reinsertion of the distal biceps tendon. Knee Surg Sports Traumatol Arthrosc. 2020;28(7):2279-84.]]></itunes:summary><itunes:duration>270</itunes:duration><itunes:keywords>biceps,es,lacertus,rm,roturas,ultrassonografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>BICEPS BRACHIALIS DISTAL TEARS</title><link>https://www.spreaker.com/episode/biceps-brachialis-distal-tears--44472248</link><description><![CDATA[REFERENCES <br /><br />1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.<br />2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a cadaveric study. J Bone Joint Surg Am. 2007;89(5):1044-9.<br />3.Athwal GS, Steinmann SP, Rispoli DM. The distal biceps tendon: footprint and relevant clinical anatomy. J Hand Surg Am. 2007;32(8):1225-9.<br />4.Konschake M, Stofferin H, Moriggl B. Ultrasound visualization of an underestimated structure: the bicipital aponeurosis. Surg Radiol Anat. 2017;39(12):1317-22.<br />5.Snoeck O, Lefevre P, Sprio E, Beslay R, Feipel V, Rooze M, et al. The lacertus fibrosus of the biceps brachii muscle: an anatomical study. Surg Radiol Anat. 2014;36(7):713-9.<br />6.Negrao JR, Mogami R, Ramirez Ruiz FA, Wagner FV, Haghighi P, Ward SR, et al. Distal insertional anatomy of the triceps brachii muscle: MRI assessment in cadaveric specimens employing histologic correlation and Play-doh((R)) models of the anatomic findings. Skeletal Radiol. 2020;49(7):1057-67.<br />7.Arrigoni P. Distal Biceps Brachii Injury: Springer; 2018.<br />8.Blasi M, De la Fuente J, Perez-Bellmunt A, Zabalza O, Martinez S, Casasayas O, et al. High-resolution ultrasound in the assessment of the distal biceps brachii tendinous complex. Skeletal Radiol. 2019;48(3):395-404.<br />9.Mazzocca AD, Cohen M, Berkson E, Nicholson G, Carofino BC, Arciero R, et al. The anatomy of the bicipital tuberosity and distal biceps tendon. J Shoulder Elbow Surg. 2007;16(1):122-7.<br />10.Schmidt CC, Savoie FH, 3rd, Steinmann SP, Hausman M, Voloshin I, Morrey BF, et al. Distal biceps tendon history, updates, and controversies: from the closed American Shoulder and Elbow Surgeons meeting-2015. J Shoulder Elbow Surg. 2016;25(10):1717-30.<br />11.de la Fuente J, Blasi M, Martinez S, Barcelo P, Cachan C, Miguel M, et al. Ultrasound classification of traumatic distal biceps brachii tendon injuries. Skeletal Radiol. 2018;47(4):519-32.<br />12.Williams BD, Schweitzer ME, Weishaupt D, Lerman J, Rubenstein DL, Miller LS, et al. Partial tears of the distal biceps tendon: MR appearance and associated clinical findings. Skeletal Radiol. 2001;30(10):560-4.<br />13.A. B. Varia: Distal Biceps Tendon Rupture: Springer; 2019.<br />14.Chew ML, Giuffre BM. Disorders of the distal biceps brachii tendon. Radiographics. 2005;25(5):1227-37.<br />15.Wenzke DR. MR imaging of the elbow in the injured athlete. Radiol Clin North Am. 2013;51(2):195-213.<br />16.Festa A, Mulieri PJ, Newman JS, Spitz DJ, Leslie BM. Effectiveness of magnetic resonance imaging in detecting partial and complete distal biceps tendon rupture. J Hand Surg Am. 2010;35(1):77-83.<br />17.Lobo Lda G, Fessell DP, Miller BS, Kelly A, Lee JY, Brandon C, et al. The role of sonography in differentiating full versus partial distal biceps tendon tears: correlation with surgical findings. AJR Am J Roentgenol. 2013;200(1):158-62.<br />18.Giuffre BM, Lisle DA. Tear of the distal biceps branchii tendon: a new method of ultrasound evaluation. Australas Radiol. 2005;49(5):404-6.<br />19.Midtgaard KS, Hallgren HB, Franlund K, Gidmark F, Soreide E, Johansson T, et al. An intact lacertus fibrosus improves strength after reinsertion of the distal biceps tendon. Knee Surg Sports Traumatol Arthrosc. 2020;28(7):2279-84.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44472248</guid><pubDate>Sat, 24 Apr 2021 22:49:55 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44472248/biceps_brachialis_distal_tears.mp3" length="2602701" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES 

1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.
2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a...</itunes:subtitle><itunes:summary><![CDATA[REFERENCES <br /><br />1.Kulshreshtha R, Singh R, Sinha J, Hall S. Anatomy of the distal biceps brachii tendon and its clinical relevance. Clin Orthop Relat Res. 2007;456:117-20.<br />2.Eames MH, Bain GI, Fogg QA, van Riet RP. Distal biceps tendon anatomy: a cadaveric study. J Bone Joint Surg Am. 2007;89(5):1044-9.<br />3.Athwal GS, Steinmann SP, Rispoli DM. The distal biceps tendon: footprint and relevant clinical anatomy. J Hand Surg Am. 2007;32(8):1225-9.<br />4.Konschake M, Stofferin H, Moriggl B. Ultrasound visualization of an underestimated structure: the bicipital aponeurosis. Surg Radiol Anat. 2017;39(12):1317-22.<br />5.Snoeck O, Lefevre P, Sprio E, Beslay R, Feipel V, Rooze M, et al. The lacertus fibrosus of the biceps brachii muscle: an anatomical study. Surg Radiol Anat. 2014;36(7):713-9.<br />6.Negrao JR, Mogami R, Ramirez Ruiz FA, Wagner FV, Haghighi P, Ward SR, et al. Distal insertional anatomy of the triceps brachii muscle: MRI assessment in cadaveric specimens employing histologic correlation and Play-doh((R)) models of the anatomic findings. Skeletal Radiol. 2020;49(7):1057-67.<br />7.Arrigoni P. Distal Biceps Brachii Injury: Springer; 2018.<br />8.Blasi M, De la Fuente J, Perez-Bellmunt A, Zabalza O, Martinez S, Casasayas O, et al. High-resolution ultrasound in the assessment of the distal biceps brachii tendinous complex. Skeletal Radiol. 2019;48(3):395-404.<br />9.Mazzocca AD, Cohen M, Berkson E, Nicholson G, Carofino BC, Arciero R, et al. The anatomy of the bicipital tuberosity and distal biceps tendon. J Shoulder Elbow Surg. 2007;16(1):122-7.<br />10.Schmidt CC, Savoie FH, 3rd, Steinmann SP, Hausman M, Voloshin I, Morrey BF, et al. Distal biceps tendon history, updates, and controversies: from the closed American Shoulder and Elbow Surgeons meeting-2015. J Shoulder Elbow Surg. 2016;25(10):1717-30.<br />11.de la Fuente J, Blasi M, Martinez S, Barcelo P, Cachan C, Miguel M, et al. Ultrasound classification of traumatic distal biceps brachii tendon injuries. Skeletal Radiol. 2018;47(4):519-32.<br />12.Williams BD, Schweitzer ME, Weishaupt D, Lerman J, Rubenstein DL, Miller LS, et al. Partial tears of the distal biceps tendon: MR appearance and associated clinical findings. Skeletal Radiol. 2001;30(10):560-4.<br />13.A. B. Varia: Distal Biceps Tendon Rupture: Springer; 2019.<br />14.Chew ML, Giuffre BM. Disorders of the distal biceps brachii tendon. Radiographics. 2005;25(5):1227-37.<br />15.Wenzke DR. MR imaging of the elbow in the injured athlete. Radiol Clin North Am. 2013;51(2):195-213.<br />16.Festa A, Mulieri PJ, Newman JS, Spitz DJ, Leslie BM. Effectiveness of magnetic resonance imaging in detecting partial and complete distal biceps tendon rupture. J Hand Surg Am. 2010;35(1):77-83.<br />17.Lobo Lda G, Fessell DP, Miller BS, Kelly A, Lee JY, Brandon C, et al. The role of sonography in differentiating full versus partial distal biceps tendon tears: correlation with surgical findings. AJR Am J Roentgenol. 2013;200(1):158-62.<br />18.Giuffre BM, Lisle DA. Tear of the distal biceps branchii tendon: a new method of ultrasound evaluation. Australas Radiol. 2005;49(5):404-6.<br />19.Midtgaard KS, Hallgren HB, Franlund K, Gidmark F, Soreide E, Johansson T, et al. An intact lacertus fibrosus improves strength after reinsertion of the distal biceps tendon. Knee Surg Sports Traumatol Arthrosc. 2020;28(7):2279-84.]]></itunes:summary><itunes:duration>434</itunes:duration><itunes:keywords>biceps,lacertus,mri,tears,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>SILICOSE PARTE II</title><link>https://www.spreaker.com/episode/silicose-parte-ii--44448421</link><description><![CDATA[Referências<br /><br />1.Alper F, Akgun M, Onbas O, Araz O. CT findings in silicosis due to denim sandblasting. Eur Radiol. 2008;18(12):2739-44.<br />2.Jones CM, Pasricha SS, Heinze SB, MacDonald S. Silicosis in artificial stone workers: Spectrum of radiological high-resolution CT chest findings. J Med Imaging Radiat Oncol. 2020;64(2):241-9.<br />3.Greenberg MI, Waksman J, Curtis J. Silicosis: a review. Dis Mon. 2007;53(8):394-416.<br />4.Antao VC, Pinheiro GA, Terra-Filho M, Kavakama J, Muller NL. High-resolution CT in silicosis: correlation with radiographic findings and functional impairment. J Comput Assist Tomogr. 2005;29(3):350-6.<br />5.Batra K, Aziz MU, Adams TN, Godwin JD. Imaging Of Occupational Lung Diseases. Semin Roentgenol. 2019;54(1):44-58.<br />6.Cox CW, Rose CS, Lynch DA. State of the art: Imaging of occupational lung disease. Radiology. 2014;270(3):681-96.<br />7.Chong S, Lee KS, Chung MJ, Han J, Kwon OJ, Kim TS. Pneumoconiosis: comparison of imaging and pathologic findings. Radiographics. 2006;26(1):59-77.<br />8.Marchiori E, Ferreira A, Saez F, Gabetto JM, Souza AS, Jr., Escuissato DL, et al. Conglomerated masses of silicosis in sandblasters: high-resolution CT findings. Eur J Radiol. 2006;59(1):56-9.<br />9.Kim KI, Kim CW, Lee MK, Lee KS, Park CK, Choi SJ, et al. Imaging of occupational lung disease. Radiographics. 2001;21(6):1371-91.<br />10.Marchiori E, Souza CA, Barbassa TG, Escuissato DL, Gasparetto EL, Souza AS, Jr. Silicoproteinosis: high-resolution CT findings in 13 patients. AJR Am J Roentgenol. 2007;189(6):1402-6.<br />11.Arakawa H, Honma K, Saito Y, Shida H, Morikubo H, Suganuma N, et al. Pleural disease in silicosis: pleural thickening, effusion, and invagination. Radiology. 2005;236(2):685-93.<br />12.Lanzafame M, Vento S. Mini-review: Silico-tuberculosis. J Clin Tuberc Other Mycobact Dis. 2021;23:100218.<br />13.Arakawa H, Gevenois PA, Saito Y, Shida H, De Maertelaer V, Morikubo H, et al. Silicosis: expiratory thin-section CT assessment of airway obstruction. Radiology. 2005;236(3):1059-66.<br />14.Ooi GC, Tsang KW, Cheung TF, Khong PL, Ho IW, Ip MS, et al. Silicosis in 76 men: qualitative and quantitative CT evaluation--clinical-radiologic correlation study. Radiology. 2003;228(3):816-25.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44448421</guid><pubDate>Fri, 23 Apr 2021 03:25:36 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44448421/silicose_parte_ii.mp3" length="3594030" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências

1.Alper F, Akgun M, Onbas O, Araz O. CT findings in silicosis due to denim sandblasting. Eur Radiol. 2008;18(12):2739-44.
2.Jones CM, Pasricha SS, Heinze SB, MacDonald S. Silicosis in artificial stone workers: Spectrum of radiological...</itunes:subtitle><itunes:summary><![CDATA[Referências<br /><br />1.Alper F, Akgun M, Onbas O, Araz O. CT findings in silicosis due to denim sandblasting. Eur Radiol. 2008;18(12):2739-44.<br />2.Jones CM, Pasricha SS, Heinze SB, MacDonald S. Silicosis in artificial stone workers: Spectrum of radiological high-resolution CT chest findings. J Med Imaging Radiat Oncol. 2020;64(2):241-9.<br />3.Greenberg MI, Waksman J, Curtis J. Silicosis: a review. Dis Mon. 2007;53(8):394-416.<br />4.Antao VC, Pinheiro GA, Terra-Filho M, Kavakama J, Muller NL. High-resolution CT in silicosis: correlation with radiographic findings and functional impairment. J Comput Assist Tomogr. 2005;29(3):350-6.<br />5.Batra K, Aziz MU, Adams TN, Godwin JD. Imaging Of Occupational Lung Diseases. Semin Roentgenol. 2019;54(1):44-58.<br />6.Cox CW, Rose CS, Lynch DA. State of the art: Imaging of occupational lung disease. Radiology. 2014;270(3):681-96.<br />7.Chong S, Lee KS, Chung MJ, Han J, Kwon OJ, Kim TS. Pneumoconiosis: comparison of imaging and pathologic findings. Radiographics. 2006;26(1):59-77.<br />8.Marchiori E, Ferreira A, Saez F, Gabetto JM, Souza AS, Jr., Escuissato DL, et al. Conglomerated masses of silicosis in sandblasters: high-resolution CT findings. Eur J Radiol. 2006;59(1):56-9.<br />9.Kim KI, Kim CW, Lee MK, Lee KS, Park CK, Choi SJ, et al. Imaging of occupational lung disease. Radiographics. 2001;21(6):1371-91.<br />10.Marchiori E, Souza CA, Barbassa TG, Escuissato DL, Gasparetto EL, Souza AS, Jr. Silicoproteinosis: high-resolution CT findings in 13 patients. AJR Am J Roentgenol. 2007;189(6):1402-6.<br />11.Arakawa H, Honma K, Saito Y, Shida H, Morikubo H, Suganuma N, et al. Pleural disease in silicosis: pleural thickening, effusion, and invagination. Radiology. 2005;236(2):685-93.<br />12.Lanzafame M, Vento S. Mini-review: Silico-tuberculosis. J Clin Tuberc Other Mycobact Dis. 2021;23:100218.<br />13.Arakawa H, Gevenois PA, Saito Y, Shida H, De Maertelaer V, Morikubo H, et al. Silicosis: expiratory thin-section CT assessment of airway obstruction. Radiology. 2005;236(3):1059-66.<br />14.Ooi GC, Tsang KW, Cheung TF, Khong PL, Ho IW, Ip MS, et al. Silicosis in 76 men: qualitative and quantitative CT evaluation--clinical-radiologic correlation study. Radiology. 2003;228(3):816-25.]]></itunes:summary><itunes:duration>225</itunes:duration><itunes:keywords>fibrose,nódulos,pneumoconiose,sílica,silicose</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>SILICOSE PARTE I</title><link>https://www.spreaker.com/episode/silicose-parte-i--44448304</link><description><![CDATA[Referências<br />1.Alper F, Akgun M, Onbas O, Araz O. CT findings in silicosis due to denim sandblasting. Eur Radiol. 2008;18(12):2739-44.<br />2.Jones CM, Pasricha SS, Heinze SB, MacDonald S. Silicosis in artificial stone workers: Spectrum of radiological high-resolution CT chest findings. J Med Imaging Radiat Oncol. 2020;64(2):241-9.<br />3.Greenberg MI, Waksman J, Curtis J. Silicosis: a review. Dis Mon. 2007;53(8):394-416.<br />4.Antao VC, Pinheiro GA, Terra-Filho M, Kavakama J, Muller NL. High-resolution CT in silicosis: correlation with radiographic findings and functional impairment. J Comput Assist Tomogr. 2005;29(3):350-6.<br />5.Batra K, Aziz MU, Adams TN, Godwin JD. Imaging Of Occupational Lung Diseases. Semin Roentgenol. 2019;54(1):44-58.<br />6.Cox CW, Rose CS, Lynch DA. State of the art: Imaging of occupational lung disease. Radiology. 2014;270(3):681-96.<br />7.Chong S, Lee KS, Chung MJ, Han J, Kwon OJ, Kim TS. Pneumoconiosis: comparison of imaging and pathologic findings. Radiographics. 2006;26(1):59-77.<br />8.Marchiori E, Ferreira A, Saez F, Gabetto JM, Souza AS, Jr., Escuissato DL, et al. Conglomerated masses of silicosis in sandblasters: high-resolution CT findings. Eur J Radiol. 2006;59(1):56-9.<br />9.Kim KI, Kim CW, Lee MK, Lee KS, Park CK, Choi SJ, et al. Imaging of occupational lung disease. Radiographics. 2001;21(6):1371-91.<br />10.Marchiori E, Souza CA, Barbassa TG, Escuissato DL, Gasparetto EL, Souza AS, Jr. Silicoproteinosis: high-resolution CT findings in 13 patients. AJR Am J Roentgenol. 2007;189(6):1402-6.<br />11.Arakawa H, Honma K, Saito Y, Shida H, Morikubo H, Suganuma N, et al. Pleural disease in silicosis: pleural thickening, effusion, and invagination. Radiology. 2005;236(2):685-93.<br />12.Lanzafame M, Vento S. Mini-review: Silico-tuberculosis. J Clin Tuberc Other Mycobact Dis. 2021;23:100218.<br />13.Arakawa H, Gevenois PA, Saito Y, Shida H, De Maertelaer V, Morikubo H, et al. Silicosis: expiratory thin-section CT assessment of airway obstruction. Radiology. 2005;236(3):1059-66.<br />14.Ooi GC, Tsang KW, Cheung TF, Khong PL, Ho IW, Ip MS, et al. Silicosis in 76 men: qualitative and quantitative CT evaluation--clinical-radiologic correlation study. Radiology. 2003;228(3):816-25.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44448304</guid><pubDate>Fri, 23 Apr 2021 03:13:43 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44448304/silicose_parte_i.mp3" length="4388152" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Alper F, Akgun M, Onbas O, Araz O. CT findings in silicosis due to denim sandblasting. Eur Radiol. 2008;18(12):2739-44.
2.Jones CM, Pasricha SS, Heinze SB, MacDonald S. Silicosis in artificial stone workers: Spectrum of radiological...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Alper F, Akgun M, Onbas O, Araz O. CT findings in silicosis due to denim sandblasting. Eur Radiol. 2008;18(12):2739-44.<br />2.Jones CM, Pasricha SS, Heinze SB, MacDonald S. Silicosis in artificial stone workers: Spectrum of radiological high-resolution CT chest findings. J Med Imaging Radiat Oncol. 2020;64(2):241-9.<br />3.Greenberg MI, Waksman J, Curtis J. Silicosis: a review. Dis Mon. 2007;53(8):394-416.<br />4.Antao VC, Pinheiro GA, Terra-Filho M, Kavakama J, Muller NL. High-resolution CT in silicosis: correlation with radiographic findings and functional impairment. J Comput Assist Tomogr. 2005;29(3):350-6.<br />5.Batra K, Aziz MU, Adams TN, Godwin JD. Imaging Of Occupational Lung Diseases. Semin Roentgenol. 2019;54(1):44-58.<br />6.Cox CW, Rose CS, Lynch DA. State of the art: Imaging of occupational lung disease. Radiology. 2014;270(3):681-96.<br />7.Chong S, Lee KS, Chung MJ, Han J, Kwon OJ, Kim TS. Pneumoconiosis: comparison of imaging and pathologic findings. Radiographics. 2006;26(1):59-77.<br />8.Marchiori E, Ferreira A, Saez F, Gabetto JM, Souza AS, Jr., Escuissato DL, et al. Conglomerated masses of silicosis in sandblasters: high-resolution CT findings. Eur J Radiol. 2006;59(1):56-9.<br />9.Kim KI, Kim CW, Lee MK, Lee KS, Park CK, Choi SJ, et al. Imaging of occupational lung disease. Radiographics. 2001;21(6):1371-91.<br />10.Marchiori E, Souza CA, Barbassa TG, Escuissato DL, Gasparetto EL, Souza AS, Jr. Silicoproteinosis: high-resolution CT findings in 13 patients. AJR Am J Roentgenol. 2007;189(6):1402-6.<br />11.Arakawa H, Honma K, Saito Y, Shida H, Morikubo H, Suganuma N, et al. Pleural disease in silicosis: pleural thickening, effusion, and invagination. Radiology. 2005;236(2):685-93.<br />12.Lanzafame M, Vento S. Mini-review: Silico-tuberculosis. J Clin Tuberc Other Mycobact Dis. 2021;23:100218.<br />13.Arakawa H, Gevenois PA, Saito Y, Shida H, De Maertelaer V, Morikubo H, et al. Silicosis: expiratory thin-section CT assessment of airway obstruction. Radiology. 2005;236(3):1059-66.<br />14.Ooi GC, Tsang KW, Cheung TF, Khong PL, Ho IW, Ip MS, et al. Silicosis in 76 men: qualitative and quantitative CT evaluation--clinical-radiologic correlation study. Radiology. 2003;228(3):816-25.]]></itunes:summary><itunes:duration>275</itunes:duration><itunes:keywords>fibrose,nódulos,sílica,silicose,tuberculose</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Doença Torácicas Relacionada ao Amianto Parte II</title><link>https://www.spreaker.com/episode/doenca-toracicas-relacionada-ao-amianto-parte-ii--44385056</link><description><![CDATA[Referências<br />1.Mogami R, Marchiori E, Albuquerque HA, Ribeiro P, Capone D. Correlação entre Radiografia Convencional e Tomografia Computadorizada de Alta Resolução de Tórax em Trabalhadores da Indústria Têxtil do Asbesto. Rev Imagem 2001;23(4):233-8.<br />2.Kim KI, Kim CW, Lee MK, Lee KS, Park CK, Choi SJ, et al. Imaging of occupational lung disease. Radiographics. 2001;21(6):1371-91.<br />3.Oury T; Sporn TA; Roggli VL.  Pathology of Asbestos-Associated Diseases. Third ed: Springer; 2014.<br />4.Copley SJ, Wells AU, Sivakumaran P, Rubens MB, Lee YC, Desai SR, et al. Asbestosis and idiopathic pulmonary fibrosis: comparison of thin-section CT features. Radiology. 2003;229(3):731-6.<br />5.Champlin J, Edwards R, Pipavath S. Imaging of Occupational Lung Disease. Radiol Clin North Am. 2016;54(6):1077-96.<br />6.Walkoff L, Hobbs S. Chest Imaging in the Diagnosis of Occupational Lung Diseases. Clin Chest Med. 2020;41(4):581-603.<br />7.Arakawa H, Kishimoto T, Ashizawa K, Kato K, Okamoto K, Honma K, et al. Asbestosis and other pulmonary fibrosis in asbestos-exposed workers: high-resolution CT features with pathological correlations. Eur Radiol. 2016;26(5):1485-92.<br />8.Masanori A. Imaging diagnosis of classical and new pneumoconiosis: predominant reticular HRCT pattern. Insights Imaging. 2021;12(1):33.<br />9.Norbet C, Joseph A, Rossi SS, Bhalla S, Gutierrez FR. Asbestos-related lung disease: a pictorial review. Curr Probl Diagn Radiol. 2015;44(4):371-82.<br />10.Roach HD, Davies GJ, Attanoos R, Crane M, Adams H, Phillips S. Asbestos: when the dust settles an imaging review of asbestos-related disease. Radiographics. 2002;22 Spec No:S167-84.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44385056</guid><pubDate>Mon, 19 Apr 2021 01:25:57 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44385056/doenca_toracicas_relacionada_ao_amianto_parte_ii.mp3" length="3328208" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Mogami R, Marchiori E, Albuquerque HA, Ribeiro P, Capone D. Correlação entre Radiografia Convencional e Tomografia Computadorizada de Alta Resolução de Tórax em Trabalhadores da Indústria Têxtil do Asbesto. Rev Imagem 2001;23(4):233-8....</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Mogami R, Marchiori E, Albuquerque HA, Ribeiro P, Capone D. Correlação entre Radiografia Convencional e Tomografia Computadorizada de Alta Resolução de Tórax em Trabalhadores da Indústria Têxtil do Asbesto. Rev Imagem 2001;23(4):233-8.<br />2.Kim KI, Kim CW, Lee MK, Lee KS, Park CK, Choi SJ, et al. Imaging of occupational lung disease. Radiographics. 2001;21(6):1371-91.<br />3.Oury T; Sporn TA; Roggli VL.  Pathology of Asbestos-Associated Diseases. Third ed: Springer; 2014.<br />4.Copley SJ, Wells AU, Sivakumaran P, Rubens MB, Lee YC, Desai SR, et al. Asbestosis and idiopathic pulmonary fibrosis: comparison of thin-section CT features. Radiology. 2003;229(3):731-6.<br />5.Champlin J, Edwards R, Pipavath S. Imaging of Occupational Lung Disease. Radiol Clin North Am. 2016;54(6):1077-96.<br />6.Walkoff L, Hobbs S. Chest Imaging in the Diagnosis of Occupational Lung Diseases. Clin Chest Med. 2020;41(4):581-603.<br />7.Arakawa H, Kishimoto T, Ashizawa K, Kato K, Okamoto K, Honma K, et al. Asbestosis and other pulmonary fibrosis in asbestos-exposed workers: high-resolution CT features with pathological correlations. Eur Radiol. 2016;26(5):1485-92.<br />8.Masanori A. Imaging diagnosis of classical and new pneumoconiosis: predominant reticular HRCT pattern. Insights Imaging. 2021;12(1):33.<br />9.Norbet C, Joseph A, Rossi SS, Bhalla S, Gutierrez FR. Asbestos-related lung disease: a pictorial review. Curr Probl Diagn Radiol. 2015;44(4):371-82.<br />10.Roach HD, Davies GJ, Attanoos R, Crane M, Adams H, Phillips S. Asbestos: when the dust settles an imaging review of asbestos-related disease. Radiographics. 2002;22 Spec No:S167-84.]]></itunes:summary><itunes:duration>208</itunes:duration><itunes:keywords>amianto,asbesto,asbestose,mesotelioma,placas</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Doenças Torácicas Relacionadas ao Amianto Parte I</title><link>https://www.spreaker.com/episode/doencas-toracicas-relacionadas-ao-amianto-parte-i--44384972</link><description><![CDATA[Referências<br />1.Mogami R, Marchiori E, Albuquerque HA, Ribeiro P, Capone D. Correlação entre Radiografia Convencional e Tomografia Computadorizada de Alta Resolução de Tórax em Trabalhadores da Indústria Têxtil do Asbesto. Rev Imagem 2001;23(4):233-8.<br />2.Kim KI, Kim CW, Lee MK, Lee KS, Park CK, Choi SJ, et al. Imaging of occupational lung disease. Radiographics. 2001;21(6):1371-91.<br />3.Oury T; Sporn TA; Roggli VL.  Pathology of Asbestos-Associated Diseases. Third ed: Springer; 2014.<br />4.Copley SJ, Wells AU, Sivakumaran P, Rubens MB, Lee YC, Desai SR, et al. Asbestosis and idiopathic pulmonary fibrosis: comparison of thin-section CT features. Radiology. 2003;229(3):731-6.<br />5.Champlin J, Edwards R, Pipavath S. Imaging of Occupational Lung Disease. Radiol Clin North Am. 2016;54(6):1077-96.<br />6.Walkoff L, Hobbs S. Chest Imaging in the Diagnosis of Occupational Lung Diseases. Clin Chest Med. 2020;41(4):581-603.<br />7.Arakawa H, Kishimoto T, Ashizawa K, Kato K, Okamoto K, Honma K, et al. Asbestosis and other pulmonary fibrosis in asbestos-exposed workers: high-resolution CT features with pathological correlations. Eur Radiol. 2016;26(5):1485-92.<br />8.Masanori A. Imaging diagnosis of classical and new pneumoconiosis: predominant reticular HRCT pattern. Insights Imaging. 2021;12(1):33.<br />9.Norbet C, Joseph A, Rossi SS, Bhalla S, Gutierrez FR. Asbestos-related lung disease: a pictorial review. Curr Probl Diagn Radiol. 2015;44(4):371-82.<br />10.Roach HD, Davies GJ, Attanoos R, Crane M, Adams H, Phillips S. Asbestos: when the dust settles an imaging review of asbestos-related disease. Radiographics. 2002;22 Spec No:S167-84.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44384972</guid><pubDate>Mon, 19 Apr 2021 01:17:02 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44384972/doencas_toracicas_relacionadas_ao_amianto_parte_i.mp3" length="6877099" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Mogami R, Marchiori E, Albuquerque HA, Ribeiro P, Capone D. Correlação entre Radiografia Convencional e Tomografia Computadorizada de Alta Resolução de Tórax em Trabalhadores da Indústria Têxtil do Asbesto. Rev Imagem 2001;23(4):233-8....</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Mogami R, Marchiori E, Albuquerque HA, Ribeiro P, Capone D. Correlação entre Radiografia Convencional e Tomografia Computadorizada de Alta Resolução de Tórax em Trabalhadores da Indústria Têxtil do Asbesto. Rev Imagem 2001;23(4):233-8.<br />2.Kim KI, Kim CW, Lee MK, Lee KS, Park CK, Choi SJ, et al. Imaging of occupational lung disease. Radiographics. 2001;21(6):1371-91.<br />3.Oury T; Sporn TA; Roggli VL.  Pathology of Asbestos-Associated Diseases. Third ed: Springer; 2014.<br />4.Copley SJ, Wells AU, Sivakumaran P, Rubens MB, Lee YC, Desai SR, et al. Asbestosis and idiopathic pulmonary fibrosis: comparison of thin-section CT features. Radiology. 2003;229(3):731-6.<br />5.Champlin J, Edwards R, Pipavath S. Imaging of Occupational Lung Disease. Radiol Clin North Am. 2016;54(6):1077-96.<br />6.Walkoff L, Hobbs S. Chest Imaging in the Diagnosis of Occupational Lung Diseases. Clin Chest Med. 2020;41(4):581-603.<br />7.Arakawa H, Kishimoto T, Ashizawa K, Kato K, Okamoto K, Honma K, et al. Asbestosis and other pulmonary fibrosis in asbestos-exposed workers: high-resolution CT features with pathological correlations. Eur Radiol. 2016;26(5):1485-92.<br />8.Masanori A. Imaging diagnosis of classical and new pneumoconiosis: predominant reticular HRCT pattern. Insights Imaging. 2021;12(1):33.<br />9.Norbet C, Joseph A, Rossi SS, Bhalla S, Gutierrez FR. Asbestos-related lung disease: a pictorial review. Curr Probl Diagn Radiol. 2015;44(4):371-82.<br />10.Roach HD, Davies GJ, Attanoos R, Crane M, Adams H, Phillips S. Asbestos: when the dust settles an imaging review of asbestos-related disease. Radiographics. 2002;22 Spec No:S167-84.]]></itunes:summary><itunes:duration>430</itunes:duration><itunes:keywords>amianto,asbesto,asbestose,mesotelioma,placas</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>LESÕES DO NERVO RADIAL ASSOCIADAS A FRATURAS UMERAIS</title><link>https://www.spreaker.com/episode/lesoes-do-nervo-radial-associadas-a-fraturas-umerais--44288461</link><description><![CDATA[REFERÊNCIAS<br /><br />1.Agarwal A, Chandra A, Jaipal U, Saini N. A panorama of radial nerve pathologies- an imaging diagnosis: a step ahead. Insights Imaging. 2018;9(6):1021-34.<br />2.Esparza M, Wild JR, Minnock C, Mohty KM, Truchan LM, Taljanovic MS. Ultrasound Evaluation of Radial Nerve Palsy Associated with Humeral Shaft Fractures to Guide Operative Versus Non-Operative Treatment. Acta Med Acad. 2019;48(2):183-92.<br />3.Rocchi M, Tarallo L, Mugnai R, Adani R. Humerus shaft fracture complicated by radial nerve palsy: Is surgical exploration necessary? Musculoskelet Surg. 2016;100(Suppl 1):53-60.<br />4.Ljungquist KL, Martineau P, Allan C. Radial nerve injuries. J Hand Surg Am. 2015;40(1):166-72.<br />5.Ostermann RC, Lang NW, Joestl J, Pauzenberger L, Tiefenboeck TM, Platzer P. Fractures of the Humeral Shaft with Primary Radial Nerve Palsy: Do Injury Mechanism, Fracture Type, or Treatment Influence Nerve Recovery? J Clin Med. 2019;8(11).<br />6.Hendrickx LAM, Hilgersom NFJ, Alkaduhimi H, Doornberg JN, van den Bekerom MPJ. Radial nerve palsy associated with closed humeral shaft fractures: a systematic review of 1758 patients. Arch Orthop Trauma Surg. 2021;141(4):561-8.<br />7.Cartwright MS, Chloros GD, Walker FO, Wiesler ER, Campbell WW. Diagnostic ultrasound for nerve transection. Muscle Nerve. 2007;35(6):796-9.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44288461</guid><pubDate>Sun, 11 Apr 2021 01:30:20 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44288461/lesoes_do_nervo_radial_associadas_a_fraturas_umerais.mp3" length="6238875" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS

1.Agarwal A, Chandra A, Jaipal U, Saini N. A panorama of radial nerve pathologies- an imaging diagnosis: a step ahead. Insights Imaging. 2018;9(6):1021-34.
2.Esparza M, Wild JR, Minnock C, Mohty KM, Truchan LM, Taljanovic MS. Ultrasound...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br /><br />1.Agarwal A, Chandra A, Jaipal U, Saini N. A panorama of radial nerve pathologies- an imaging diagnosis: a step ahead. Insights Imaging. 2018;9(6):1021-34.<br />2.Esparza M, Wild JR, Minnock C, Mohty KM, Truchan LM, Taljanovic MS. Ultrasound Evaluation of Radial Nerve Palsy Associated with Humeral Shaft Fractures to Guide Operative Versus Non-Operative Treatment. Acta Med Acad. 2019;48(2):183-92.<br />3.Rocchi M, Tarallo L, Mugnai R, Adani R. Humerus shaft fracture complicated by radial nerve palsy: Is surgical exploration necessary? Musculoskelet Surg. 2016;100(Suppl 1):53-60.<br />4.Ljungquist KL, Martineau P, Allan C. Radial nerve injuries. J Hand Surg Am. 2015;40(1):166-72.<br />5.Ostermann RC, Lang NW, Joestl J, Pauzenberger L, Tiefenboeck TM, Platzer P. Fractures of the Humeral Shaft with Primary Radial Nerve Palsy: Do Injury Mechanism, Fracture Type, or Treatment Influence Nerve Recovery? J Clin Med. 2019;8(11).<br />6.Hendrickx LAM, Hilgersom NFJ, Alkaduhimi H, Doornberg JN, van den Bekerom MPJ. Radial nerve palsy associated with closed humeral shaft fractures: a systematic review of 1758 patients. Arch Orthop Trauma Surg. 2021;141(4):561-8.<br />7.Cartwright MS, Chloros GD, Walker FO, Wiesler ER, Campbell WW. Diagnostic ultrasound for nerve transection. Muscle Nerve. 2007;35(6):796-9.]]></itunes:summary><itunes:duration>390</itunes:duration><itunes:keywords>es,fratura,nervo,paralisia,radial,úmero</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>HAMARTOMAS PULMONARES</title><link>https://www.spreaker.com/episode/hamartomas-pulmonares--44210832</link><description><![CDATA[REFERÊNCIAS<br />1.Wick MR. Hamartomas and other tumor-like malformations of the lungs and heart. Semin Diagn Pathol. 2019;36(1):2-10.<br />2.Leiter Herran F, Restrepo CS, Alvarez Gomez DI, Suby-Long T, Ocazionez D, Vargas D. Hamartomas from head to toe: an imaging overview. Br J Radiol. 2017;90(1071):20160607.<br />3.Ganti S, Milton R, Davidson L, Anikin V. Giant pulmonary hamartoma. J Cardiothorac Surg. 2006;1:19.<br />4.Umashankar T, Devadas AK, Ravichandra G, Yaranal PJ. Pulmonary hamartoma: Cytological study of a case and literature review. J Cytol. 2012;29(4):261-3.<br />5.Gaerte SC, Meyer CA, Winer-Muram HT, Tarver RD, Conces DJ, Jr. Fat-containing lesions of the chest. Radiographics. 2002;22 Spec No:S61-78.<br />6.Suut S, Al-Ani Z, Allen C, Rajiah P, Durr ES, Al-Harbi A, et al. Pictorial essay of radiological features of benign intrathoracic masses. Ann Thorac Med. 2015;10(4):231-42.<br />7.Nestor Müller ISM. Tórax. Rio de Janeiro: Elsevier; 2017.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44210832</guid><pubDate>Mon, 05 Apr 2021 23:10:36 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44210832/hamartomas_pulmonares.mp3" length="2087287" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCIAS
1.Wick MR. Hamartomas and other tumor-like malformations of the lungs and heart. Semin Diagn Pathol. 2019;36(1):2-10.
2.Leiter Herran F, Restrepo CS, Alvarez Gomez DI, Suby-Long T, Ocazionez D, Vargas D. Hamartomas from head to toe: an...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCIAS<br />1.Wick MR. Hamartomas and other tumor-like malformations of the lungs and heart. Semin Diagn Pathol. 2019;36(1):2-10.<br />2.Leiter Herran F, Restrepo CS, Alvarez Gomez DI, Suby-Long T, Ocazionez D, Vargas D. Hamartomas from head to toe: an imaging overview. Br J Radiol. 2017;90(1071):20160607.<br />3.Ganti S, Milton R, Davidson L, Anikin V. Giant pulmonary hamartoma. J Cardiothorac Surg. 2006;1:19.<br />4.Umashankar T, Devadas AK, Ravichandra G, Yaranal PJ. Pulmonary hamartoma: Cytological study of a case and literature review. J Cytol. 2012;29(4):261-3.<br />5.Gaerte SC, Meyer CA, Winer-Muram HT, Tarver RD, Conces DJ, Jr. Fat-containing lesions of the chest. Radiographics. 2002;22 Spec No:S61-78.<br />6.Suut S, Al-Ani Z, Allen C, Rajiah P, Durr ES, Al-Harbi A, et al. Pictorial essay of radiological features of benign intrathoracic masses. Ann Thorac Med. 2015;10(4):231-42.<br />7.Nestor Müller ISM. Tórax. Rio de Janeiro: Elsevier; 2017.]]></itunes:summary><itunes:duration>131</itunes:duration><itunes:keywords>fat,hamartoma,lung</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Pneumonia intersticial não-específica</title><link>https://www.spreaker.com/episode/pneumonia-intersticial-nao-especifica--44105818</link><description><![CDATA[Referências<br />1.Silva CI, Muller NL, Hansell DM, Lee KS, Nicholson AG, Wells AU. Nonspecific interstitial pneumonia and idiopathic pulmonary fibrosis: changes in pattern and distribution of disease over time. Radiology. 2008;247(1):251-9.<br />2.Oliveira DS, Araujo Filho JA, Paiva AFL, Ikari ES, Chate RC, Nomura CH. Idiopathic interstitial pneumonias: review of the latest American Thoracic Society/European Respiratory Society classification. Radiol Bras. 2018;51(5):321-7.<br />3.Escalon JG, Legasto AC, Toy D, Gruden JF. Central paradiaphragmatic middle lobe involvement in nonspecific interstitial pneumonia. Eur Radiol. 2021.<br />4.Kligerman SJ, Groshong S, Brown KK, Lynch DA. Nonspecific interstitial pneumonia: radiologic, clinical, and pathologic considerations. Radiographics. 2009;29(1):73-87.<br />5.Belloli EA, Beckford R, Hadley R, Flaherty KR. Idiopathic non-specific interstitial pneumonia. Respirology. 2016;21(2):259-68.<br />6.Oldham JM, Adegunsoye A, Valenzi E, Lee C, Witt L, Chen L, et al. Characterisation of patients with interstitial pneumonia with autoimmune features. Eur Respir J. 2016;47(6):1767-75.<br />7.Hansell DM, Bankier AA, MacMahon H, McLoud TC, Muller NL, Remy J. Fleischner Society: glossary of terms for thoracic imaging. Radiology. 2008;246(3):697-722.<br />8.Lee J, Kim YH, Kang JY, Jegal Y, Park SY, Korean Interstitial Lung Diseases Study G. Korean Guidelines for Diagnosis and Management of Interstitial Lung Diseases: Part 3. Idiopathic Nonspecific Interstitial Pneumonia. Tuberc Respir Dis (Seoul). 2019;82(4):277-84.<br />9.Cottin V, Hirani NA, Hotchkin DL, Nambiar AM, Ogura T, Otaola M, et al. Presentation, diagnosis and clinical course of the spectrum of progressive-fibrosing interstitial lung diseases. Eur Respir Rev. 2018;27(150).<br />10.Huo Z, Li J, Li S, Zhang H, Jin Z, Pang J, et al. Organizing pneumonia components in non-specific interstitial pneumonia (NSIP): a clinicopathological study of 33 NSIP cases. Histopathology. 2016;68(3):347-55.<br />11.Perelas A, Silver RM, Arrossi AV, Highland KB. Systemic sclerosis-associated interstitial lung disease. Lancet Respir Med. 2020;8(3):304-20.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44105818</guid><pubDate>Mon, 29 Mar 2021 21:24:13 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44105818/pneumonia_intersticial_nao_especifica.mp3" length="7611035" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Silva CI, Muller NL, Hansell DM, Lee KS, Nicholson AG, Wells AU. Nonspecific interstitial pneumonia and idiopathic pulmonary fibrosis: changes in pattern and distribution of disease over time. Radiology. 2008;247(1):251-9.
2.Oliveira DS,...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Silva CI, Muller NL, Hansell DM, Lee KS, Nicholson AG, Wells AU. Nonspecific interstitial pneumonia and idiopathic pulmonary fibrosis: changes in pattern and distribution of disease over time. Radiology. 2008;247(1):251-9.<br />2.Oliveira DS, Araujo Filho JA, Paiva AFL, Ikari ES, Chate RC, Nomura CH. Idiopathic interstitial pneumonias: review of the latest American Thoracic Society/European Respiratory Society classification. Radiol Bras. 2018;51(5):321-7.<br />3.Escalon JG, Legasto AC, Toy D, Gruden JF. Central paradiaphragmatic middle lobe involvement in nonspecific interstitial pneumonia. Eur Radiol. 2021.<br />4.Kligerman SJ, Groshong S, Brown KK, Lynch DA. Nonspecific interstitial pneumonia: radiologic, clinical, and pathologic considerations. Radiographics. 2009;29(1):73-87.<br />5.Belloli EA, Beckford R, Hadley R, Flaherty KR. Idiopathic non-specific interstitial pneumonia. Respirology. 2016;21(2):259-68.<br />6.Oldham JM, Adegunsoye A, Valenzi E, Lee C, Witt L, Chen L, et al. Characterisation of patients with interstitial pneumonia with autoimmune features. Eur Respir J. 2016;47(6):1767-75.<br />7.Hansell DM, Bankier AA, MacMahon H, McLoud TC, Muller NL, Remy J. Fleischner Society: glossary of terms for thoracic imaging. Radiology. 2008;246(3):697-722.<br />8.Lee J, Kim YH, Kang JY, Jegal Y, Park SY, Korean Interstitial Lung Diseases Study G. Korean Guidelines for Diagnosis and Management of Interstitial Lung Diseases: Part 3. Idiopathic Nonspecific Interstitial Pneumonia. Tuberc Respir Dis (Seoul). 2019;82(4):277-84.<br />9.Cottin V, Hirani NA, Hotchkin DL, Nambiar AM, Ogura T, Otaola M, et al. Presentation, diagnosis and clinical course of the spectrum of progressive-fibrosing interstitial lung diseases. Eur Respir Rev. 2018;27(150).<br />10.Huo Z, Li J, Li S, Zhang H, Jin Z, Pang J, et al. Organizing pneumonia components in non-specific interstitial pneumonia (NSIP): a clinicopathological study of 33 NSIP cases. Histopathology. 2016;68(3):347-55.<br />11.Perelas A, Silver RM, Arrossi AV, Highland KB. Systemic sclerosis-associated interstitial lung disease. Lancet Respir Med. 2020;8(3):304-20.]]></itunes:summary><itunes:duration>476</itunes:duration><itunes:keywords>pid,pines,pulmões</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Non-specific interstitial pneumonias - NSIP</title><link>https://www.spreaker.com/episode/non-specific-interstitial-pneumonias-nsip--44105395</link><description><![CDATA[References<br />1.Silva CI, Muller NL, Hansell DM, Lee KS, Nicholson AG, Wells AU. Nonspecific interstitial pneumonia and idiopathic pulmonary fibrosis: changes in pattern and distribution of disease over time. Radiology. 2008;247(1):251-9.<br />2.Oliveira DS, Araujo Filho JA, Paiva AFL, Ikari ES, Chate RC, Nomura CH. Idiopathic interstitial pneumonias: review of the latest American Thoracic Society/European Respiratory Society classification. Radiol Bras. 2018;51(5):321-7.<br />3.Escalon JG, Legasto AC, Toy D, Gruden JF. Central paradiaphragmatic middle lobe involvement in nonspecific interstitial pneumonia. Eur Radiol. 2021.<br />4.Kligerman SJ, Groshong S, Brown KK, Lynch DA. Nonspecific interstitial pneumonia: radiologic, clinical, and pathologic considerations. Radiographics. 2009;29(1):73-87.<br />5.Belloli EA, Beckford R, Hadley R, Flaherty KR. Idiopathic non-specific interstitial pneumonia. Respirology. 2016;21(2):259-68.<br />6.Oldham JM, Adegunsoye A, Valenzi E, Lee C, Witt L, Chen L, et al. Characterisation of patients with interstitial pneumonia with autoimmune features. Eur Respir J. 2016;47(6):1767-75.<br />7.Hansell DM, Bankier AA, MacMahon H, McLoud TC, Muller NL, Remy J. Fleischner Society: glossary of terms for thoracic imaging. Radiology. 2008;246(3):697-722.<br />8.Lee J, Kim YH, Kang JY, Jegal Y, Park SY, Korean Interstitial Lung Diseases Study G. Korean Guidelines for Diagnosis and Management of Interstitial Lung Diseases: Part 3. Idiopathic Nonspecific Interstitial Pneumonia. Tuberc Respir Dis (Seoul). 2019;82(4):277-84.<br />9.Cottin V, Hirani NA, Hotchkin DL, Nambiar AM, Ogura T, Otaola M, et al. Presentation, diagnosis and clinical course of the spectrum of progressive-fibrosing interstitial lung diseases. Eur Respir Rev. 2018;27(150).<br />10.Huo Z, Li J, Li S, Zhang H, Jin Z, Pang J, et al. Organizing pneumonia components in non-specific interstitial pneumonia (NSIP): a clinicopathological study of 33 NSIP cases. Histopathology. 2016;68(3):347-55.<br />11.Perelas A, Silver RM, Arrossi AV, Highland KB. Systemic sclerosis-associated interstitial lung disease. Lancet Respir Med. 2020;8(3):304-20.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/44105395</guid><pubDate>Mon, 29 Mar 2021 20:59:38 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44105395/non_specific_interstitial_pneumonias_nsip.mp3" length="2185389" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Silva CI, Muller NL, Hansell DM, Lee KS, Nicholson AG, Wells AU. Nonspecific interstitial pneumonia and idiopathic pulmonary fibrosis: changes in pattern and distribution of disease over time. Radiology. 2008;247(1):251-9.
2.Oliveira DS,...</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Silva CI, Muller NL, Hansell DM, Lee KS, Nicholson AG, Wells AU. Nonspecific interstitial pneumonia and idiopathic pulmonary fibrosis: changes in pattern and distribution of disease over time. Radiology. 2008;247(1):251-9.<br />2.Oliveira DS, Araujo Filho JA, Paiva AFL, Ikari ES, Chate RC, Nomura CH. Idiopathic interstitial pneumonias: review of the latest American Thoracic Society/European Respiratory Society classification. Radiol Bras. 2018;51(5):321-7.<br />3.Escalon JG, Legasto AC, Toy D, Gruden JF. Central paradiaphragmatic middle lobe involvement in nonspecific interstitial pneumonia. Eur Radiol. 2021.<br />4.Kligerman SJ, Groshong S, Brown KK, Lynch DA. Nonspecific interstitial pneumonia: radiologic, clinical, and pathologic considerations. Radiographics. 2009;29(1):73-87.<br />5.Belloli EA, Beckford R, Hadley R, Flaherty KR. Idiopathic non-specific interstitial pneumonia. Respirology. 2016;21(2):259-68.<br />6.Oldham JM, Adegunsoye A, Valenzi E, Lee C, Witt L, Chen L, et al. Characterisation of patients with interstitial pneumonia with autoimmune features. Eur Respir J. 2016;47(6):1767-75.<br />7.Hansell DM, Bankier AA, MacMahon H, McLoud TC, Muller NL, Remy J. Fleischner Society: glossary of terms for thoracic imaging. Radiology. 2008;246(3):697-722.<br />8.Lee J, Kim YH, Kang JY, Jegal Y, Park SY, Korean Interstitial Lung Diseases Study G. Korean Guidelines for Diagnosis and Management of Interstitial Lung Diseases: Part 3. Idiopathic Nonspecific Interstitial Pneumonia. Tuberc Respir Dis (Seoul). 2019;82(4):277-84.<br />9.Cottin V, Hirani NA, Hotchkin DL, Nambiar AM, Ogura T, Otaola M, et al. Presentation, diagnosis and clinical course of the spectrum of progressive-fibrosing interstitial lung diseases. Eur Respir Rev. 2018;27(150).<br />10.Huo Z, Li J, Li S, Zhang H, Jin Z, Pang J, et al. Organizing pneumonia components in non-specific interstitial pneumonia (NSIP): a clinicopathological study of 33 NSIP cases. Histopathology. 2016;68(3):347-55.<br />11.Perelas A, Silver RM, Arrossi AV, Highland KB. Systemic sclerosis-associated interstitial lung disease. Lancet Respir Med. 2020;8(3):304-20.]]></itunes:summary><itunes:duration>365</itunes:duration><itunes:keywords>iip,lung,nsip</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>CRIPTOCOCOSE</title><link>https://www.spreaker.com/episode/criptococose--44072169</link><guid isPermaLink="false">https://api.spreaker.com/episode/44072169</guid><pubDate>Sat, 27 Mar 2021 02:18:05 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44072169/criptococose.mp3" length="2114454" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>133</itunes:duration><itunes:keywords>cripotococose</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>PACOCCIDIOIDOMICOSE</title><link>https://www.spreaker.com/episode/pacoccidioidomicose--44072134</link><guid isPermaLink="false">https://api.spreaker.com/episode/44072134</guid><pubDate>Sat, 27 Mar 2021 02:13:27 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44072134/pacoccidioidomicose.mp3" length="3128423" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>196</itunes:duration><itunes:keywords>paracoccidioidomicose</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUCORMICOSE</title><link>https://www.spreaker.com/episode/mucormicose--44072102</link><guid isPermaLink="false">https://api.spreaker.com/episode/44072102</guid><pubDate>Sat, 27 Mar 2021 02:07:55 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44072102/mucormicose.mp3" length="1958555" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>123</itunes:duration><itunes:keywords>diabetes,mucormicose</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>FUSARIOSE E ESPOROTRICOSE</title><link>https://www.spreaker.com/episode/fusariose-e-esporotricose--44072073</link><guid isPermaLink="false">https://api.spreaker.com/episode/44072073</guid><pubDate>Sat, 27 Mar 2021 02:04:17 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44072073/fusariose_e_esporotricose.mp3" length="2485184" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>156</itunes:duration><itunes:keywords>esporotricose,fusariose</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ASPERGILOSE</title><link>https://www.spreaker.com/episode/aspergilose--44046145</link><guid isPermaLink="false">https://api.spreaker.com/episode/44046145</guid><pubDate>Thu, 25 Mar 2021 11:12:19 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/44046145/aspergilose.mp3" length="5607757" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>351</itunes:duration><itunes:keywords>aspergillus,aspergilose,fungo</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>PNEUMOCISTOSE</title><link>https://www.spreaker.com/episode/pneumocistose--43992998</link><guid isPermaLink="false">https://api.spreaker.com/episode/43992998</guid><pubDate>Mon, 22 Mar 2021 02:17:53 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/43992998/pneumocistose.mp3" length="2030444" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>127</itunes:duration><itunes:keywords>pneumocistose,pneumocystis,sida</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>HISTOPLASMOSE</title><link>https://www.spreaker.com/episode/histoplasmose--43990838</link><guid isPermaLink="false">https://api.spreaker.com/episode/43990838</guid><pubDate>Sun, 21 Mar 2021 22:23:18 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/43990838/histoplasmose.mp3" length="3902066" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>244</itunes:duration><itunes:keywords>fungo,histoplasmose,linfonodomegalia,mediastinite,nódulo</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Muscles and tendons repair and the use of PRP 2</title><link>https://www.spreaker.com/episode/muscles-and-tendons-repair-and-the-use-of-prp-2--43727356</link><description><![CDATA[References<br />1.Jarvinen TA, Jarvinen M, Kalimo H. Regeneration of injured skeletal muscle after the injury. Muscles Ligaments Tendons J. 2013;3(4):337-45.<br />2.Drakonaki EE, Sudol-Szopinska I, Sinopidis C, Givissis P. High resolution ultrasound for imaging complications of muscle injury: Is there an additional role for elastography? J Ultrason. 2019;19(77):137-44.<br />3.Slavotinek JP. Muscle injury: the role of imaging in prognostic assignment and monitoring of muscle repair. Semin Musculoskelet Radiol. 2010;14(2):194-200.<br />4.Mann CJ, Perdiguero E, Kharraz Y, Aguilar S, Pessina P, Serrano AL, et al. Aberrant repair and fibrosis development in skeletal muscle. Skelet Muscle. 2011;1(1):21.<br />5.Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />6.Nourissat G, Berenbaum F, Duprez D. Tendon injury: from biology to tendon repair. Nat Rev Rheumatol. 2015;11(4):223-33.<br />7.Yang G, Rothrauff BB, Tuan RS. Tendon and ligament regeneration and repair: clinical relevance and developmental paradigm. Birth Defects Res C Embryo Today. 2013;99(3):203-22.<br />8.Thomopoulos S, Parks WC, Rifkin DB, Derwin KA. Mechanisms of tendon injury and repair. J Orthop Res. 2015;33(6):832-9.<br />9.Docheva D, Muller SA, Majewski M, Evans CH. Biologics for tendon repair. Adv Drug Deliv Rev. 2015;84:222-39.<br />10.Setayesh K, Villarreal A, Gottschalk A, Tokish JM, Choate WS. Treatment of Muscle Injuries with Platelet-Rich Plasma: a Review of the Literature. Curr Rev Musculoskelet Med. 2018;11(4):635-42.<br />11.Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />12.Suad Trebinjac MKN. Regenerative Injections in Sports Medicine<br />An Evidenced Based Approach: Springer; 2020.<br />13.Onur Oral GN, Nikitas Nomikos. Regenerative Biological Effects of Platelet-Rich Plasma (PRP) Therapy in Orthopaedic Sports Medicine. Am J Sports Scinece and Med. 2020.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/43727356</guid><pubDate>Thu, 04 Mar 2021 00:35:23 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/43727356/muscles_and_tendons_repair_and_the_use_of_prp_2.mp3" length="3161997" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Jarvinen TA, Jarvinen M, Kalimo H. Regeneration of injured skeletal muscle after the injury. Muscles Ligaments Tendons J. 2013;3(4):337-45.
2.Drakonaki EE, Sudol-Szopinska I, Sinopidis C, Givissis P. High resolution ultrasound for imaging...</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Jarvinen TA, Jarvinen M, Kalimo H. Regeneration of injured skeletal muscle after the injury. Muscles Ligaments Tendons J. 2013;3(4):337-45.<br />2.Drakonaki EE, Sudol-Szopinska I, Sinopidis C, Givissis P. High resolution ultrasound for imaging complications of muscle injury: Is there an additional role for elastography? J Ultrason. 2019;19(77):137-44.<br />3.Slavotinek JP. Muscle injury: the role of imaging in prognostic assignment and monitoring of muscle repair. Semin Musculoskelet Radiol. 2010;14(2):194-200.<br />4.Mann CJ, Perdiguero E, Kharraz Y, Aguilar S, Pessina P, Serrano AL, et al. Aberrant repair and fibrosis development in skeletal muscle. Skelet Muscle. 2011;1(1):21.<br />5.Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />6.Nourissat G, Berenbaum F, Duprez D. Tendon injury: from biology to tendon repair. Nat Rev Rheumatol. 2015;11(4):223-33.<br />7.Yang G, Rothrauff BB, Tuan RS. Tendon and ligament regeneration and repair: clinical relevance and developmental paradigm. Birth Defects Res C Embryo Today. 2013;99(3):203-22.<br />8.Thomopoulos S, Parks WC, Rifkin DB, Derwin KA. Mechanisms of tendon injury and repair. J Orthop Res. 2015;33(6):832-9.<br />9.Docheva D, Muller SA, Majewski M, Evans CH. Biologics for tendon repair. Adv Drug Deliv Rev. 2015;84:222-39.<br />10.Setayesh K, Villarreal A, Gottschalk A, Tokish JM, Choate WS. Treatment of Muscle Injuries with Platelet-Rich Plasma: a Review of the Literature. Curr Rev Musculoskelet Med. 2018;11(4):635-42.<br />11.Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />12.Suad Trebinjac MKN. Regenerative Injections in Sports Medicine<br />An Evidenced Based Approach: Springer; 2020.<br />13.Onur Oral GN, Nikitas Nomikos. Regenerative Biological Effects of Platelet-Rich Plasma (PRP) Therapy in Orthopaedic Sports Medicine. Am J Sports Scinece and Med. 2020.]]></itunes:summary><itunes:duration>527</itunes:duration><itunes:keywords>muscle,platelet,prp,repair,tendon</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Muscles and tendons repair and the use of PRP</title><link>https://www.spreaker.com/episode/muscles-and-tendons-repair-and-the-use-of-prp--43727332</link><guid isPermaLink="false">https://api.spreaker.com/episode/43727332</guid><pubDate>Thu, 04 Mar 2021 00:33:38 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/43727332/muscles_and_tendons_repair_and_the_us_of_prp.mp3" length="1461069" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>244</itunes:duration><itunes:keywords>muscles,platelet,prp,repair,tendons</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>THE ROTATOR CABLE</title><link>https://www.spreaker.com/episode/the-rotator-cable--43299150</link><description><![CDATA[References<br /><br />1.Nozaki T, Nimura A, Fujishiro H, Mochizuki T, Yamaguchi K, Kato R, et al. The anatomic relationship between the morphology of the greater tubercle of the humerus and the insertion of the infraspinatus tendon. J Shoulder Elbow Surg. 2015;24(4):555-60.<br />2.Mochizuki T, Sugaya H, Uomizu M, Maeda K, Matsuki K, Sekiya I, et al. Humeral insertion of the supraspinatus and infraspinatus. New anatomical findings regarding the footprint of the rotator cuff. Surgical technique. J Bone Joint Surg Am. 2009;91 Suppl 2 Pt 1:1-7.<br />3.Chang EY, Chung CB. Current concepts on imaging diagnosis of rotator cuff disease. Semin Musculoskelet Radiol. 2014;18(4):412-24.<br />4.Asghar A GS, Narayan RK. Revisiting the Anatomy of Rotator Cuff Relevant to Rotator Cuff Injury. Natl J Clin Anat. 2020;9:1-6.<br />5.Ricci V, Caliskan A, Nalbant E, Ozcakar L. Suspension Bridge of the Shoulder: Sonoanatomy of the Rotator Cable Revisited. PM R. 2020;12(1):101-3.<br />6.Gyftopoulos S, Bencardino J, Nevsky G, Hall G, Soofi Y, Desai P, et al. Rotator cable: MRI study of its appearance in the intact rotator cuff with anatomic and histologic correlation. AJR Am J Roentgenol. 2013;200(5):1101-5.<br />7.Morag Y, Jamadar DA, Boon TA, Bedi A, Caoili EM, Jacobson JA. Ultrasound of the rotator cable: prevalence and morphology in asymptomatic shoulders. AJR Am J Roentgenol. 2012;198(1):W27-30.<br />8.Rahu M, Kolts I, Poldoja E, Kask K. Rotator cuff tendon connections with the rotator cable. Knee Surg Sports Traumatol Arthrosc. 2017;25(7):2047-50.<br />9.Podgorski MT, Olewnik L, Grzelak P, Polguj M, Topol M. Rotator cable in pathological shoulders: comparison with normal anatomy in a cadaveric study. Anat Sci Int. 2019;94(1):53-7.<br />10.Sheah K, Bredella MA, Warner JJ, Halpern EF, Palmer WE. Transverse thickening along the articular surface of the rotator cuff consistent with the rotator cable: identification with MR arthrography and relevance in rotator cuff evaluation. AJR Am J Roentgenol. 2009;193(3):679-86.<br />11.Yuri T, Kobayashi H, Takano Y, Yoshida S, Naito A, Fujii H, et al. Capsular attachment of the subregions of rotator cuff muscles. Surg Radiol Anat. 2019;41(11):1351-9.<br />12.Huri G, Kaymakoglu M, Garbis N. Rotator cable and rotator interval: anatomy, biomechanics and clinical importance. EFORT Open Rev. 2019;4(2):56-62.<br />13.Adams CR, DeMartino AM, Rego G, Denard PJ, Burkhart SS. The Rotator Cuff and the Superior Capsule: Why We Need Both. Arthroscopy. 2016;32(12):2628-37.<br />14.Bureau NJ, Blain-Pare E, Tetreault P, Rouleau DM, Hagemeister N. Sonographic Visualization of the Rotator Cable in Patients With Symptomatic Full-Thickness Rotator Cuff Tears: Correlation With Tear Size, Muscular Fatty Infiltration and Atrophy, and Functional Outcome. J Ultrasound Med. 2016;35(9):1899-905.<br />15.Burkhart SS, Esch JC, Jolson RS. The rotator crescent and rotator cable: an anatomic description of the shoulder's "suspension bridge". Arthroscopy. 1993;9(6):611-6.<br />16.Cho NS, Moon SC, Hong SJ, Bae SH, Rhee YG. Comparison of Clinical and Radiological Results in the Arthroscopic Repair of Full-Thickness Rotator Cuff Tears With and Without the Anterior Attachment of the Rotator Cable. Am J Sports Med. 2017;45(11):2532-9.<br />17.Arai R, Matsuda S. Macroscopic and microscopic anatomy of the rotator cable in the shoulder. J Orthop Sci. 2020;25(2):229-34.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/43299150</guid><pubDate>Fri, 05 Feb 2021 08:31:30 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/43299150/the_rotator_cable.mp3" length="3154653" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References

1.Nozaki T, Nimura A, Fujishiro H, Mochizuki T, Yamaguchi K, Kato R, et al. The anatomic relationship between the morphology of the greater tubercle of the humerus and the insertion of the infraspinatus tendon. J Shoulder Elbow Surg....</itunes:subtitle><itunes:summary><![CDATA[References<br /><br />1.Nozaki T, Nimura A, Fujishiro H, Mochizuki T, Yamaguchi K, Kato R, et al. The anatomic relationship between the morphology of the greater tubercle of the humerus and the insertion of the infraspinatus tendon. J Shoulder Elbow Surg. 2015;24(4):555-60.<br />2.Mochizuki T, Sugaya H, Uomizu M, Maeda K, Matsuki K, Sekiya I, et al. Humeral insertion of the supraspinatus and infraspinatus. New anatomical findings regarding the footprint of the rotator cuff. Surgical technique. J Bone Joint Surg Am. 2009;91 Suppl 2 Pt 1:1-7.<br />3.Chang EY, Chung CB. Current concepts on imaging diagnosis of rotator cuff disease. Semin Musculoskelet Radiol. 2014;18(4):412-24.<br />4.Asghar A GS, Narayan RK. Revisiting the Anatomy of Rotator Cuff Relevant to Rotator Cuff Injury. Natl J Clin Anat. 2020;9:1-6.<br />5.Ricci V, Caliskan A, Nalbant E, Ozcakar L. Suspension Bridge of the Shoulder: Sonoanatomy of the Rotator Cable Revisited. PM R. 2020;12(1):101-3.<br />6.Gyftopoulos S, Bencardino J, Nevsky G, Hall G, Soofi Y, Desai P, et al. Rotator cable: MRI study of its appearance in the intact rotator cuff with anatomic and histologic correlation. AJR Am J Roentgenol. 2013;200(5):1101-5.<br />7.Morag Y, Jamadar DA, Boon TA, Bedi A, Caoili EM, Jacobson JA. Ultrasound of the rotator cable: prevalence and morphology in asymptomatic shoulders. AJR Am J Roentgenol. 2012;198(1):W27-30.<br />8.Rahu M, Kolts I, Poldoja E, Kask K. Rotator cuff tendon connections with the rotator cable. Knee Surg Sports Traumatol Arthrosc. 2017;25(7):2047-50.<br />9.Podgorski MT, Olewnik L, Grzelak P, Polguj M, Topol M. Rotator cable in pathological shoulders: comparison with normal anatomy in a cadaveric study. Anat Sci Int. 2019;94(1):53-7.<br />10.Sheah K, Bredella MA, Warner JJ, Halpern EF, Palmer WE. Transverse thickening along the articular surface of the rotator cuff consistent with the rotator cable: identification with MR arthrography and relevance in rotator cuff evaluation. AJR Am J Roentgenol. 2009;193(3):679-86.<br />11.Yuri T, Kobayashi H, Takano Y, Yoshida S, Naito A, Fujii H, et al. Capsular attachment of the subregions of rotator cuff muscles. Surg Radiol Anat. 2019;41(11):1351-9.<br />12.Huri G, Kaymakoglu M, Garbis N. Rotator cable and rotator interval: anatomy, biomechanics and clinical importance. EFORT Open Rev. 2019;4(2):56-62.<br />13.Adams CR, DeMartino AM, Rego G, Denard PJ, Burkhart SS. The Rotator Cuff and the Superior Capsule: Why We Need Both. Arthroscopy. 2016;32(12):2628-37.<br />14.Bureau NJ, Blain-Pare E, Tetreault P, Rouleau DM, Hagemeister N. Sonographic Visualization of the Rotator Cable in Patients With Symptomatic Full-Thickness Rotator Cuff Tears: Correlation With Tear Size, Muscular Fatty Infiltration and Atrophy, and Functional Outcome. J Ultrasound Med. 2016;35(9):1899-905.<br />15.Burkhart SS, Esch JC, Jolson RS. The rotator crescent and rotator cable: an anatomic description of the shoulder's "suspension bridge". Arthroscopy. 1993;9(6):611-6.<br />16.Cho NS, Moon SC, Hong SJ, Bae SH, Rhee YG. Comparison of Clinical and Radiological Results in the Arthroscopic Repair of Full-Thickness Rotator Cuff Tears With and Without the Anterior Attachment of the Rotator Cable. Am J Sports Med. 2017;45(11):2532-9.<br />17.Arai R, Matsuda S. Macroscopic and microscopic anatomy of the rotator cable in the shoulder. J Orthop Sci. 2020;25(2):229-34.]]></itunes:summary><itunes:duration>526</itunes:duration><itunes:keywords>bridge,cable,cuff,rotator,suspension</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>CRURAL FASCIA</title><link>https://www.spreaker.com/episode/crural-fascia--43131953</link><description><![CDATA[References<br />1.Stecco C, Cappellari A, Macchi V, Porzionato A, Morra A, Berizzi A, et al. The paratendineous tissues: an anatomical study of their role in the pathogenesis of tendinopathy. Surg Radiol Anat. 2014;36(6):561-72.<br />2.Silberman MR AK. Crural Fascia Injuries and Thickening on Musculoskeletal Ultrasound in Athletes with Calf Pain, Calf “Strains”, Exertional Compartiment Syndrome and Butulinum Toxin Injections. The Journal of Sports Medicine and Performance. 2017.<br />3.Stecco C. Functional Atlas of the Human Fascial System: Churchill Livingstone Elsevier; 2015.<br />4.Morton S, Chan O, Webborn N, Pritchard M, Morrissey D. Tears of the fascia cruris demonstrate characteristic sonographic features: a case series analysis. Muscles Ligaments Tendons J. 2015;5(4):299-304.<br />5.Webborn N, Morrissey D, Sarvananthan K, Chan O. Acute tear of the fascia cruris at the attachment to the Achilles tendon: a new diagnosis. Br J Sports Med. 2015;49(21):1398-403.<br />6.Carmont MR, Highland AM, Rochester JR, Paling EM, Davies MB. An anatomical and radiological study of the fascia cruris and paratenon of the Achilles tendon. Foot Ankle Surg. 2011;17(3):186-92.<br />7.Mattiussi G, Turloni M, Baldassi PT, Moreno C. Acute Achilles Paratendinopathy following Major Injury of the Crural Fascia in a Professional Soccer Player: A Possible Correlation? Case Rep Orthop. 2016;2016:1830875.<br />8.Stecco C, Pavan P, Pachera P, De Caro R, Natali A. Investigation of the mechanical properties of the human crural fascia and their possible clinical implications. Surg Radiol Anat. 2014;36(1):25-32.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/43131953</guid><pubDate>Tue, 26 Jan 2021 20:12:37 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/43131953/crural_fascia.mp3" length="1814589" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Stecco C, Cappellari A, Macchi V, Porzionato A, Morra A, Berizzi A, et al. The paratendineous tissues: an anatomical study of their role in the pathogenesis of tendinopathy. Surg Radiol Anat. 2014;36(6):561-72.
2.Silberman MR AK. Crural...</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Stecco C, Cappellari A, Macchi V, Porzionato A, Morra A, Berizzi A, et al. The paratendineous tissues: an anatomical study of their role in the pathogenesis of tendinopathy. Surg Radiol Anat. 2014;36(6):561-72.<br />2.Silberman MR AK. Crural Fascia Injuries and Thickening on Musculoskeletal Ultrasound in Athletes with Calf Pain, Calf “Strains”, Exertional Compartiment Syndrome and Butulinum Toxin Injections. The Journal of Sports Medicine and Performance. 2017.<br />3.Stecco C. Functional Atlas of the Human Fascial System: Churchill Livingstone Elsevier; 2015.<br />4.Morton S, Chan O, Webborn N, Pritchard M, Morrissey D. Tears of the fascia cruris demonstrate characteristic sonographic features: a case series analysis. Muscles Ligaments Tendons J. 2015;5(4):299-304.<br />5.Webborn N, Morrissey D, Sarvananthan K, Chan O. Acute tear of the fascia cruris at the attachment to the Achilles tendon: a new diagnosis. Br J Sports Med. 2015;49(21):1398-403.<br />6.Carmont MR, Highland AM, Rochester JR, Paling EM, Davies MB. An anatomical and radiological study of the fascia cruris and paratenon of the Achilles tendon. Foot Ankle Surg. 2011;17(3):186-92.<br />7.Mattiussi G, Turloni M, Baldassi PT, Moreno C. Acute Achilles Paratendinopathy following Major Injury of the Crural Fascia in a Professional Soccer Player: A Possible Correlation? Case Rep Orthop. 2016;2016:1830875.<br />8.Stecco C, Pavan P, Pachera P, De Caro R, Natali A. Investigation of the mechanical properties of the human crural fascia and their possible clinical implications. Surg Radiol Anat. 2014;36(1):25-32.]]></itunes:summary><itunes:duration>303</itunes:duration><itunes:keywords>calf,crural,fascia,leg,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ACROMIOCLAVICULAR JOINT - PART II</title><link>https://www.spreaker.com/episode/acromioclavicular-joint-part-ii--43045921</link><description><![CDATA[References<br />1.Flores DV, Goes PK, Gomez CM, Umpire DF, Pathria MN. Imaging of the Acromioclavicular Joint: Anatomy, Function, Pathologic Features, and Treatment. Radiographics. 2020;40(5):1355-82.<br />2.Ha AS, Petscavage-Thomas JM, Tagoylo GH. Acromioclavicular joint: the other joint in the shoulder. AJR Am J Roentgenol. 2014;202(2):375-85.<br />3.Goes PCK, Pathria MN. Radiographic/MR Imaging Correlation of the Shoulder. Magn Reson Imaging Clin N Am. 2019;27(4):575-85.<br />4.Faruch Bilfeld M, Lapegue F, Chiavassa Gandois H, Bayol MA, Bonnevialle N, Sans N. Ultrasound of the coracoclavicular ligaments in the acute phase of an acromioclavicular disjonction: Comparison of radiographic, ultrasound and MRI findings. Eur Radiol. 2017;27(2):483-90.<br />5.Antonio GE, Cho JH, Chung CB, Trudell DJ, Resnick D. Pictorial essay. MR imaging appearance and classification of acromioclavicular joint injury. AJR Am J Roentgenol. 2003;180(4):1103-10.<br />6.Precerutti M, Formica M, Bonardi M, Peroni C, Calciati F. Acromioclavicular osteoarthritis and shoulder pain: a review of the role of ultrasonography. J Ultrasound. 2020;23(3):317-25.<br />7.Peetrons P, Bedard JP. Acromioclavicular joint injury: enhanced technique of examination with dynamic maneuver. J Clin Ultrasound. 2007;35(5):262-7.<br />8.Park J, Chai JW, Kim DH, Cha SW. Dynamic ultrasonography of the shoulder. Ultrasonography. 2018;37(3):190-9.<br />9.Veen EJD, Donders CM, Westerbeek RE, Derks RPH, Landman EBM, Koorevaar CT. Predictive findings on magnetic resonance imaging in patients with symptomatic acromioclavicular osteoarthritis. J Shoulder Elbow Surg. 2018;27(8):e252-e8.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/43045921</guid><pubDate>Thu, 21 Jan 2021 15:46:03 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/43045921/acromioclavicular_joint_part_ii.mp3" length="2339082" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Flores DV, Goes PK, Gomez CM, Umpire DF, Pathria MN. Imaging of the Acromioclavicular Joint: Anatomy, Function, Pathologic Features, and Treatment. Radiographics. 2020;40(5):1355-82.
2.Ha AS, Petscavage-Thomas JM, Tagoylo GH....</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Flores DV, Goes PK, Gomez CM, Umpire DF, Pathria MN. Imaging of the Acromioclavicular Joint: Anatomy, Function, Pathologic Features, and Treatment. Radiographics. 2020;40(5):1355-82.<br />2.Ha AS, Petscavage-Thomas JM, Tagoylo GH. Acromioclavicular joint: the other joint in the shoulder. AJR Am J Roentgenol. 2014;202(2):375-85.<br />3.Goes PCK, Pathria MN. Radiographic/MR Imaging Correlation of the Shoulder. Magn Reson Imaging Clin N Am. 2019;27(4):575-85.<br />4.Faruch Bilfeld M, Lapegue F, Chiavassa Gandois H, Bayol MA, Bonnevialle N, Sans N. Ultrasound of the coracoclavicular ligaments in the acute phase of an acromioclavicular disjonction: Comparison of radiographic, ultrasound and MRI findings. Eur Radiol. 2017;27(2):483-90.<br />5.Antonio GE, Cho JH, Chung CB, Trudell DJ, Resnick D. Pictorial essay. MR imaging appearance and classification of acromioclavicular joint injury. AJR Am J Roentgenol. 2003;180(4):1103-10.<br />6.Precerutti M, Formica M, Bonardi M, Peroni C, Calciati F. Acromioclavicular osteoarthritis and shoulder pain: a review of the role of ultrasonography. J Ultrasound. 2020;23(3):317-25.<br />7.Peetrons P, Bedard JP. Acromioclavicular joint injury: enhanced technique of examination with dynamic maneuver. J Clin Ultrasound. 2007;35(5):262-7.<br />8.Park J, Chai JW, Kim DH, Cha SW. Dynamic ultrasonography of the shoulder. Ultrasonography. 2018;37(3):190-9.<br />9.Veen EJD, Donders CM, Westerbeek RE, Derks RPH, Landman EBM, Koorevaar CT. Predictive findings on magnetic resonance imaging in patients with symptomatic acromioclavicular osteoarthritis. J Shoulder Elbow Surg. 2018;27(8):e252-e8.]]></itunes:summary><itunes:duration>390</itunes:duration><itunes:keywords>acromioclavicular,mri,rockwood,shoulder,trauma</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ACROMIOCLAVICULAR JOINT - PART I</title><link>https://www.spreaker.com/episode/acromioclavicular-joint-part-i--43045874</link><description><![CDATA[References<br />1.Flores DV, Goes PK, Gomez CM, Umpire DF, Pathria MN. Imaging of the Acromioclavicular Joint: Anatomy, Function, Pathologic Features, and Treatment. Radiographics. 2020;40(5):1355-82.<br />2.Ha AS, Petscavage-Thomas JM, Tagoylo GH. Acromioclavicular joint: the other joint in the shoulder. AJR Am J Roentgenol. 2014;202(2):375-85.<br />3.Goes PCK, Pathria MN. Radiographic/MR Imaging Correlation of the Shoulder. Magn Reson Imaging Clin N Am. 2019;27(4):575-85.<br />4.Faruch Bilfeld M, Lapegue F, Chiavassa Gandois H, Bayol MA, Bonnevialle N, Sans N. Ultrasound of the coracoclavicular ligaments in the acute phase of an acromioclavicular disjonction: Comparison of radiographic, ultrasound and MRI findings. Eur Radiol. 2017;27(2):483-90.<br />5.Antonio GE, Cho JH, Chung CB, Trudell DJ, Resnick D. Pictorial essay. MR imaging appearance and classification of acromioclavicular joint injury. AJR Am J Roentgenol. 2003;180(4):1103-10.<br />6.Precerutti M, Formica M, Bonardi M, Peroni C, Calciati F. Acromioclavicular osteoarthritis and shoulder pain: a review of the role of ultrasonography. J Ultrasound. 2020;23(3):317-25.<br />7.Peetrons P, Bedard JP. Acromioclavicular joint injury: enhanced technique of examination with dynamic maneuver. J Clin Ultrasound. 2007;35(5):262-7.<br />8.Park J, Chai JW, Kim DH, Cha SW. Dynamic ultrasonography of the shoulder. Ultrasonography. 2018;37(3):190-9.<br />9.Veen EJD, Donders CM, Westerbeek RE, Derks RPH, Landman EBM, Koorevaar CT. Predictive findings on magnetic resonance imaging in patients with symptomatic acromioclavicular osteoarthritis. J Shoulder Elbow Surg. 2018;27(8):e252-e8.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/43045874</guid><pubDate>Thu, 21 Jan 2021 15:41:08 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/43045874/acromioclavicular_joint_part_i.mp3" length="1830141" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Flores DV, Goes PK, Gomez CM, Umpire DF, Pathria MN. Imaging of the Acromioclavicular Joint: Anatomy, Function, Pathologic Features, and Treatment. Radiographics. 2020;40(5):1355-82.
2.Ha AS, Petscavage-Thomas JM, Tagoylo GH....</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Flores DV, Goes PK, Gomez CM, Umpire DF, Pathria MN. Imaging of the Acromioclavicular Joint: Anatomy, Function, Pathologic Features, and Treatment. Radiographics. 2020;40(5):1355-82.<br />2.Ha AS, Petscavage-Thomas JM, Tagoylo GH. Acromioclavicular joint: the other joint in the shoulder. AJR Am J Roentgenol. 2014;202(2):375-85.<br />3.Goes PCK, Pathria MN. Radiographic/MR Imaging Correlation of the Shoulder. Magn Reson Imaging Clin N Am. 2019;27(4):575-85.<br />4.Faruch Bilfeld M, Lapegue F, Chiavassa Gandois H, Bayol MA, Bonnevialle N, Sans N. Ultrasound of the coracoclavicular ligaments in the acute phase of an acromioclavicular disjonction: Comparison of radiographic, ultrasound and MRI findings. Eur Radiol. 2017;27(2):483-90.<br />5.Antonio GE, Cho JH, Chung CB, Trudell DJ, Resnick D. Pictorial essay. MR imaging appearance and classification of acromioclavicular joint injury. AJR Am J Roentgenol. 2003;180(4):1103-10.<br />6.Precerutti M, Formica M, Bonardi M, Peroni C, Calciati F. Acromioclavicular osteoarthritis and shoulder pain: a review of the role of ultrasonography. J Ultrasound. 2020;23(3):317-25.<br />7.Peetrons P, Bedard JP. Acromioclavicular joint injury: enhanced technique of examination with dynamic maneuver. J Clin Ultrasound. 2007;35(5):262-7.<br />8.Park J, Chai JW, Kim DH, Cha SW. Dynamic ultrasonography of the shoulder. Ultrasonography. 2018;37(3):190-9.<br />9.Veen EJD, Donders CM, Westerbeek RE, Derks RPH, Landman EBM, Koorevaar CT. Predictive findings on magnetic resonance imaging in patients with symptomatic acromioclavicular osteoarthritis. J Shoulder Elbow Surg. 2018;27(8):e252-e8.]]></itunes:summary><itunes:duration>306</itunes:duration><itunes:keywords>acromioclavicular,mri,rockwood,shoulder,trauma</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCULAR ANATOMY OF THE SOLE OF THE FOOT</title><link>https://www.spreaker.com/episode/muscular-anatomy-of-the-sole-of-the-foot--42876450</link><description><![CDATA[References:<br />1.Sarrafian SK. Sarrafian’s Anatomy of the<br />Foot and Ankle Descriptive, Topographic, Functional. third ed2011.<br />2.Edama M, Takabayashi T, Inai T, Kikumoto T, Hirabayashi R, Ito W, et al. The relationships between the quadratus plantae and the flexor digitorum longus and the flexor hallucis longus. Surg Radiol Anat. 2019;41(6):689-92.<br />3.Willegger M, Seyidova N, Schuh R, Windhager R, Hirtler L. The tibialis posterior tendon footprint: an anatomical dissection study. J Foot Ankle Res. 2020;13(1):25.<br />4.Hallinan J, Wang W, Pathria MN, Smitaman E, Huang BK. The peroneus longus muscle and tendon: a review of its anatomy and pathology. Skeletal Radiol. 2019;48(9):1329-44.<br />5.Vazquez-Zorrilla D, Millan-Alanis JM, Alvarez-Villalobos NA, Elizondo-Omana RE, Guzman-Lopez S, Vilchez-Cavazos JF, et al. Anatomy of foot Compartments: a systematic review. Ann Anat. 2020;229:151465.<br />6.Faymonville C, Andermahr J, Seidel U, Muller LP, Skouras E, Eysel P, et al. Compartments of the foot: topographic anatomy. Surg Radiol Anat. 2012;34(10):929-33.<br />7.Hernandez-Diaz C, Saavedra MA, Navarro-Zarza JE, Canoso JJ, Villasenor-Ovies P, Vargas A, et al. Clinical anatomy of the ankle and foot. Reumatol Clin. 2012;8 Suppl 2:46-52.<br />8.Ling ZX, Kumar VP. The myofascial compartments of the foot: a cadaver study. J Bone Joint Surg Br. 2008;90(8):1114-8.<br />9.Kirby KA. Longitudinal Arch Load-sharing System of the Foot. Rev Esp Podol. 2017;28:e18.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42876450</guid><pubDate>Mon, 11 Jan 2021 05:26:01 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42876450/muscular_anatomy_of_the_sole_of_the_foot.mp3" length="3072951" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References:
1.Sarrafian SK. Sarrafian’s Anatomy of the
Foot and Ankle Descriptive, Topographic, Functional. third ed2011.
2.Edama M, Takabayashi T, Inai T, Kikumoto T, Hirabayashi R, Ito W, et al. The relationships between the quadratus plantae and...</itunes:subtitle><itunes:summary><![CDATA[References:<br />1.Sarrafian SK. Sarrafian’s Anatomy of the<br />Foot and Ankle Descriptive, Topographic, Functional. third ed2011.<br />2.Edama M, Takabayashi T, Inai T, Kikumoto T, Hirabayashi R, Ito W, et al. The relationships between the quadratus plantae and the flexor digitorum longus and the flexor hallucis longus. Surg Radiol Anat. 2019;41(6):689-92.<br />3.Willegger M, Seyidova N, Schuh R, Windhager R, Hirtler L. The tibialis posterior tendon footprint: an anatomical dissection study. J Foot Ankle Res. 2020;13(1):25.<br />4.Hallinan J, Wang W, Pathria MN, Smitaman E, Huang BK. The peroneus longus muscle and tendon: a review of its anatomy and pathology. Skeletal Radiol. 2019;48(9):1329-44.<br />5.Vazquez-Zorrilla D, Millan-Alanis JM, Alvarez-Villalobos NA, Elizondo-Omana RE, Guzman-Lopez S, Vilchez-Cavazos JF, et al. Anatomy of foot Compartments: a systematic review. Ann Anat. 2020;229:151465.<br />6.Faymonville C, Andermahr J, Seidel U, Muller LP, Skouras E, Eysel P, et al. Compartments of the foot: topographic anatomy. Surg Radiol Anat. 2012;34(10):929-33.<br />7.Hernandez-Diaz C, Saavedra MA, Navarro-Zarza JE, Canoso JJ, Villasenor-Ovies P, Vargas A, et al. Clinical anatomy of the ankle and foot. Reumatol Clin. 2012;8 Suppl 2:46-52.<br />8.Ling ZX, Kumar VP. The myofascial compartments of the foot: a cadaver study. J Bone Joint Surg Br. 2008;90(8):1114-8.<br />9.Kirby KA. Longitudinal Arch Load-sharing System of the Foot. Rev Esp Podol. 2017;28:e18.]]></itunes:summary><itunes:duration>513</itunes:duration><itunes:keywords>compartments,flexors,foot,layers,sole</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Hallux sesamoid complex imaging a practical diagnostic approach SKELETAL RADIOLOGY 2020</title><link>https://www.spreaker.com/episode/hallux-sesamoid-complex-imaging-a-practical-diagnostic-approach-skeletal-radiology-2020--42805505</link><description><![CDATA[A summary of the review paper of Skeletal Radiology (2020) 49:1889–1901<br /><a href="https://doi.org/10.1007/s00256-020-03507-8" rel="noopener">https://doi.org/10.1007/s00256-020-03507-8</a>]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42805505</guid><pubDate>Tue, 05 Jan 2021 23:30:05 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42805505/hallux_sesamoid_complex_imaging_a_practical_diagnostic_approach_skeletal_radiology_2020.mp3" length="1947258" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>A summary of the review paper of Skeletal Radiology (2020) 49:1889–1901
https://doi.org/10.1007/s00256-020-03507-8</itunes:subtitle><itunes:summary><![CDATA[A summary of the review paper of Skeletal Radiology (2020) 49:1889–1901<br /><a href="https://doi.org/10.1007/s00256-020-03507-8" rel="noopener">https://doi.org/10.1007/s00256-020-03507-8</a>]]></itunes:summary><itunes:duration>325</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART XVI - ADDUCTOR INJURIES</title><link>https://www.spreaker.com/episode/muscle-injuries-part-xvi-adductor-injuries--42775006</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42775006</guid><pubDate>Sun, 03 Jan 2021 20:50:47 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42775006/muscle_injuries_part_xvi_adductor_injuries.mp3" length="1463085" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>244</itunes:duration><itunes:keywords>adductor,pyramidalis,rectus,soccer,tears</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART XV - RECTUS FEMORIS' TEARS</title><link>https://www.spreaker.com/episode/muscle-injuries-part-xv-rectus-femoris-tears--42773465</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42773465</guid><pubDate>Sun, 03 Jan 2021 18:02:09 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42773465/muscle_injuries_part_xv_rectus_femoris_tears.mp3" length="1579050" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>264</itunes:duration><itunes:keywords>degloving,femoris,quadriceps,rectus,tear</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART XIV (HAMSTRING INJURIES PART III)</title><link>https://www.spreaker.com/episode/muscle-injuries-part-xiv-hamstring-injuries-part-iii--42771915</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42771915</guid><pubDate>Sun, 03 Jan 2021 15:48:56 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42771915/muscle_injuries_part_xiv_hamstring_injuries_part_iii.mp3" length="698445" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>117</itunes:duration><itunes:keywords>biceps,hamstrings,semimembranosus,semitendinosus,tears</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART XIII (HAMSTRING INJURIES PART II)</title><link>https://www.spreaker.com/episode/muscle-injuries-part-xiii-hamstring-injuries-part-ii--42771349</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42771349</guid><pubDate>Sun, 03 Jan 2021 14:48:24 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42771349/muscle_injuries_part_xiii_hamstring_injuries_part_ii.mp3" length="1819674" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>304</itunes:duration><itunes:keywords>biceps,hamstrings,semimembranosus,semitendinosus,thigh</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART XII (HAMSTRING INJURIES PART I)</title><link>https://www.spreaker.com/episode/muscle-injuries-part-xii-hamstring-injuries-part-i--42769803</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42769803</guid><pubDate>Sun, 03 Jan 2021 11:30:54 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42769803/muscle_injuries_part_xiii_hamstring_injuries_part_ii.mp3" length="1819674" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>304</itunes:duration><itunes:keywords>biceps,hamstrings,semimembranosus,semitendinosus,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART XI (CALF INJURIES PART II)</title><link>https://www.spreaker.com/episode/muscle-injuries-part-xi-calf-injuries-part-ii--42766136</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42766136</guid><pubDate>Sun, 03 Jan 2021 02:42:55 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42766136/muscle_injuries_part_xi_calf_injuries_part_ii.mp3" length="1456794" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>243</itunes:duration><itunes:keywords>calf,gastrocnemius,soleus,tear,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART X (CALF INJURIES PART I)</title><link>https://www.spreaker.com/episode/muscle-injuries-part-x-calf-injuries-part-i--42765765</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42765765</guid><pubDate>Sun, 03 Jan 2021 01:49:18 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42765765/muscle_injuries_part_x_calf_injuries_part_i.mp3" length="1743354" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>291</itunes:duration><itunes:keywords>calf,gastrocnemius,running,soleus,tennis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART IX - REPAIR</title><link>https://www.spreaker.com/episode/muscle-injuries-part-ix-repair--42765303</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42765303</guid><pubDate>Sun, 03 Jan 2021 00:46:57 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42765303/muscle_injuries_part_ix_repair.mp3" length="499869" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>84</itunes:duration><itunes:keywords>mri,muscle,repair,scar,tear</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART VIII - FOLLOW-UP WITH US</title><link>https://www.spreaker.com/episode/muscle-injuries-part-viii-follow-up-with-us--42765145</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42765145</guid><pubDate>Sun, 03 Jan 2021 00:25:05 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42765145/muscle_injuries_part_viii_follow_up_with_us.mp3" length="894717" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>150</itunes:duration><itunes:keywords>doppler,follow-up,muscle,tear,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART VII - THE BRITISH CLASSIFICATION AND THE BARCELONA-ASPETAR-DUKE CLASSIFICATION</title><link>https://www.spreaker.com/episode/muscle-injuries-part-vii-the-british-classification-and-the-barcelona-aspetar-duke-classification--42764741</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42764741</guid><pubDate>Sat, 02 Jan 2021 23:48:30 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42764741/muscle_injuries_part_vii_researches_employing_the_british_classification_and_the_barcelona_aspetar_duke_classification.mp3" length="1594458" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>266</itunes:duration><itunes:keywords>aspetar,barcelona,duke,fifa,mri</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART VI - THE BRITISH CLASSIFICATION</title><link>https://www.spreaker.com/episode/muscle-injuries-part-vi-the-british-classification--42763554</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42763554</guid><pubDate>Sat, 02 Jan 2021 21:28:47 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42763554/muscle_injuries_part_vi_the_british_classification.mp3" length="1449306" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>242</itunes:duration><itunes:keywords>british,classification,mri,muscle,staging</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART V - THE MUNICH CLASSIFICATION</title><link>https://www.spreaker.com/episode/muscle-injuries-part-v-the-munich-classification--42762945</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42762945</guid><pubDate>Sat, 02 Jan 2021 20:27:33 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42762945/muscle_injuries_part_v_the_munich_classification.mp3" length="5388000" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>270</itunes:duration><itunes:keywords>classification,mri,munich,muscle,staging</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART IV - RETURN TO PLAY AND STAGING</title><link>https://www.spreaker.com/episode/muscle-injuries-part-iv-return-to-play-and-staging--42762340</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42762340</guid><pubDate>Sat, 02 Jan 2021 19:19:01 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42762340/muscle_injuries_part_iv_return_to_play_and_staging.mp3" length="5660928" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>284</itunes:duration><itunes:keywords>mri,muscle,rtp,staging,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART III - CONTUSION, LACERATION AND COMPARTMENTAL SYNDROMES</title><link>https://www.spreaker.com/episode/muscle-injuries-part-iii-contusion-laceration-and-compartmental-syndromes--42761563</link><description><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24. Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25. Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26. Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27. Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28. Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29. Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30. Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31. Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32. Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33. Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34. Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35. van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36. Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37. Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38. Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39. Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40. Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41. Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42. Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43. Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44. Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45. Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46. Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47. Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48. Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49. Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50. Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51. Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52. Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53. Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54. Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55. Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56. Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57. Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 145 athletes. Knee Surg Sports Traumatol Arthrosc. 2020.<br />58. Schilders E,]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42761563</guid><pubDate>Sat, 02 Jan 2021 18:00:39 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42761563/muscle_injuries_part_iii_contusion_laceration_and_compartmental_syndromes.mp3" length="1393578" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2. Pathria M. MRI traumatic changes...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2. Pathria M. MRI traumatic changes 2009 (Radiology Assistant)<br />3. Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4. Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5. Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6. Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7. Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8. DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9. Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10. Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11. MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12. Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13. Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14. Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15. Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16. AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17. Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18. Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19. Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20. Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21. Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22. Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23. Pedret C,...]]></itunes:summary><itunes:duration>233</itunes:duration><itunes:keywords>contusion,hematoma,mri,muscle,tear</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART II - TEARS AND DOMS</title><link>https://www.spreaker.com/episode/muscle-injuries-part-ii-tears-and-doms--42760140</link><description><![CDATA[References<br />1.Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2.Pathria M. MRI traumatic changes 2009 [Available from: <a href="https://radiologyassistant.nl/musculoskeletal/muscle/mri-traumatic-changes" rel="noopener">https://radiologyassistant.nl/musculoskeletal/muscle/mri-traumatic-changes</a>.<br />3.Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4.Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5.Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6.Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7.Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8.DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9.Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10.Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11.MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12.Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13.Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14.Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15.Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16.AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17.Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18.Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19.Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20.Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21.Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22.Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23.Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24.Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25.Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26.Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27.Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28.Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29.Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30.Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31.Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32.Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33.Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34.Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35.van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36.Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37.Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38.Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39.Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40.Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41.Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42.Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43.Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44.Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45.Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46.Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47.Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48.Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49.Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50.Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51.Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52.Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53.Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54.Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55.Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56.Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57.Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 14]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42760140</guid><pubDate>Sat, 02 Jan 2021 15:35:43 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42760140/muscle_injuries_part_ii_tears_and_doms.mp3" length="1365354" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2.Pathria M. MRI traumatic changes 2009...</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2.Pathria M. MRI traumatic changes 2009 [Available from: <a href="https://radiologyassistant.nl/musculoskeletal/muscle/mri-traumatic-changes" rel="noopener">https://radiologyassistant.nl/musculoskeletal/muscle/mri-traumatic-changes</a>.<br />3.Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4.Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5.Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6.Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7.Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8.DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9.Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10.Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11.MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12.Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13.Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14.Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15.Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16.AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17.Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18.Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19.Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20.Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21.Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22.Guermazi A, Roemer FW, Robinson...]]></itunes:summary><itunes:duration>228</itunes:duration><itunes:keywords>doms,mri,muscle,sports,tears</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MUSCLE INJURIES PART I - INTRODUCTION AND ANATOMY</title><link>https://www.spreaker.com/episode/muscle-injuries-part-i-introduction-and-anatomy--42759663</link><description><![CDATA[References<br />1.Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2.Pathria M. MRI traumatic changes 2009 [Available from: <a href="https://radiologyassistant.nl/musculoskeletal/muscle/mri-traumatic-changes" rel="noopener">https://radiologyassistant.nl/musculoskeletal/muscle/mri-traumatic-changes</a>.<br />3.Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4.Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5.Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6.Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7.Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8.DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9.Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10.Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11.MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12.Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13.Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14.Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15.Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16.AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17.Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18.Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19.Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20.Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21.Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22.Guermazi A, Roemer FW, Robinson P, Tol JL, Regatte RR, Crema MD. Imaging of Muscle Injuries in Sports Medicine: Sports Imaging Series. Radiology. 2017;285(3):1063.<br />23.Pedret C, Balius R, Blasi M, Davila F, Aramendi JF, Masci L, et al. Ultrasound classification of medial gastrocnemious injuries. Scand J Med Sci Sports. 2020;30(12):2456-65.<br />24.Fields KB, Rigby MD. Muscular Calf Injuries in Runners. Curr Sports Med Rep. 2016;15(5):320-4.<br />25.Dalmau-Pastor M, Fargues-Polo B, Jr., Casanova-Martinez D, Jr., Vega J, Golano P. Anatomy of the triceps surae: a pictorial essay. Foot Ankle Clin. 2014;19(4):603-35.<br />26.Balius R, Rodas G, Pedret C, Capdevila L, Alomar X, Bong DA. Soleus muscle injury: sensitivity of ultrasound patterns. Skeletal Radiol. 2014;43(6):805-12.<br />27.Delgado GJ, Chung CB, Lektrakul N, Azocar P, Botte MJ, Coria D, et al. Tennis leg: clinical US study of 141 patients and anatomic investigation of four cadavers with MR imaging and US. Radiology. 2002;224(1):112-9.<br />28.Bright JM, Fields KB, Draper R. Ultrasound Diagnosis of Calf Injuries. Sports Health. 2017;9(4):352-5.<br />29.Olewnik L, Zielinska N, Paulsen F, Podgorski M, Haladaj R, Karauda P, et al. A proposal for a new classification of soleus muscle morphology. Ann Anat. 2020;232:151584.<br />30.Kimura N, Kato K, Anetai H, Kawasaki Y, Miyaki T, Kudoh H, et al. Anatomical study of the soleus: Application to improved imaging diagnoses. Clin Anat. 2020:e23667.<br />31.Waterworth G, Wein S, Gorelik A, Rotstein AH. MRI assessment of calf injuries in Australian Football League players: findings that influence return to play. Skeletal Radiol. 2017;46(3):343-50.<br />32.Balius R, Pedret C, Iriarte I, Saiz R, Cerezal L. Sonographic landmarks in hamstring muscles. Skeletal Radiol. 2019;48(11):1675-83.<br />33.Beltran L, Ghazikhanian V, Padron M, Beltran J. The proximal hamstring muscle-tendon-bone unit: a review of the normal anatomy, biomechanics, and pathophysiology. Eur J Radiol. 2012;81(12):3772-9.<br />34.Ahmad CS, Redler LH, Ciccotti MG, Maffulli N, Longo UG, Bradley J. Evaluation and management of hamstring injuries. Am J Sports Med. 2013;41(12):2933-47.<br />35.van der Made AD, Wieldraaijer T, Kerkhoffs GM, Kleipool RP, Engebretsen L, van Dijk CN, et al. The hamstring muscle complex. Knee Surg Sports Traumatol Arthrosc. 2015;23(7):2115-22.<br />36.Kumazaki T, Ehara Y, Sakai T. Anatomy and physiology of hamstring injury. Int J Sports Med. 2012;33(12):950-4.<br />37.Koulouris G, Connell D. Hamstring muscle complex: an imaging review. Radiographics. 2005;25(3):571-86.<br />38.Tosovic D, Muirhead JC, Brown JM, Woodley SJ. Anatomy of the long head of biceps femoris: An ultrasound study. Clin Anat. 2016;29(6):738-45.<br />39.Silder A, Heiderscheit BC, Thelen DG, Enright T, Tuite MJ. MR observations of long-term musculotendon remodeling following a hamstring strain injury. Skeletal Radiol. 2008;37(12):1101-9.<br />40.Pasta G, Nanni G, Molini L, Bianchi S. Sonography of the quadriceps muscle: Examination technique, normal anatomy, and traumatic lesions. J Ultrasound. 2010;13(2):76-84.<br />41.Bordalo-Rodrigues M, Rosenberg ZS. MR imaging of the proximal rectus femoris musculotendinous unit. Magn Reson Imaging Clin N Am. 2005;13(4):717-25.<br />42.Pesquer L, Poussange N, Sonnery-Cottet B, Graveleau N, Meyer P, Dallaudiere B, et al. Imaging of rectus femoris proximal tendinopathies. Skeletal Radiol. 2016;45(7):889-97.<br />43.Ouellette H, Thomas BJ, Nelson E, Torriani M. MR imaging of rectus femoris origin injuries. Skeletal Radiol. 2006;35(9):665-72.<br />44.Hasselman CT, Best TM, Hughes Ct, Martinez S, Garrett WE, Jr. An explanation for various rectus femoris strain injuries using previously undescribed muscle architecture. Am J Sports Med. 1995;23(4):493-9.<br />45.Kassarjian A, Rodrigo RM, Santisteban JM. Intramuscular degloving injuries to the rectus femoris: findings at MRI. AJR Am J Roentgenol. 2014;202(5):W475-80.<br />46.Iriuchishima T, Shirakura K, Yorifuji H, Fu FH. Anatomical evaluation of the rectus femoris tendon and its related structures. Arch Orthop Trauma Surg. 2012;132(11):1665-8.<br />47.Gyftopoulos S, Rosenberg ZS, Schweitzer ME, Bordalo-Rodrigues M. Normal anatomy and strains of the deep musculotendinous junction of the proximal rectus femoris: MRI features. AJR Am J Roentgenol. 2008;190(3):W182-6.<br />48.Bianchi S, Martinoli C, Waser NP, Bianchi-Zamorani MP, Federici E, Fasel J. Central aponeurosis tears of the rectus femoris: sonographic findings. Skeletal Radiol. 2002;31(10):581-6.<br />49.Kassarjian A, Rodrigo RM, Santisteban JM. Current concepts in MRI of rectus femoris musculotendinous (myotendinous) and myofascial injuries in elite athletes. Eur J Radiol. 2012;81(12):3763-71.<br />50.Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />51.Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />52.Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />53.Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />54.Cunningham PM, Brennan D, O'Connell M, MacMahon P, O'Neill P, Eustace S. Patterns of bone and soft-tissue injury at the symphysis pubis in soccer players: observations at MRI. AJR Am J Roentgenol. 2007;188(3):W291-6.<br />55.Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />56.Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />57.Schilders E, Mitchell AWM, Johnson R, Dimitrakopoulou A, Kartsonaki C, Lee JC. Proximal adductor avulsions are rarely isolated but usually involve injury to the PLAC and pectineus: descriptive MRI findings in 14]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42759663</guid><pubDate>Sat, 02 Jan 2021 14:48:54 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42759663/muscle_injuries_part_i_introduction_and_anatomy.mp3" length="2486871" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.
2.Pathria M. MRI traumatic changes 2009...</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Flores DV, Mejia Gomez C, Estrada-Castrillon M, Smitaman E, Pathria MN. MR Imaging of Muscle Trauma: Anatomy, Biomechanics, Pathophysiology, and Imaging Appearance. Radiographics. 2018;38(1):124-48.<br />2.Pathria M. MRI traumatic changes 2009 [Available from: <a href="https://radiologyassistant.nl/musculoskeletal/muscle/mri-traumatic-changes" rel="noopener">https://radiologyassistant.nl/musculoskeletal/muscle/mri-traumatic-changes</a>.<br />3.Study Group of the M, Tendon System from the Spanish Society of Sports T, Balius R, Blasi M, Pedret C, Alomar X, et al. A Histoarchitectural Approach to Skeletal Muscle Injury: Searching for a Common Nomenclature. Orthop J Sports Med. 2020;8(3):2325967120909090.<br />4.Balius R, Alomar X, Pedret C, Blasi M, Rodas G, Pruna R, et al. Role of the Extracellular Matrix in Muscle Injuries: Histoarchitectural Considerations for Muscle Injuries. Orthop J Sports Med. 2018;6(9):2325967118795863.<br />5.Gillies AR, Lieber RL. Structure and function of the skeletal muscle extracellular matrix. Muscle Nerve. 2011;44(3):318-31.<br />6.Ekstrand J, Healy JC, Walden M, Lee JC, English B, Hagglund M. Hamstring muscle injuries in professional football: the correlation of MRI findings with return to play. Br J Sports Med. 2012;46(2):112-7.<br />7.Mueller-Wohlfahrt HW, Haensel L, Mithoefer K, Ekstrand J, English B, McNally S, et al. Terminology and classification of muscle injuries in sport: the Munich consensus statement. Br J Sports Med. 2013;47(6):342-50.<br />8.DA C. Longitudinal Study Comparing Sonographic and MRI Assessments of Acute and Healing Hamstring Injuries. AJR Am J Roentgenol. 2004;183:975-84.<br />9.Blankenbaker DG, Tuite MJ. Temporal changes of muscle injury. Semin Musculoskelet Radiol. 2010;14(2):176-93.<br />10.Cruz J, Mascarenhas V. Adult thigh muscle injuries-from diagnosis to treatment: what the radiologist should know. Skeletal Radiol. 2018;47(8):1087-98.<br />11.MP M. Muscle strain injury vs muscle damage: Two mutually exclusive clinical entities. Transl Sports Med. 2019;2:102-8.<br />12.Valle X, Alentorn-Geli E, Tol JL, Hamilton B, Garrett WE, Jr., Pruna R, et al. Muscle Injuries in Sports: A New Evidence-Informed and Expert Consensus-Based Classification with Clinical Application. Sports Med. 2017;47(7):1241-53.<br />13.Bencardino JT, Mellado JM. Hamstring injuries of the hip. Magn Reson Imaging Clin N Am. 2005;13(4):677-90, vi.<br />14.Hall MM. Return to Play After Thigh Muscle Injury: Utility of Serial Ultrasound in Guiding Clinical Progression. Curr Sports Med Rep. 2018;17(9):296-301.<br />15.Isern-Kebschull J, Mecho S, Pruna R, Kassarjian A, Valle X, Yanguas X, et al. Sports-related lower limb muscle injuries: pattern recognition approach and MRI review. Insights Imaging. 2020;11(1):108.<br />16.AF Y. Diagnostic Imaging of Muscle Injuries in Sports Medicine: New Concepts and Radiological Approach<br />. Curr Radiol Rep. 2017;5(27).<br />17.Opar DA, Williams MD, Shield AJ. Hamstring strain injuries: factors that lead to injury and re-injury. Sports Med. 2012;42(3):209-26.<br />18.Grassi A, Quaglia A, Canata GL, Zaffagnini S. An update on the grading of muscle injuries: a narrative review from clinical to comprehensive systems. Joints. 2016;4(1):39-46.<br />19.Pollock N, Patel A, Chakraverty J, Suokas A, James SL, Chakraverty R. Time to return to full training is delayed and recurrence rate is higher in intratendinous ('c') acute hamstring injury in elite track and field athletes: clinical application of the British Athletics Muscle Injury Classification. Br J Sports Med. 2016;50(5):305-10.<br />20.Pollock N, James SL, Lee JC, Chakraverty R. British athletics muscle injury classification: a new grading system. Br J Sports Med. 2014;48(18):1347-51.<br />21.Pezzotta G, Querques G, Pecorelli A, Nani R, Sironi S. MRI detection of soleus muscle injuries in professional football players. Skeletal Radiol. 2017;46(11):1513-20.<br />22.Guermazi A, Roemer FW, Robinson...]]></itunes:summary><itunes:duration>415</itunes:duration><itunes:keywords>grading,muscle,soccer,sports,tears</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>DUPUYTREN</title><link>https://www.spreaker.com/episode/dupuytren--42329893</link><description><![CDATA[1- Introdução<br />2- Anatomia da aponeurose palmar<br />3- Fisiopatologia<br />4- Aspectos de imagem<br /><br />Referências:<br />1.Créteur V, Madani A, Gosset N . Ultrasound imaging of Dupuytren’s contracture J Radiol. 2010;91:687-91<br />2.Morris G, Jacobson JA, Kalume Brigido M, et al. Ultrasound Features of Palmar Fibromatosis or Dupuytren Contracture. J Ultrasound Med. 2019;38(2):387-92.<br />3.Grazina R, Teixeira S, Ramos R et al. Dupuytren’s disease: where do we stand? EFORT Open Rev. 2019;4:63-9.<br />4.Balaban M, Cilengir AH, Idilman IS. Evaluation of Tendon Disorders With Ultrasonography and Elastography. J Ultrasound Med. 2020.<br />5.Rubin D. Dupuytren’s Disease. 2020. Consultado em 4 de dezembro de 2020. Disponível em:  <a href="https://radsource.us/dupuytrens-disease/#" rel="noopener">https://radsource.us/dupuytrens-disease/#</a>:~:text=Dupuytren's%20disease%20is%20an%20idiopathic,fascial%20elements%20or%20de%20novo.<br />6.Murphey MD, Ruble CM, Tyszko SM, et al. From the archives of the AFIP: musculoskeletal fibromatoses: radiologic-pathologic correlation. Radiographics. 2009;29(7):2143-73.<br />7.Robbin MR, Murphey MD, Temple HT, et al. Imaging of musculoskeletal fibromatosis. Radiographics. 2001;21(3):585-600.<br />8.Ritter MA. The Anatomy and Function of the Palmar Fascia. The Hand. 1973;5(3).<br />9.Holland AJ, McGrouther DA. Dupuytren's disease and the relationship between the transverse and longitudinal fibers of the palmar fascia: a dissection study. Clin Anat. 1997;10(2):97-103.<br />10.Molenkamp S, Broekstra DC, Werker PMN. Echogenicity of Palmar Dupuytren's Nodules Is Not a Predictor of Disease Progression in Terms of Increase in Nodule Size. Plast Reconstr Surg. 2019;143(3):814-20.<br />11.Uehara K, Miura T, Morizaki Y, et al. Ultrasonographic evaluation of displaced neurovascular bundle in Dupuytren disease. J Hand Surg Am. 2013;38(1):23-8.<br />12.Dinauer PA, Brixey CJ, Moncur JT, et al. Pathologic and MR imaging features of benign fibrous soft-tissue tumors in adults. Radiographics. 2007;27(1):173-87.<br />13.Molenkamp S, van Straalen RJM, Werker PMN, et al. Imaging for Dupuytren disease: a systematic review of the literature. BMC Musculoskelet Disord. 2019;20(1):224.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42329893</guid><pubDate>Sat, 05 Dec 2020 11:03:35 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42329893/dupuytren.mp3" length="6999561" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>1- Introdução
2- Anatomia da aponeurose palmar
3- Fisiopatologia
4- Aspectos de imagem

Referências:
1.Créteur V, Madani A, Gosset N . Ultrasound imaging of Dupuytren’s contracture J Radiol. 2010;91:687-91
2.Morris G, Jacobson JA, Kalume Brigido M, et...</itunes:subtitle><itunes:summary><![CDATA[1- Introdução<br />2- Anatomia da aponeurose palmar<br />3- Fisiopatologia<br />4- Aspectos de imagem<br /><br />Referências:<br />1.Créteur V, Madani A, Gosset N . Ultrasound imaging of Dupuytren’s contracture J Radiol. 2010;91:687-91<br />2.Morris G, Jacobson JA, Kalume Brigido M, et al. Ultrasound Features of Palmar Fibromatosis or Dupuytren Contracture. J Ultrasound Med. 2019;38(2):387-92.<br />3.Grazina R, Teixeira S, Ramos R et al. Dupuytren’s disease: where do we stand? EFORT Open Rev. 2019;4:63-9.<br />4.Balaban M, Cilengir AH, Idilman IS. Evaluation of Tendon Disorders With Ultrasonography and Elastography. J Ultrasound Med. 2020.<br />5.Rubin D. Dupuytren’s Disease. 2020. Consultado em 4 de dezembro de 2020. Disponível em:  <a href="https://radsource.us/dupuytrens-disease/#" rel="noopener">https://radsource.us/dupuytrens-disease/#</a>:~:text=Dupuytren's%20disease%20is%20an%20idiopathic,fascial%20elements%20or%20de%20novo.<br />6.Murphey MD, Ruble CM, Tyszko SM, et al. From the archives of the AFIP: musculoskeletal fibromatoses: radiologic-pathologic correlation. Radiographics. 2009;29(7):2143-73.<br />7.Robbin MR, Murphey MD, Temple HT, et al. Imaging of musculoskeletal fibromatosis. Radiographics. 2001;21(3):585-600.<br />8.Ritter MA. The Anatomy and Function of the Palmar Fascia. The Hand. 1973;5(3).<br />9.Holland AJ, McGrouther DA. Dupuytren's disease and the relationship between the transverse and longitudinal fibers of the palmar fascia: a dissection study. Clin Anat. 1997;10(2):97-103.<br />10.Molenkamp S, Broekstra DC, Werker PMN. Echogenicity of Palmar Dupuytren's Nodules Is Not a Predictor of Disease Progression in Terms of Increase in Nodule Size. Plast Reconstr Surg. 2019;143(3):814-20.<br />11.Uehara K, Miura T, Morizaki Y, et al. Ultrasonographic evaluation of displaced neurovascular bundle in Dupuytren disease. J Hand Surg Am. 2013;38(1):23-8.<br />12.Dinauer PA, Brixey CJ, Moncur JT, et al. Pathologic and MR imaging features of benign fibrous soft-tissue tumors in adults. Radiographics. 2007;27(1):173-87.<br />13.Molenkamp S, van Straalen RJM, Werker PMN, et al. Imaging for Dupuytren disease: a systematic review of the literature. BMC Musculoskelet Disord. 2019;20(1):224.]]></itunes:summary><itunes:duration>438</itunes:duration><itunes:keywords>dupuytren</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/9d57ba217efc6cc2de95c64e1b4a6450.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>TENDINOPATIAS PARTE III - TEORIA DO ICEBERG E EXAMES DE IMAGEM</title><link>https://www.spreaker.com/episode/tendinopatias-parte-iii-teoria-do-iceberg-e-exames-de-imagem--42230543</link><description><![CDATA[Referências<br />1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.<br />2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science: Development, repair, regeneration, and healing. J Orthop Res. 2015;33(6):780-4.<br />3.Ryan M, Bisset L, Newsham-West R. Should We Care About Tendon Structure? The Disconnect Between Structure and Symptoms in Tendinopathy. J Orthop Sports Phys Ther. 2015;45(11):823-5.<br />4.Scott A, Backman LJ, Speed C. Tendinopathy: Update on Pathophysiology. J Orthop Sports Phys Ther. 2015;45(11):833-41.<br />5.Abate M, Silbernagel KG, Siljeholm C, Di Iorio A, De Amicis D, Salini V, et al. Pathogenesis of tendinopathies: inflammation or degeneration? Arthritis Res Ther. 2009;11(3):235.<br />6.Tran PHT, Malmgaard-Clausen NM, Puggaard RS, Svensson RB, Nybing JD, Hansen P, et al. Early development of tendinopathy in humans: Sequence of pathological changes in structure and tissue turnover signaling. FASEB J. 2020;34(1):776-88.<br />7.Millar NL, Murrell GA, McInnes IB. Inflammatory mechanisms in tendinopathy - towards translation. Nat Rev Rheumatol. 2017;13(2):110-22.<br />8.Speed C. Inflammation in Tendon Disorders. Adv Exp Med Biol. 2016;920:209-20.<br />9.Abat F, Alfredson H, Cucchiarini M, Madry H, Marmotti A, Mouton C, et al. Current trends in tendinopathy: consensus of the ESSKA basic science committee. Part I: biology, biomechanics, anatomy and an exercise-based approach. J Exp Orthop. 2017;4(1):18.<br />10.Cook JL, Purdam CR. Is tendon pathology a continuum? A pathology model to explain the clinical presentation of load-induced tendinopathy. Br J Sports Med. 2009;43(6):409-16.<br />11.D'Addona A, Maffulli N, Formisano S, Rosa D. Inflammation in tendinopathy. Surgeon. 2017;15(5):297-302.<br />12.Cook JL, Rio E, Purdam CR, Docking SI. Revisiting the continuum model of tendon pathology: what is its merit in clinical practice and research? Br J Sports Med. 2016;50(19):1187-91.<br />13.Rabello LM, van den Akker-Scheek I, Kuipers IF, Diercks RL, Brink MS, Zwerver J. Bilateral changes in tendon structure of patients diagnosed with unilateral insertional or midportion achilles tendinopathy or patellar tendinopathy. Knee Surg Sports Traumatol Arthrosc. 2020;28(5):1631-8.<br />14.Docking SI, Ooi CC, Connell D. Tendinopathy: Is Imaging Telling Us the Entire Story? J Orthop Sports Phys Ther. 2015;45(11):842-52.<br />15.Matthews W, Ellis R, Furness JW, Rathbone E, Hing W. Staging achilles tendinopathy using ultrasound imaging: the development and investigation of a new ultrasound imaging criteria based on the continuum model of tendon pathology. BMJ Open Sport Exerc Med. 2020;6(1):e000699.<br />16.Splittgerber LE, Ihm JM. Significance of Asymptomatic Tendon Pathology in Athletes. Curr Sports Med Rep. 2019;18(6):192-200.<br />17.Comin J, Cook JL, Malliaras P, McCormack M, Calleja M, Clarke A, et al. The prevalence and clinical significance of sonographic tendon abnormalities in asymptomatic ballet dancers: a 24-month longitudinal study. Br J Sports Med. 2013;47(2):89-92.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42230543</guid><pubDate>Sun, 29 Nov 2020 22:30:13 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42230543/tendinopatias_teoria_do_iceberg_e_exames_de_imagem.mp3" length="3546382" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.
2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science:...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.<br />2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science: Development, repair, regeneration, and healing. J Orthop Res. 2015;33(6):780-4.<br />3.Ryan M, Bisset L, Newsham-West R. Should We Care About Tendon Structure? The Disconnect Between Structure and Symptoms in Tendinopathy. J Orthop Sports Phys Ther. 2015;45(11):823-5.<br />4.Scott A, Backman LJ, Speed C. Tendinopathy: Update on Pathophysiology. J Orthop Sports Phys Ther. 2015;45(11):833-41.<br />5.Abate M, Silbernagel KG, Siljeholm C, Di Iorio A, De Amicis D, Salini V, et al. Pathogenesis of tendinopathies: inflammation or degeneration? Arthritis Res Ther. 2009;11(3):235.<br />6.Tran PHT, Malmgaard-Clausen NM, Puggaard RS, Svensson RB, Nybing JD, Hansen P, et al. Early development of tendinopathy in humans: Sequence of pathological changes in structure and tissue turnover signaling. FASEB J. 2020;34(1):776-88.<br />7.Millar NL, Murrell GA, McInnes IB. Inflammatory mechanisms in tendinopathy - towards translation. Nat Rev Rheumatol. 2017;13(2):110-22.<br />8.Speed C. Inflammation in Tendon Disorders. Adv Exp Med Biol. 2016;920:209-20.<br />9.Abat F, Alfredson H, Cucchiarini M, Madry H, Marmotti A, Mouton C, et al. Current trends in tendinopathy: consensus of the ESSKA basic science committee. Part I: biology, biomechanics, anatomy and an exercise-based approach. J Exp Orthop. 2017;4(1):18.<br />10.Cook JL, Purdam CR. Is tendon pathology a continuum? A pathology model to explain the clinical presentation of load-induced tendinopathy. Br J Sports Med. 2009;43(6):409-16.<br />11.D'Addona A, Maffulli N, Formisano S, Rosa D. Inflammation in tendinopathy. Surgeon. 2017;15(5):297-302.<br />12.Cook JL, Rio E, Purdam CR, Docking SI. Revisiting the continuum model of tendon pathology: what is its merit in clinical practice and research? Br J Sports Med. 2016;50(19):1187-91.<br />13.Rabello LM, van den Akker-Scheek I, Kuipers IF, Diercks RL, Brink MS, Zwerver J. Bilateral changes in tendon structure of patients diagnosed with unilateral insertional or midportion achilles tendinopathy or patellar tendinopathy. Knee Surg Sports Traumatol Arthrosc. 2020;28(5):1631-8.<br />14.Docking SI, Ooi CC, Connell D. Tendinopathy: Is Imaging Telling Us the Entire Story? J Orthop Sports Phys Ther. 2015;45(11):842-52.<br />15.Matthews W, Ellis R, Furness JW, Rathbone E, Hing W. Staging achilles tendinopathy using ultrasound imaging: the development and investigation of a new ultrasound imaging criteria based on the continuum model of tendon pathology. BMJ Open Sport Exerc Med. 2020;6(1):e000699.<br />16.Splittgerber LE, Ihm JM. Significance of Asymptomatic Tendon Pathology in Athletes. Curr Sports Med Rep. 2019;18(6):192-200.<br />17.Comin J, Cook JL, Malliaras P, McCormack M, Calleja M, Clarke A, et al. The prevalence and clinical significance of sonographic tendon abnormalities in asymptomatic ballet dancers: a 24-month longitudinal study. Br J Sports Med. 2013;47(2):89-92.]]></itunes:summary><itunes:duration>222</itunes:duration><itunes:keywords>tendinoatias,tendinose</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/4e9e6179c396b0dcb2e4315282bef5de.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>TENDINOPATIAS PARTE II - TEORIA DO CONTINUUM</title><link>https://www.spreaker.com/episode/tendinopatias-parte-ii-teoria-do-continuum--42230485</link><description><![CDATA[Referências<br />1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.<br />2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science: Development, repair, regeneration, and healing. J Orthop Res. 2015;33(6):780-4.<br />3.Ryan M, Bisset L, Newsham-West R. Should We Care About Tendon Structure? The Disconnect Between Structure and Symptoms in Tendinopathy. J Orthop Sports Phys Ther. 2015;45(11):823-5.<br />4.Scott A, Backman LJ, Speed C. Tendinopathy: Update on Pathophysiology. J Orthop Sports Phys Ther. 2015;45(11):833-41.<br />5.Abate M, Silbernagel KG, Siljeholm C, Di Iorio A, De Amicis D, Salini V, et al. Pathogenesis of tendinopathies: inflammation or degeneration? Arthritis Res Ther. 2009;11(3):235.<br />6.Tran PHT, Malmgaard-Clausen NM, Puggaard RS, Svensson RB, Nybing JD, Hansen P, et al. Early development of tendinopathy in humans: Sequence of pathological changes in structure and tissue turnover signaling. FASEB J. 2020;34(1):776-88.<br />7.Millar NL, Murrell GA, McInnes IB. Inflammatory mechanisms in tendinopathy - towards translation. Nat Rev Rheumatol. 2017;13(2):110-22.<br />8.Speed C. Inflammation in Tendon Disorders. Adv Exp Med Biol. 2016;920:209-20.<br />9.Abat F, Alfredson H, Cucchiarini M, Madry H, Marmotti A, Mouton C, et al. Current trends in tendinopathy: consensus of the ESSKA basic science committee. Part I: biology, biomechanics, anatomy and an exercise-based approach. J Exp Orthop. 2017;4(1):18.<br />10.Cook JL, Purdam CR. Is tendon pathology a continuum? A pathology model to explain the clinical presentation of load-induced tendinopathy. Br J Sports Med. 2009;43(6):409-16.<br />11.D'Addona A, Maffulli N, Formisano S, Rosa D. Inflammation in tendinopathy. Surgeon. 2017;15(5):297-302.<br />12.Cook JL, Rio E, Purdam CR, Docking SI. Revisiting the continuum model of tendon pathology: what is its merit in clinical practice and research? Br J Sports Med. 2016;50(19):1187-91.<br />13.Rabello LM, van den Akker-Scheek I, Kuipers IF, Diercks RL, Brink MS, Zwerver J. Bilateral changes in tendon structure of patients diagnosed with unilateral insertional or midportion achilles tendinopathy or patellar tendinopathy. Knee Surg Sports Traumatol Arthrosc. 2020;28(5):1631-8.<br />14.Docking SI, Ooi CC, Connell D. Tendinopathy: Is Imaging Telling Us the Entire Story? J Orthop Sports Phys Ther. 2015;45(11):842-52.<br />15.Matthews W, Ellis R, Furness JW, Rathbone E, Hing W. Staging achilles tendinopathy using ultrasound imaging: the development and investigation of a new ultrasound imaging criteria based on the continuum model of tendon pathology. BMJ Open Sport Exerc Med. 2020;6(1):e000699.<br />16.Splittgerber LE, Ihm JM. Significance of Asymptomatic Tendon Pathology in Athletes. Curr Sports Med Rep. 2019;18(6):192-200.<br />17.Comin J, Cook JL, Malliaras P, McCormack M, Calleja M, Clarke A, et al. The prevalence and clinical significance of sonographic tendon abnormalities in asymptomatic ballet dancers: a 24-month longitudinal study. Br J Sports Med. 2013;47(2):89-92.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42230485</guid><pubDate>Sun, 29 Nov 2020 22:23:32 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42230485/tendinopatias_parte_ii_teoria_do_continuum.mp3" length="3907917" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.
2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science:...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.<br />2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science: Development, repair, regeneration, and healing. J Orthop Res. 2015;33(6):780-4.<br />3.Ryan M, Bisset L, Newsham-West R. Should We Care About Tendon Structure? The Disconnect Between Structure and Symptoms in Tendinopathy. J Orthop Sports Phys Ther. 2015;45(11):823-5.<br />4.Scott A, Backman LJ, Speed C. Tendinopathy: Update on Pathophysiology. J Orthop Sports Phys Ther. 2015;45(11):833-41.<br />5.Abate M, Silbernagel KG, Siljeholm C, Di Iorio A, De Amicis D, Salini V, et al. Pathogenesis of tendinopathies: inflammation or degeneration? Arthritis Res Ther. 2009;11(3):235.<br />6.Tran PHT, Malmgaard-Clausen NM, Puggaard RS, Svensson RB, Nybing JD, Hansen P, et al. Early development of tendinopathy in humans: Sequence of pathological changes in structure and tissue turnover signaling. FASEB J. 2020;34(1):776-88.<br />7.Millar NL, Murrell GA, McInnes IB. Inflammatory mechanisms in tendinopathy - towards translation. Nat Rev Rheumatol. 2017;13(2):110-22.<br />8.Speed C. Inflammation in Tendon Disorders. Adv Exp Med Biol. 2016;920:209-20.<br />9.Abat F, Alfredson H, Cucchiarini M, Madry H, Marmotti A, Mouton C, et al. Current trends in tendinopathy: consensus of the ESSKA basic science committee. Part I: biology, biomechanics, anatomy and an exercise-based approach. J Exp Orthop. 2017;4(1):18.<br />10.Cook JL, Purdam CR. Is tendon pathology a continuum? A pathology model to explain the clinical presentation of load-induced tendinopathy. Br J Sports Med. 2009;43(6):409-16.<br />11.D'Addona A, Maffulli N, Formisano S, Rosa D. Inflammation in tendinopathy. Surgeon. 2017;15(5):297-302.<br />12.Cook JL, Rio E, Purdam CR, Docking SI. Revisiting the continuum model of tendon pathology: what is its merit in clinical practice and research? Br J Sports Med. 2016;50(19):1187-91.<br />13.Rabello LM, van den Akker-Scheek I, Kuipers IF, Diercks RL, Brink MS, Zwerver J. Bilateral changes in tendon structure of patients diagnosed with unilateral insertional or midportion achilles tendinopathy or patellar tendinopathy. Knee Surg Sports Traumatol Arthrosc. 2020;28(5):1631-8.<br />14.Docking SI, Ooi CC, Connell D. Tendinopathy: Is Imaging Telling Us the Entire Story? J Orthop Sports Phys Ther. 2015;45(11):842-52.<br />15.Matthews W, Ellis R, Furness JW, Rathbone E, Hing W. Staging achilles tendinopathy using ultrasound imaging: the development and investigation of a new ultrasound imaging criteria based on the continuum model of tendon pathology. BMJ Open Sport Exerc Med. 2020;6(1):e000699.<br />16.Splittgerber LE, Ihm JM. Significance of Asymptomatic Tendon Pathology in Athletes. Curr Sports Med Rep. 2019;18(6):192-200.<br />17.Comin J, Cook JL, Malliaras P, McCormack M, Calleja M, Clarke A, et al. The prevalence and clinical significance of sonographic tendon abnormalities in asymptomatic ballet dancers: a 24-month longitudinal study. Br J Sports Med. 2013;47(2):89-92.]]></itunes:summary><itunes:duration>245</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/4e9e6179c396b0dcb2e4315282bef5de.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>TENDINOPATIAS PARTE I - INTRODUÇÃO</title><link>https://www.spreaker.com/episode/tendinopatias-parte-i-introducao--42230421</link><description><![CDATA[Referências<br />1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.<br />2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science: Development, repair, regeneration, and healing. J Orthop Res. 2015;33(6):780-4.<br />3.Ryan M, Bisset L, Newsham-West R. Should We Care About Tendon Structure? The Disconnect Between Structure and Symptoms in Tendinopathy. J Orthop Sports Phys Ther. 2015;45(11):823-5.<br />4.Scott A, Backman LJ, Speed C. Tendinopathy: Update on Pathophysiology. J Orthop Sports Phys Ther. 2015;45(11):833-41.<br />5.Abate M, Silbernagel KG, Siljeholm C, Di Iorio A, De Amicis D, Salini V, et al. Pathogenesis of tendinopathies: inflammation or degeneration? Arthritis Res Ther. 2009;11(3):235.<br />6.Tran PHT, Malmgaard-Clausen NM, Puggaard RS, Svensson RB, Nybing JD, Hansen P, et al. Early development of tendinopathy in humans: Sequence of pathological changes in structure and tissue turnover signaling. FASEB J. 2020;34(1):776-88.<br />7.Millar NL, Murrell GA, McInnes IB. Inflammatory mechanisms in tendinopathy - towards translation. Nat Rev Rheumatol. 2017;13(2):110-22.<br />8.Speed C. Inflammation in Tendon Disorders. Adv Exp Med Biol. 2016;920:209-20.<br />9.Abat F, Alfredson H, Cucchiarini M, Madry H, Marmotti A, Mouton C, et al. Current trends in tendinopathy: consensus of the ESSKA basic science committee. Part I: biology, biomechanics, anatomy and an exercise-based approach. J Exp Orthop. 2017;4(1):18.<br />10.Cook JL, Purdam CR. Is tendon pathology a continuum? A pathology model to explain the clinical presentation of load-induced tendinopathy. Br J Sports Med. 2009;43(6):409-16.<br />11.D'Addona A, Maffulli N, Formisano S, Rosa D. Inflammation in tendinopathy. Surgeon. 2017;15(5):297-302.<br />12.Cook JL, Rio E, Purdam CR, Docking SI. Revisiting the continuum model of tendon pathology: what is its merit in clinical practice and research? Br J Sports Med. 2016;50(19):1187-91.<br />13.Rabello LM, van den Akker-Scheek I, Kuipers IF, Diercks RL, Brink MS, Zwerver J. Bilateral changes in tendon structure of patients diagnosed with unilateral insertional or midportion achilles tendinopathy or patellar tendinopathy. Knee Surg Sports Traumatol Arthrosc. 2020;28(5):1631-8.<br />14.Docking SI, Ooi CC, Connell D. Tendinopathy: Is Imaging Telling Us the Entire Story? J Orthop Sports Phys Ther. 2015;45(11):842-52.<br />15.Matthews W, Ellis R, Furness JW, Rathbone E, Hing W. Staging achilles tendinopathy using ultrasound imaging: the development and investigation of a new ultrasound imaging criteria based on the continuum model of tendon pathology. BMJ Open Sport Exerc Med. 2020;6(1):e000699.<br />16.Splittgerber LE, Ihm JM. Significance of Asymptomatic Tendon Pathology in Athletes. Curr Sports Med Rep. 2019;18(6):192-200.<br />17.Comin J, Cook JL, Malliaras P, McCormack M, Calleja M, Clarke A, et al. The prevalence and clinical significance of sonographic tendon abnormalities in asymptomatic ballet dancers: a 24-month longitudinal study. Br J Sports Med. 2013;47(2):89-92.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42230421</guid><pubDate>Sun, 29 Nov 2020 22:16:42 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42230421/tendinopatias_parte_i_introducao.mp3" length="6569481" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.
2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science:...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Khan KM, Cook JL, Bonar F, Harcourt P, Astrom M. Histopathology of common tendinopathies. Update and implications for clinical management. Sports Med. 1999;27(6):393-408.<br />2.Andarawis-Puri N, Flatow EL, Soslowsky LJ. Tendon basic science: Development, repair, regeneration, and healing. J Orthop Res. 2015;33(6):780-4.<br />3.Ryan M, Bisset L, Newsham-West R. Should We Care About Tendon Structure? The Disconnect Between Structure and Symptoms in Tendinopathy. J Orthop Sports Phys Ther. 2015;45(11):823-5.<br />4.Scott A, Backman LJ, Speed C. Tendinopathy: Update on Pathophysiology. J Orthop Sports Phys Ther. 2015;45(11):833-41.<br />5.Abate M, Silbernagel KG, Siljeholm C, Di Iorio A, De Amicis D, Salini V, et al. Pathogenesis of tendinopathies: inflammation or degeneration? Arthritis Res Ther. 2009;11(3):235.<br />6.Tran PHT, Malmgaard-Clausen NM, Puggaard RS, Svensson RB, Nybing JD, Hansen P, et al. Early development of tendinopathy in humans: Sequence of pathological changes in structure and tissue turnover signaling. FASEB J. 2020;34(1):776-88.<br />7.Millar NL, Murrell GA, McInnes IB. Inflammatory mechanisms in tendinopathy - towards translation. Nat Rev Rheumatol. 2017;13(2):110-22.<br />8.Speed C. Inflammation in Tendon Disorders. Adv Exp Med Biol. 2016;920:209-20.<br />9.Abat F, Alfredson H, Cucchiarini M, Madry H, Marmotti A, Mouton C, et al. Current trends in tendinopathy: consensus of the ESSKA basic science committee. Part I: biology, biomechanics, anatomy and an exercise-based approach. J Exp Orthop. 2017;4(1):18.<br />10.Cook JL, Purdam CR. Is tendon pathology a continuum? A pathology model to explain the clinical presentation of load-induced tendinopathy. Br J Sports Med. 2009;43(6):409-16.<br />11.D'Addona A, Maffulli N, Formisano S, Rosa D. Inflammation in tendinopathy. Surgeon. 2017;15(5):297-302.<br />12.Cook JL, Rio E, Purdam CR, Docking SI. Revisiting the continuum model of tendon pathology: what is its merit in clinical practice and research? Br J Sports Med. 2016;50(19):1187-91.<br />13.Rabello LM, van den Akker-Scheek I, Kuipers IF, Diercks RL, Brink MS, Zwerver J. Bilateral changes in tendon structure of patients diagnosed with unilateral insertional or midportion achilles tendinopathy or patellar tendinopathy. Knee Surg Sports Traumatol Arthrosc. 2020;28(5):1631-8.<br />14.Docking SI, Ooi CC, Connell D. Tendinopathy: Is Imaging Telling Us the Entire Story? J Orthop Sports Phys Ther. 2015;45(11):842-52.<br />15.Matthews W, Ellis R, Furness JW, Rathbone E, Hing W. Staging achilles tendinopathy using ultrasound imaging: the development and investigation of a new ultrasound imaging criteria based on the continuum model of tendon pathology. BMJ Open Sport Exerc Med. 2020;6(1):e000699.<br />16.Splittgerber LE, Ihm JM. Significance of Asymptomatic Tendon Pathology in Athletes. Curr Sports Med Rep. 2019;18(6):192-200.<br />17.Comin J, Cook JL, Malliaras P, McCormack M, Calleja M, Clarke A, et al. The prevalence and clinical significance of sonographic tendon abnormalities in asymptomatic ballet dancers: a 24-month longitudinal study. Br J Sports Med. 2013;47(2):89-92.]]></itunes:summary><itunes:duration>411</itunes:duration><itunes:keywords>tendinopatias,tendinose</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/4e9e6179c396b0dcb2e4315282bef5de.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>OSTEOMIELITES</title><link>https://www.spreaker.com/episode/osteomielites--42171989</link><description><![CDATA[Atualização de um podcast sobre "Osteomielites Agudas" publicaod em 6/7/2020]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42171989</guid><pubDate>Thu, 26 Nov 2020 01:46:43 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42171989/osteomielites.mp3" length="9637301" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Atualização de um podcast sobre "Osteomielites Agudas" publicaod em 6/7/2020</itunes:subtitle><itunes:summary><![CDATA[Atualização de um podcast sobre "Osteomielites Agudas" publicaod em 6/7/2020]]></itunes:summary><itunes:duration>603</itunes:duration><itunes:keywords>osteomielite</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/fd9b512250d4b3193e9c278aed9b5955.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>FRATURAS</title><link>https://www.spreaker.com/episode/fraturas--42125414</link><description><![CDATA[Referências<br />1.Resnick D, Kransdorf MJ. Physical Injury: Concepts and Terminology. In: Bone and Joint Imaging. Terceira edição. Philadelphia. Elsevier Saunders. 2005.<br />2.Greenspan A, Beltran J. Radiologic Evaluation of Trauma. In: Orthopedic Imaging A Practical Approach. Sexta edição. New York. Lippincott Williams & Wilkins. 2014.<br />3.Narayanasamy S, Krishna S, Sathiadoss P, Althobaity W, Koujok K, Sheikh AM. Radiographic Review of Avulsion Fractures RadioGraphics Fundamentals | Online Presentation. Radiographics. 2018;38(5):1496-7.<br />4.Thompson JC. Ciência Básica. In: Netter Atlas de Anatomia Ortopédica. Segunda edição. Rio de Janeiro. Elsevier Editora Ltda. 2012.<br />5.Marshall RA, Mandell JC, Weaver MJ, Ferrone M, Sodickson A, Khurana B. Imaging Features and Management of Stress, Atypical, and Pathologic Fractures. Radiographics. 2018;38(7):2173-92.<br />6.Madry H, van Dijk CN, Mueller-Gerbl M. The basic science of the subchondral bone. Knee Surg Sports Traumatol Arthrosc. 2010;18(4):419-33.<br />7.Viana SL, Machado BB, Mendlovitz PS. MRI of subchondral fractures: a review. Skeletal Radiol. 2014;43(11):1515-27.<br />8.Gorbachova T, Melenevsky Y, Cohen M, Cerniglia BW. Osteochondral Lesions of the Knee: Differentiating the Most Common Entities at MRI. Radiographics. 2018;38(5):1478-95.<br />9.Gosangi B, Mandell JC, Weaver MJ, Uyeda JW, Smith SE, Sodickson AD, et al. Bone Marrow Edema at Dual-Energy CT: A Game Changer in the Emergency Department. Radiographics. 2020;40(3):859-74.<br />10.Starr AM, Wessely MA, Albastaki U, Pierre-Jerome C, Kettner NW. Bone marrow edema: pathophysiology, differential diagnosis, and imaging. Acta Radiol. 2008;49(7):771-86.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42125414</guid><pubDate>Mon, 23 Nov 2020 20:08:56 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42125414/fraturas.mp3" length="12469811" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Resnick D, Kransdorf MJ. Physical Injury: Concepts and Terminology. In: Bone and Joint Imaging. Terceira edição. Philadelphia. Elsevier Saunders. 2005.
2.Greenspan A, Beltran J. Radiologic Evaluation of Trauma. In: Orthopedic Imaging A...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Resnick D, Kransdorf MJ. Physical Injury: Concepts and Terminology. In: Bone and Joint Imaging. Terceira edição. Philadelphia. Elsevier Saunders. 2005.<br />2.Greenspan A, Beltran J. Radiologic Evaluation of Trauma. In: Orthopedic Imaging A Practical Approach. Sexta edição. New York. Lippincott Williams & Wilkins. 2014.<br />3.Narayanasamy S, Krishna S, Sathiadoss P, Althobaity W, Koujok K, Sheikh AM. Radiographic Review of Avulsion Fractures RadioGraphics Fundamentals | Online Presentation. Radiographics. 2018;38(5):1496-7.<br />4.Thompson JC. Ciência Básica. In: Netter Atlas de Anatomia Ortopédica. Segunda edição. Rio de Janeiro. Elsevier Editora Ltda. 2012.<br />5.Marshall RA, Mandell JC, Weaver MJ, Ferrone M, Sodickson A, Khurana B. Imaging Features and Management of Stress, Atypical, and Pathologic Fractures. Radiographics. 2018;38(7):2173-92.<br />6.Madry H, van Dijk CN, Mueller-Gerbl M. The basic science of the subchondral bone. Knee Surg Sports Traumatol Arthrosc. 2010;18(4):419-33.<br />7.Viana SL, Machado BB, Mendlovitz PS. MRI of subchondral fractures: a review. Skeletal Radiol. 2014;43(11):1515-27.<br />8.Gorbachova T, Melenevsky Y, Cohen M, Cerniglia BW. Osteochondral Lesions of the Knee: Differentiating the Most Common Entities at MRI. Radiographics. 2018;38(5):1478-95.<br />9.Gosangi B, Mandell JC, Weaver MJ, Uyeda JW, Smith SE, Sodickson AD, et al. Bone Marrow Edema at Dual-Energy CT: A Game Changer in the Emergency Department. Radiographics. 2020;40(3):859-74.<br />10.Starr AM, Wessely MA, Albastaki U, Pierre-Jerome C, Kettner NW. Bone marrow edema: pathophysiology, differential diagnosis, and imaging. Acta Radiol. 2008;49(7):771-86.]]></itunes:summary><itunes:duration>780</itunes:duration><itunes:keywords>fraturas</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Artrite Reumatoide - Manifestações extra-articulares, padrões de acometimento, clasificação e emprego dos métodos de imagem</title><link>https://www.spreaker.com/episode/artrite-reumatoide-manifestacoes-extra-articulares-padroes-de-acometimento-clasificacao-e-emprego-dos-metodos-de-imagem--42023553</link><description><![CDATA[Referências<br />1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.<br />2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus MRI. AJR Am J Roentgenol. 2011;197(3):541-6.<br />3.Scott DL, Wolfe F, Huizinga TW. Rheumatoid arthritis. Lancet. 2010;376(9746):1094-108.<br />4.Ngian GS. Rheumatoid arthritis. Aust Fam Physician. 2010;39(9):626-8.<br />5.Sommer OJ, Kladosek A, Weiler V, Czembirek H, Boeck M, Stiskal M. Rheumatoid arthritis: a practical guide to state-of-the-art imaging, image interpretation, and clinical implications. Radiographics. 2005;25(2):381-98.<br />6.Chang EY, Chen KC, Huang BK, Kavanaugh A. Adult Inflammatory Arthritides: What the Radiologist Should Know. Radiographics. 2016;36(6):1849-70.<br />7.Sparks JA. Rheumatoid Arthritis. Ann Intern Med. 2019;170(1):ITC1-ITC16.<br />8.Rubin DA. MRI and ultrasound of the hands and wrists in rheumatoid arthritis. I. Imaging findings. Skeletal Radiol. 2019;48(5):677-95.<br />9.Shiraishi M, Fukuda T, Igarashi T, Tokashiki T, Kayama R, Ojiri H. Differentiating Rheumatoid and Psoriatic Arthritis of the Hand: Multimodality Imaging Characteristics. Radiographics. 2020;40(5):1339-54.<br />10.Llopis E, Kroon HM, Acosta J, Bloem JL. Conventional Radiology in Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):917-41.<br />11.Smolen JS, Aletaha D, McInnes IB. Rheumatoid arthritis. Lancet. 2016;388(10055):2023-38.<br />12.Boutry N, Morel M, Flipo RM, Demondion X, Cotten A. Early rheumatoid arthritis: a review of MRI and sonographic findings. AJR Am J Roentgenol. 2007;189(6):1502-9.<br />13.Teh J, Ostergaard M. What the Rheumatologist Is Looking for and What the Radiologist Should Know in Imaging for Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):905-16.<br />14.Ostergaard M, Boesen M. Imaging in rheumatoid arthritis: the role of magnetic resonance imaging and computed tomography. Radiol Med. 2019;124(11):1128-41.<br />15.Rubin DA. MR and ultrasound of the hands and wrists in rheumatoid arthritis. Part II. Added clinical value. Skeletal Radiol. 2019;48(6):837-57.<br />16.Jacobson JA, Girish G, Jiang Y, Resnick D. Radiographic evaluation of arthritis: inflammatory conditions. Radiology. 2008;248(2):378-89.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42023553</guid><pubDate>Tue, 17 Nov 2020 18:08:50 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42023553/artrite_reumatoide_manifestacoes_extra_articulares_padroes_de_acometimento_clasificacao_e_emprego_dos_metodos_de_imagem.mp3" length="5206516" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.
2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.<br />2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus MRI. AJR Am J Roentgenol. 2011;197(3):541-6.<br />3.Scott DL, Wolfe F, Huizinga TW. Rheumatoid arthritis. Lancet. 2010;376(9746):1094-108.<br />4.Ngian GS. Rheumatoid arthritis. Aust Fam Physician. 2010;39(9):626-8.<br />5.Sommer OJ, Kladosek A, Weiler V, Czembirek H, Boeck M, Stiskal M. Rheumatoid arthritis: a practical guide to state-of-the-art imaging, image interpretation, and clinical implications. Radiographics. 2005;25(2):381-98.<br />6.Chang EY, Chen KC, Huang BK, Kavanaugh A. Adult Inflammatory Arthritides: What the Radiologist Should Know. Radiographics. 2016;36(6):1849-70.<br />7.Sparks JA. Rheumatoid Arthritis. Ann Intern Med. 2019;170(1):ITC1-ITC16.<br />8.Rubin DA. MRI and ultrasound of the hands and wrists in rheumatoid arthritis. I. Imaging findings. Skeletal Radiol. 2019;48(5):677-95.<br />9.Shiraishi M, Fukuda T, Igarashi T, Tokashiki T, Kayama R, Ojiri H. Differentiating Rheumatoid and Psoriatic Arthritis of the Hand: Multimodality Imaging Characteristics. Radiographics. 2020;40(5):1339-54.<br />10.Llopis E, Kroon HM, Acosta J, Bloem JL. Conventional Radiology in Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):917-41.<br />11.Smolen JS, Aletaha D, McInnes IB. Rheumatoid arthritis. Lancet. 2016;388(10055):2023-38.<br />12.Boutry N, Morel M, Flipo RM, Demondion X, Cotten A. Early rheumatoid arthritis: a review of MRI and sonographic findings. AJR Am J Roentgenol. 2007;189(6):1502-9.<br />13.Teh J, Ostergaard M. What the Rheumatologist Is Looking for and What the Radiologist Should Know in Imaging for Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):905-16.<br />14.Ostergaard M, Boesen M. Imaging in rheumatoid arthritis: the role of magnetic resonance imaging and computed tomography. Radiol Med. 2019;124(11):1128-41.<br />15.Rubin DA. MR and ultrasound of the hands and wrists in rheumatoid arthritis. Part II. Added clinical value. Skeletal Radiol. 2019;48(6):837-57.<br />16.Jacobson JA, Girish G, Jiang Y, Resnick D. Radiographic evaluation of arthritis: inflammatory conditions. Radiology. 2008;248(2):378-89.]]></itunes:summary><itunes:duration>326</itunes:duration><itunes:keywords>artrite,ressonância,ultrassonografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Artrite Reumatoide - Manifestações Articulares</title><link>https://www.spreaker.com/episode/artrite-reumatoide-manifestacoes-articulares--42023438</link><description><![CDATA[Referências<br />1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.<br />2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus MRI. AJR Am J Roentgenol. 2011;197(3):541-6.<br />3.Scott DL, Wolfe F, Huizinga TW. Rheumatoid arthritis. Lancet. 2010;376(9746):1094-108.<br />4.Ngian GS. Rheumatoid arthritis. Aust Fam Physician. 2010;39(9):626-8.<br />5.Sommer OJ, Kladosek A, Weiler V, Czembirek H, Boeck M, Stiskal M. Rheumatoid arthritis: a practical guide to state-of-the-art imaging, image interpretation, and clinical implications. Radiographics. 2005;25(2):381-98.<br />6.Chang EY, Chen KC, Huang BK, Kavanaugh A. Adult Inflammatory Arthritides: What the Radiologist Should Know. Radiographics. 2016;36(6):1849-70.<br />7.Sparks JA. Rheumatoid Arthritis. Ann Intern Med. 2019;170(1):ITC1-ITC16.<br />8.Rubin DA. MRI and ultrasound of the hands and wrists in rheumatoid arthritis. I. Imaging findings. Skeletal Radiol. 2019;48(5):677-95.<br />9.Shiraishi M, Fukuda T, Igarashi T, Tokashiki T, Kayama R, Ojiri H. Differentiating Rheumatoid and Psoriatic Arthritis of the Hand: Multimodality Imaging Characteristics. Radiographics. 2020;40(5):1339-54.<br />10.Llopis E, Kroon HM, Acosta J, Bloem JL. Conventional Radiology in Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):917-41.<br />11.Smolen JS, Aletaha D, McInnes IB. Rheumatoid arthritis. Lancet. 2016;388(10055):2023-38.<br />12.Boutry N, Morel M, Flipo RM, Demondion X, Cotten A. Early rheumatoid arthritis: a review of MRI and sonographic findings. AJR Am J Roentgenol. 2007;189(6):1502-9.<br />13.Teh J, Ostergaard M. What the Rheumatologist Is Looking for and What the Radiologist Should Know in Imaging for Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):905-16.<br />14.Ostergaard M, Boesen M. Imaging in rheumatoid arthritis: the role of magnetic resonance imaging and computed tomography. Radiol Med. 2019;124(11):1128-41.<br />15.Rubin DA. MR and ultrasound of the hands and wrists in rheumatoid arthritis. Part II. Added clinical value. Skeletal Radiol. 2019;48(6):837-57.<br />16.Jacobson JA, Girish G, Jiang Y, Resnick D. Radiographic evaluation of arthritis: inflammatory conditions. Radiology. 2008;248(2):378-89.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42023438</guid><pubDate>Tue, 17 Nov 2020 17:58:40 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42023438/artrite_reumatoide_manifestacoes_articulares.mp3" length="8196178" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.
2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.<br />2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus MRI. AJR Am J Roentgenol. 2011;197(3):541-6.<br />3.Scott DL, Wolfe F, Huizinga TW. Rheumatoid arthritis. Lancet. 2010;376(9746):1094-108.<br />4.Ngian GS. Rheumatoid arthritis. Aust Fam Physician. 2010;39(9):626-8.<br />5.Sommer OJ, Kladosek A, Weiler V, Czembirek H, Boeck M, Stiskal M. Rheumatoid arthritis: a practical guide to state-of-the-art imaging, image interpretation, and clinical implications. Radiographics. 2005;25(2):381-98.<br />6.Chang EY, Chen KC, Huang BK, Kavanaugh A. Adult Inflammatory Arthritides: What the Radiologist Should Know. Radiographics. 2016;36(6):1849-70.<br />7.Sparks JA. Rheumatoid Arthritis. Ann Intern Med. 2019;170(1):ITC1-ITC16.<br />8.Rubin DA. MRI and ultrasound of the hands and wrists in rheumatoid arthritis. I. Imaging findings. Skeletal Radiol. 2019;48(5):677-95.<br />9.Shiraishi M, Fukuda T, Igarashi T, Tokashiki T, Kayama R, Ojiri H. Differentiating Rheumatoid and Psoriatic Arthritis of the Hand: Multimodality Imaging Characteristics. Radiographics. 2020;40(5):1339-54.<br />10.Llopis E, Kroon HM, Acosta J, Bloem JL. Conventional Radiology in Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):917-41.<br />11.Smolen JS, Aletaha D, McInnes IB. Rheumatoid arthritis. Lancet. 2016;388(10055):2023-38.<br />12.Boutry N, Morel M, Flipo RM, Demondion X, Cotten A. Early rheumatoid arthritis: a review of MRI and sonographic findings. AJR Am J Roentgenol. 2007;189(6):1502-9.<br />13.Teh J, Ostergaard M. What the Rheumatologist Is Looking for and What the Radiologist Should Know in Imaging for Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):905-16.<br />14.Ostergaard M, Boesen M. Imaging in rheumatoid arthritis: the role of magnetic resonance imaging and computed tomography. Radiol Med. 2019;124(11):1128-41.<br />15.Rubin DA. MR and ultrasound of the hands and wrists in rheumatoid arthritis. Part II. Added clinical value. Skeletal Radiol. 2019;48(6):837-57.<br />16.Jacobson JA, Girish G, Jiang Y, Resnick D. Radiographic evaluation of arthritis: inflammatory conditions. Radiology. 2008;248(2):378-89.]]></itunes:summary><itunes:duration>513</itunes:duration><itunes:keywords>artrite,ressonância,ultrassonografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Artrite Reumatoide - Introdução</title><link>https://www.spreaker.com/episode/artrite-reumatoide-introducao--42023192</link><description><![CDATA[Referências<br />1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.<br />2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus MRI. AJR Am J Roentgenol. 2011;197(3):541-6.<br />3.Scott DL, Wolfe F, Huizinga TW. Rheumatoid arthritis. Lancet. 2010;376(9746):1094-108.<br />4.Ngian GS. Rheumatoid arthritis. Aust Fam Physician. 2010;39(9):626-8.<br />5.Sommer OJ, Kladosek A, Weiler V, Czembirek H, Boeck M, Stiskal M. Rheumatoid arthritis: a practical guide to state-of-the-art imaging, image interpretation, and clinical implications. Radiographics. 2005;25(2):381-98.<br />6.Chang EY, Chen KC, Huang BK, Kavanaugh A. Adult Inflammatory Arthritides: What the Radiologist Should Know. Radiographics. 2016;36(6):1849-70.<br />7.Sparks JA. Rheumatoid Arthritis. Ann Intern Med. 2019;170(1):ITC1-ITC16.<br />8.Rubin DA. MRI and ultrasound of the hands and wrists in rheumatoid arthritis. I. Imaging findings. Skeletal Radiol. 2019;48(5):677-95.<br />9.Shiraishi M, Fukuda T, Igarashi T, Tokashiki T, Kayama R, Ojiri H. Differentiating Rheumatoid and Psoriatic Arthritis of the Hand: Multimodality Imaging Characteristics. Radiographics. 2020;40(5):1339-54.<br />10.Llopis E, Kroon HM, Acosta J, Bloem JL. Conventional Radiology in Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):917-41.<br />11.Smolen JS, Aletaha D, McInnes IB. Rheumatoid arthritis. Lancet. 2016;388(10055):2023-38.<br />12.Boutry N, Morel M, Flipo RM, Demondion X, Cotten A. Early rheumatoid arthritis: a review of MRI and sonographic findings. AJR Am J Roentgenol. 2007;189(6):1502-9.<br />13.Teh J, Ostergaard M. What the Rheumatologist Is Looking for and What the Radiologist Should Know in Imaging for Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):905-16.<br />14.Ostergaard M, Boesen M. Imaging in rheumatoid arthritis: the role of magnetic resonance imaging and computed tomography. Radiol Med. 2019;124(11):1128-41.<br />15.Rubin DA. MR and ultrasound of the hands and wrists in rheumatoid arthritis. Part II. Added clinical value. Skeletal Radiol. 2019;48(6):837-57.<br />16.Jacobson JA, Girish G, Jiang Y, Resnick D. Radiographic evaluation of arthritis: inflammatory conditions. Radiology. 2008;248(2):378-89.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/42023192</guid><pubDate>Tue, 17 Nov 2020 17:43:42 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/42023192/artrite_reumatoide_introducao.mp3" length="4348028" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Referências
1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.
2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus...</itunes:subtitle><itunes:summary><![CDATA[Referências<br />1.Filippucci E, Cipolletta E, Mashadi Mirza R, Carotti M, Giovagnoni A, Salaffi F, et al. Ultrasound imaging in rheumatoid arthritis. Radiol Med. 2019;124(11):1087-100.<br />2.Rowbotham EL, Grainger AJ. Rheumatoid arthritis: ultrasound versus MRI. AJR Am J Roentgenol. 2011;197(3):541-6.<br />3.Scott DL, Wolfe F, Huizinga TW. Rheumatoid arthritis. Lancet. 2010;376(9746):1094-108.<br />4.Ngian GS. Rheumatoid arthritis. Aust Fam Physician. 2010;39(9):626-8.<br />5.Sommer OJ, Kladosek A, Weiler V, Czembirek H, Boeck M, Stiskal M. Rheumatoid arthritis: a practical guide to state-of-the-art imaging, image interpretation, and clinical implications. Radiographics. 2005;25(2):381-98.<br />6.Chang EY, Chen KC, Huang BK, Kavanaugh A. Adult Inflammatory Arthritides: What the Radiologist Should Know. Radiographics. 2016;36(6):1849-70.<br />7.Sparks JA. Rheumatoid Arthritis. Ann Intern Med. 2019;170(1):ITC1-ITC16.<br />8.Rubin DA. MRI and ultrasound of the hands and wrists in rheumatoid arthritis. I. Imaging findings. Skeletal Radiol. 2019;48(5):677-95.<br />9.Shiraishi M, Fukuda T, Igarashi T, Tokashiki T, Kayama R, Ojiri H. Differentiating Rheumatoid and Psoriatic Arthritis of the Hand: Multimodality Imaging Characteristics. Radiographics. 2020;40(5):1339-54.<br />10.Llopis E, Kroon HM, Acosta J, Bloem JL. Conventional Radiology in Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):917-41.<br />11.Smolen JS, Aletaha D, McInnes IB. Rheumatoid arthritis. Lancet. 2016;388(10055):2023-38.<br />12.Boutry N, Morel M, Flipo RM, Demondion X, Cotten A. Early rheumatoid arthritis: a review of MRI and sonographic findings. AJR Am J Roentgenol. 2007;189(6):1502-9.<br />13.Teh J, Ostergaard M. What the Rheumatologist Is Looking for and What the Radiologist Should Know in Imaging for Rheumatoid Arthritis. Radiol Clin North Am. 2017;55(5):905-16.<br />14.Ostergaard M, Boesen M. Imaging in rheumatoid arthritis: the role of magnetic resonance imaging and computed tomography. Radiol Med. 2019;124(11):1128-41.<br />15.Rubin DA. MR and ultrasound of the hands and wrists in rheumatoid arthritis. Part II. Added clinical value. Skeletal Radiol. 2019;48(6):837-57.<br />16.Jacobson JA, Girish G, Jiang Y, Resnick D. Radiographic evaluation of arthritis: inflammatory conditions. Radiology. 2008;248(2):378-89.]]></itunes:summary><itunes:duration>272</itunes:duration><itunes:keywords>artrite,ressonância,ultrassonografia</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ELBOW LIGAMENTS - PART II</title><link>https://www.spreaker.com/episode/elbow-ligaments-part-ii--41865908</link><description><![CDATA[1- Introduction;<br />2- Lateral Collateral Ligament Complex;<br />3- Ulnar Collateral Ligament Complex;<br />4- Valgus Extension Overload Syndrome;<br />5- Posterolateral Rotatory Instability]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41865908</guid><pubDate>Sun, 08 Nov 2020 22:50:03 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41865908/elbow_ligaments_part_ii.mp3" length="2131821" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>1- Introduction;
2- Lateral Collateral Ligament Complex;
3- Ulnar Collateral Ligament Complex;
4- Valgus Extension Overload Syndrome;
5- Posterolateral Rotatory Instability</itunes:subtitle><itunes:summary><![CDATA[1- Introduction;<br />2- Lateral Collateral Ligament Complex;<br />3- Ulnar Collateral Ligament Complex;<br />4- Valgus Extension Overload Syndrome;<br />5- Posterolateral Rotatory Instability]]></itunes:summary><itunes:duration>356</itunes:duration><itunes:keywords>elbow,plri</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ELBOW LIGAMENTS - PART I</title><link>https://www.spreaker.com/episode/elbow-ligaments-part-i--41865616</link><description><![CDATA[REFERENCES<br />1. Bucknor MD, Stevens KJ, Steinbach LS. Elbow Imaging in Sport: Sports Imaging Series. Radiology. 2016;280(1):328.<br />2. Barco R, Antuna SA. Management of Elbow Trauma: Anatomy and Exposures. Hand Clin. 2015;31(4):509-19.<br />3. Tarassoli P, McCann P, Amirfeyz R. Complex instability of the elbow. Injury. 2017;48(3):568-77.<br />4. Acosta Batlle J, Cereal L, Lopez Parra MD, Alba B, Resano S, Blazquez Sanchez J. The elbow: review of anatomy and common collateral ligament complex pathology using MRI. Insights Imaging. 2019;10(1):43.<br />5. Barco R, Duran D, Antuna SA. Undetected anteromedial coronoid fracture in elbow dislocation: A case report. Trauma Case Rep. 2015;1(9-12):73-8.<br />6. Binaghi D. MR Imaging of the Elbow. Magn Reson Imaging Clin N Am. 2015;23(3):427-40.<br />7. Sampath SC, Sampath SC, Bredella MA. Magnetic resonance imaging of the elbow: a structured approach. Sports Health. 2013;5(1):34-49.<br />8. Jacobson JA, Chiavaras MM, Lawton JM, Downie B, Yablon CM, Lawton J. Radial collateral ligament of the elbow: sonographic characterization with cadaveric dissection correlation and magnetic resonance arthrography. J Ultrasound Med. 2014;33(6):1041-<br />9. Lombardi A, Ashir A, Gorbachova T, Taljanovic MS, Chang EY. Magnetic resonance imaging of the elbow. Pol J Radiol. 2020;85:e440-e60.<br />10. Konin GP, Nazarian LN, Walz DM. US of the elbow: indications, technique, normal anatomy, and pathologic conditions. Radiographics. 2013;33(4):E125-47.<br />11. Kwak SH, Lee SJ, Jeong HS, Do MU, Suh KT. Subtle elbow instability associated with lateral epicondylitis. BMC Musculoskelet Disord. 2018;19(1):136.<br />12. Patel RM, Lynch TS, Amin NH, Calabrese G, Gryzlo SM, Schickendantz MS. The thrower's elbow. Orthop Clin North Am. 2014;45(3):355-76.<br />13. Labott JR, Aibinder WR, Dines JS, Camp CL. Understanding the medial ulnar collateral ligament of the elbow: Review of native ligament anatomy and function. World J Orthop. 2018;9(6):78-84.<br />14. Farrow LD, Mahoney AJ, Stefancin JJ, Taljanovic MS, Sheppard JE, Schickendantz MS. Quantitative analysis of the medial ulnar collateral ligament ulnar footprint and its relationship to the ulnar sublime tubercle. Am J Sports Med. 2011;39(9):1936-41.<br />15. Daruwalla JH, Daly CA, Seiler JG, 3rd. Medial Elbow Injuries in the Throwing Athlete. Hand Clin. 2017;33(1):47-62.<br />16. Ferreira FB, Fernandes ED, Silva FD, Vieira MC, Puchnick A, Fernandes AR. A sonographic technique to evaluate the anterior bundle of the ulnar collateral ligament of the elbow: imaging features and anatomic correlation. J Ultrasound Med. 2015;34(3):377-84.<br />17. Yoshida M, Goto H, Takenaga T, Tsuchiya A, Sugimoto K, Musahl V, et al. Anterior and posterior bands of the anterior bundle in the elbow ulnar collateral ligament: ultrasound anatomy. J Shoulder Elbow Surg. 2017;26(10):1803-9.<br />18. Molenaars RJ, van den Bekerom MPJ, Eygendaal D, Oh LS. The pathoanatomy of the anterior bundle of the medial ulnar collateral ligament. J Shoulder Elbow Surg. 2019;28(8):1497-504.<br />19. Camp CL, Smith J, O'Driscoll SW. Posterolateral Rotatory Instability of the Elbow: Part I. Mechanism of Injury and the Posterolateral Rotatory Drawer Test. Arthrosc Tech. 2017;6(2):e401-e5.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41865616</guid><pubDate>Sun, 08 Nov 2020 22:18:11 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41865616/elbow_ligaments_part_i.mp3" length="2012391" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1. Bucknor MD, Stevens KJ, Steinbach LS. Elbow Imaging in Sport: Sports Imaging Series. Radiology. 2016;280(1):328.
2. Barco R, Antuna SA. Management of Elbow Trauma: Anatomy and Exposures. Hand Clin. 2015;31(4):509-19.
3. Tarassoli P,...</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1. Bucknor MD, Stevens KJ, Steinbach LS. Elbow Imaging in Sport: Sports Imaging Series. Radiology. 2016;280(1):328.<br />2. Barco R, Antuna SA. Management of Elbow Trauma: Anatomy and Exposures. Hand Clin. 2015;31(4):509-19.<br />3. Tarassoli P, McCann P, Amirfeyz R. Complex instability of the elbow. Injury. 2017;48(3):568-77.<br />4. Acosta Batlle J, Cereal L, Lopez Parra MD, Alba B, Resano S, Blazquez Sanchez J. The elbow: review of anatomy and common collateral ligament complex pathology using MRI. Insights Imaging. 2019;10(1):43.<br />5. Barco R, Duran D, Antuna SA. Undetected anteromedial coronoid fracture in elbow dislocation: A case report. Trauma Case Rep. 2015;1(9-12):73-8.<br />6. Binaghi D. MR Imaging of the Elbow. Magn Reson Imaging Clin N Am. 2015;23(3):427-40.<br />7. Sampath SC, Sampath SC, Bredella MA. Magnetic resonance imaging of the elbow: a structured approach. Sports Health. 2013;5(1):34-49.<br />8. Jacobson JA, Chiavaras MM, Lawton JM, Downie B, Yablon CM, Lawton J. Radial collateral ligament of the elbow: sonographic characterization with cadaveric dissection correlation and magnetic resonance arthrography. J Ultrasound Med. 2014;33(6):1041-<br />9. Lombardi A, Ashir A, Gorbachova T, Taljanovic MS, Chang EY. Magnetic resonance imaging of the elbow. Pol J Radiol. 2020;85:e440-e60.<br />10. Konin GP, Nazarian LN, Walz DM. US of the elbow: indications, technique, normal anatomy, and pathologic conditions. Radiographics. 2013;33(4):E125-47.<br />11. Kwak SH, Lee SJ, Jeong HS, Do MU, Suh KT. Subtle elbow instability associated with lateral epicondylitis. BMC Musculoskelet Disord. 2018;19(1):136.<br />12. Patel RM, Lynch TS, Amin NH, Calabrese G, Gryzlo SM, Schickendantz MS. The thrower's elbow. Orthop Clin North Am. 2014;45(3):355-76.<br />13. Labott JR, Aibinder WR, Dines JS, Camp CL. Understanding the medial ulnar collateral ligament of the elbow: Review of native ligament anatomy and function. World J Orthop. 2018;9(6):78-84.<br />14. Farrow LD, Mahoney AJ, Stefancin JJ, Taljanovic MS, Sheppard JE, Schickendantz MS. Quantitative analysis of the medial ulnar collateral ligament ulnar footprint and its relationship to the ulnar sublime tubercle. Am J Sports Med. 2011;39(9):1936-41.<br />15. Daruwalla JH, Daly CA, Seiler JG, 3rd. Medial Elbow Injuries in the Throwing Athlete. Hand Clin. 2017;33(1):47-62.<br />16. Ferreira FB, Fernandes ED, Silva FD, Vieira MC, Puchnick A, Fernandes AR. A sonographic technique to evaluate the anterior bundle of the ulnar collateral ligament of the elbow: imaging features and anatomic correlation. J Ultrasound Med. 2015;34(3):377-84.<br />17. Yoshida M, Goto H, Takenaga T, Tsuchiya A, Sugimoto K, Musahl V, et al. Anterior and posterior bands of the anterior bundle in the elbow ulnar collateral ligament: ultrasound anatomy. J Shoulder Elbow Surg. 2017;26(10):1803-9.<br />18. Molenaars RJ, van den Bekerom MPJ, Eygendaal D, Oh LS. The pathoanatomy of the anterior bundle of the medial ulnar collateral ligament. J Shoulder Elbow Surg. 2019;28(8):1497-504.<br />19. Camp CL, Smith J, O'Driscoll SW. Posterolateral Rotatory Instability of the Elbow: Part I. Mechanism of Injury and the Posterolateral Rotatory Drawer Test. Arthrosc Tech. 2017;6(2):e401-e5.]]></itunes:summary><itunes:duration>336</itunes:duration><itunes:keywords>elbow,ligaments</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Medial Complex Ligament of the Ankle: Spring and Ultrasound Tips</title><link>https://www.spreaker.com/episode/medial-complex-ligament-of-the-ankle-spring-and-ultrasound-tips--41708694</link><description><![CDATA[References<br />1. Czajka CM, Tran E, Cai AN, DiPreta JA. Ankle sprains and instability. Med Clin North Am. 2014;98(2):313-29.<br />2. Nazarenko A, Beltran LS, Bencardino JT. Imaging evaluation of traumatic ligamentous injuries of the Ankle and foot. Radiol Clin North Am. 2013;51(3):455-78.<br />3. Doring S, Proven S, Marcelis S, Shahabpour M, Boulet C, de Mey J, et al. Ankle and midfoot ligaments: Ultrasound with anatomical correlation: A review. Eur J Radiol. 2018;107:216-26.<br />4. Linklater JM, Hayter CL, Vu D. Imaging of Acute Capsuloligamentous Sports Injuries in the Ankle and Foot: Sports Imaging Series. Radiology. 2017;283(3):644-62.<br />5. Perrich KD, Goodwin DW, Hecht PJ, Cheung Y. Ankle ligaments on MRI: appearance of normal and injured ligaments. AJR Am J Roentgenol. 2009;193(3):687-95.<br />6. Mengiardi B, Pinto C, Zanetti M. Medial Collateral Ligament Complex of the Ankle: MR Imaging Anatomy and Findings in Medial Instability. Semin Musculoskelet Radiol. 2016;20(1):91-103.<br />7. Mengiardi B, Zanetti M, Schottle PB, Vienne P, Bode B, Hodler J, et al. Spring ligament complex: MR imaging-anatomic correlation and findings in asymptomatic subjects. Radiology. 2005;237(1):242-9.<br />8. Mengiardi B, Pinto C, Zanetti M. Spring Ligament Complex and Posterior Tibial Tendon: MR Anatomy and Findings in Acquired Adult Flatfoot Deformity. Semin Musculoskelet Radiol. 2016;20(1):104-15.<br />9. Omar H, Saini V, Wadhwa V, Liu G, Chhabra A. Spring ligament complex: Illustrated normal anatomy and spectrum of pathologies on 3T MR imaging. Eur J Radiol. 2016;85(11):2133-43.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41708694</guid><pubDate>Fri, 30 Oct 2020 01:00:26 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41708694/medial_complex_ligament_of_the_ankle_spring_and_ultrasound_tips.mp3" length="1886445" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Czajka CM, Tran E, Cai AN, DiPreta JA. Ankle sprains and instability. Med Clin North Am. 2014;98(2):313-29.
2. Nazarenko A, Beltran LS, Bencardino JT. Imaging evaluation of traumatic ligamentous injuries of the Ankle and foot. Radiol...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Czajka CM, Tran E, Cai AN, DiPreta JA. Ankle sprains and instability. Med Clin North Am. 2014;98(2):313-29.<br />2. Nazarenko A, Beltran LS, Bencardino JT. Imaging evaluation of traumatic ligamentous injuries of the Ankle and foot. Radiol Clin North Am. 2013;51(3):455-78.<br />3. Doring S, Proven S, Marcelis S, Shahabpour M, Boulet C, de Mey J, et al. Ankle and midfoot ligaments: Ultrasound with anatomical correlation: A review. Eur J Radiol. 2018;107:216-26.<br />4. Linklater JM, Hayter CL, Vu D. Imaging of Acute Capsuloligamentous Sports Injuries in the Ankle and Foot: Sports Imaging Series. Radiology. 2017;283(3):644-62.<br />5. Perrich KD, Goodwin DW, Hecht PJ, Cheung Y. Ankle ligaments on MRI: appearance of normal and injured ligaments. AJR Am J Roentgenol. 2009;193(3):687-95.<br />6. Mengiardi B, Pinto C, Zanetti M. Medial Collateral Ligament Complex of the Ankle: MR Imaging Anatomy and Findings in Medial Instability. Semin Musculoskelet Radiol. 2016;20(1):91-103.<br />7. Mengiardi B, Zanetti M, Schottle PB, Vienne P, Bode B, Hodler J, et al. Spring ligament complex: MR imaging-anatomic correlation and findings in asymptomatic subjects. Radiology. 2005;237(1):242-9.<br />8. Mengiardi B, Pinto C, Zanetti M. Spring Ligament Complex and Posterior Tibial Tendon: MR Anatomy and Findings in Acquired Adult Flatfoot Deformity. Semin Musculoskelet Radiol. 2016;20(1):104-15.<br />9. Omar H, Saini V, Wadhwa V, Liu G, Chhabra A. Spring ligament complex: Illustrated normal anatomy and spectrum of pathologies on 3T MR imaging. Eur J Radiol. 2016;85(11):2133-43.]]></itunes:summary><itunes:duration>315</itunes:duration><itunes:keywords>ankle,deltoid,spring</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Medial Complex Ligaments of the Ankle: Deltoid</title><link>https://www.spreaker.com/episode/medial-complex-ligaments-of-the-ankle-deltoid--41708676</link><description><![CDATA[References<br />1. Czajka CM, Tran E, Cai AN, DiPreta JA. Ankle sprains and instability. Med Clin North Am. 2014;98(2):313-29.<br />2. Nazarenko A, Beltran LS, Bencardino JT. Imaging evaluation of traumatic ligamentous injuries of the Ankle and foot. Radiol Clin North Am. 2013;51(3):455-78.<br />3. Doring S, Proven S, Marcelis S, Shahabpour M, Boulet C, de Mey J, et al. Ankle and midfoot ligaments: Ultrasound with anatomical correlation: A review. Eur J Radiol. 2018;107:216-26.<br />4. Linklater JM, Hayter CL, Vu D. Imaging of Acute Capsuloligamentous Sports Injuries in the Ankle and Foot: Sports Imaging Series. Radiology. 2017;283(3):644-62.<br />5. Perrich KD, Goodwin DW, Hecht PJ, Cheung Y. Ankle ligaments on MRI: appearance of normal and injured ligaments. AJR Am J Roentgenol. 2009;193(3):687-95.<br />6. Mengiardi B, Pinto C, Zanetti M. Medial Collateral Ligament Complex of the Ankle: MR Imaging Anatomy and Findings in Medial Instability. Semin Musculoskelet Radiol. 2016;20(1):91-103.<br />7. Mengiardi B, Zanetti M, Schottle PB, Vienne P, Bode B, Hodler J, et al. Spring ligament complex: MR imaging-anatomic correlation and findings in asymptomatic subjects. Radiology. 2005;237(1):242-9.<br />8. Mengiardi B, Pinto C, Zanetti M. Spring Ligament Complex and Posterior Tibial Tendon: MR Anatomy and Findings in Acquired Adult Flatfoot Deformity. Semin Musculoskelet Radiol. 2016;20(1):104-15.<br />9. Omar H, Saini V, Wadhwa V, Liu G, Chhabra A. Spring ligament complex: Illustrated normal anatomy and spectrum of pathologies on 3T MR imaging. Eur J Radiol. 2016;85(11):2133-43.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41708676</guid><pubDate>Fri, 30 Oct 2020 00:59:15 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41708676/medial_complex_ligaments_of_the_ankle_deltoid.mp3" length="1571517" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Czajka CM, Tran E, Cai AN, DiPreta JA. Ankle sprains and instability. Med Clin North Am. 2014;98(2):313-29.
2. Nazarenko A, Beltran LS, Bencardino JT. Imaging evaluation of traumatic ligamentous injuries of the Ankle and foot. Radiol...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Czajka CM, Tran E, Cai AN, DiPreta JA. Ankle sprains and instability. Med Clin North Am. 2014;98(2):313-29.<br />2. Nazarenko A, Beltran LS, Bencardino JT. Imaging evaluation of traumatic ligamentous injuries of the Ankle and foot. Radiol Clin North Am. 2013;51(3):455-78.<br />3. Doring S, Proven S, Marcelis S, Shahabpour M, Boulet C, de Mey J, et al. Ankle and midfoot ligaments: Ultrasound with anatomical correlation: A review. Eur J Radiol. 2018;107:216-26.<br />4. Linklater JM, Hayter CL, Vu D. Imaging of Acute Capsuloligamentous Sports Injuries in the Ankle and Foot: Sports Imaging Series. Radiology. 2017;283(3):644-62.<br />5. Perrich KD, Goodwin DW, Hecht PJ, Cheung Y. Ankle ligaments on MRI: appearance of normal and injured ligaments. AJR Am J Roentgenol. 2009;193(3):687-95.<br />6. Mengiardi B, Pinto C, Zanetti M. Medial Collateral Ligament Complex of the Ankle: MR Imaging Anatomy and Findings in Medial Instability. Semin Musculoskelet Radiol. 2016;20(1):91-103.<br />7. Mengiardi B, Zanetti M, Schottle PB, Vienne P, Bode B, Hodler J, et al. Spring ligament complex: MR imaging-anatomic correlation and findings in asymptomatic subjects. Radiology. 2005;237(1):242-9.<br />8. Mengiardi B, Pinto C, Zanetti M. Spring Ligament Complex and Posterior Tibial Tendon: MR Anatomy and Findings in Acquired Adult Flatfoot Deformity. Semin Musculoskelet Radiol. 2016;20(1):104-15.<br />9. Omar H, Saini V, Wadhwa V, Liu G, Chhabra A. Spring ligament complex: Illustrated normal anatomy and spectrum of pathologies on 3T MR imaging. Eur J Radiol. 2016;85(11):2133-43.]]></itunes:summary><itunes:duration>262</itunes:duration><itunes:keywords>ankle,deltoid,spring</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Tibiofibular syndemosis</title><link>https://www.spreaker.com/episode/tibiofibular-syndemosis--41577004</link><description><![CDATA[References<br />1.        Hermans JJ, Beumer A, de Jong TA, Kleinrensink GJ. Anatomy of the distal tibiofibular syndesmosis in adults: a pictorial essay with a multimodality approach. J Anat. 2010;217(6):633-45.<br />2.        AM K. Sarrafian's Anatomy of the Foot and Ankle2011.<br />3.        Lilyquist M, Shaw A, Latz K, Bogner J, Wentz B. Cadaveric Analysis of the Distal Tibiofibular Syndesmosis. Foot Ankle Int. 2016;37(8):882-90.<br />4.        Williams BT, Ahrberg AB, Goldsmith MT, Campbell KJ, Shirley L, Wijdicks CA, et al. Ankle syndesmosis: a qualitative and quantitative anatomic analysis. Am J Sports Med. 2015;43(1):88-97.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41577004</guid><pubDate>Wed, 21 Oct 2020 23:30:28 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41577004/tibiofibular_syndemosis.mp3" length="1650042" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.        Hermans JJ, Beumer A, de Jong TA, Kleinrensink GJ. Anatomy of the distal tibiofibular syndesmosis in adults: a pictorial essay with a multimodality approach. J Anat. 2010;217(6):633-45.
2.        AM K. Sarrafian's Anatomy of the...</itunes:subtitle><itunes:summary><![CDATA[References<br />1.        Hermans JJ, Beumer A, de Jong TA, Kleinrensink GJ. Anatomy of the distal tibiofibular syndesmosis in adults: a pictorial essay with a multimodality approach. J Anat. 2010;217(6):633-45.<br />2.        AM K. Sarrafian's Anatomy of the Foot and Ankle2011.<br />3.        Lilyquist M, Shaw A, Latz K, Bogner J, Wentz B. Cadaveric Analysis of the Distal Tibiofibular Syndesmosis. Foot Ankle Int. 2016;37(8):882-90.<br />4.        Williams BT, Ahrberg AB, Goldsmith MT, Campbell KJ, Shirley L, Wijdicks CA, et al. Ankle syndesmosis: a qualitative and quantitative anatomic analysis. Am J Sports Med. 2015;43(1):88-97.]]></itunes:summary><itunes:duration>275</itunes:duration><itunes:keywords>syndemosis,tibiofibular</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ULTRASOUND IN CARPAL TUNNEL SYNDROME</title><link>https://www.spreaker.com/episode/ultrasound-in-carpal-tunnel-syndrome--41414245</link><description><![CDATA[References<br /><br />1. Kim HS, Joo SH, Han ZA, Kim YW. The nerve/tunnel index: a new diagnostic standard for carpal tunnel syndrome using sonography: a pilot study. J Ultrasound Med. 2012; 31(1):23-9.<br />2. Liao YY, Lee WN, Lee MR, Chen WS, Chiou HJ, Kuo TT, et al. Carpal tunnel syndrome: US strain imaging for diagnosis. Radiology. 2015; 275 (1): 205-14.<br />3. Bianchi S, Hoffman DF, Tamborrini G, Poletti PA. Ultrasound Findings in Less Frequent Causes of Carpal Tunnel Syndrome. J Ultrasound Med. 2020.<br />4. Chen YT, Williams L, Zak MJ, Fredericson M. Review of Ultrasonography in the Diagnosis of Carpal Tunnel Syndrome and a Proposed Scanning Protocol. J Ultrasound Med. 2016;35(11):2311-24.<br />5. Azman D, Hrabac P, Demarini V. Use of Multiple Ultrasonographic Parameters in Confirmation of Carpal Tunnel Syndrome. J Ultrasound Med. 2018;37(4):879-89.<br />6. Roll SC, Evans KD, Li X, Freimer M, Sommerich CM. Screening for carpal tunnel syndrome using sonography. J Ultrasound Med. 2011;30(12):1657-67.<br />7. Yoshii Y, Zhao C, Amadio PC. Recent Advances in Ultrasound Diagnosis of Carpal Tunnel Syndrome. Diagnostics (Basel). 2020;10(8).<br />8. Klauser AS, Halpern EJ, De Zordo T, Feuchtner GM, Arora R, Gruber J, et al. Carpal tunnel syndrome assessment with US: value of additional cross-sectional area measurements of the median nerve in patients versus healthy volunteers. Radiology. 2009;250(1):171-7.<br />9. Kutlar N, Bayrak AO, Bayrak IK, Canbaz S, Turker H. Diagnosing carpal tunnel syndrome with Doppler ultrasonography: a comparison of ultrasonographic measurements and electrophysiological severity. Neurol Res. 2017;39(2):126-32.<br />10. Bagga B, Sinha A, Khandelwal N, Modi M, Ahuja CK, Sharma R. Comparison of Magnetic Resonance Imaging and Ultrasonography in Diagnosing and Grading Carpal Tunnel Syndrome: A Prospective Study. Curr Probl Diagn Radiol. 2020;49(2):102-15.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41414245</guid><pubDate>Mon, 12 Oct 2020 00:44:10 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41414245/ultrasound_in_carpal_tunnel_syndrome.mp3" length="2429370" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References

1. Kim HS, Joo SH, Han ZA, Kim YW. The nerve/tunnel index: a new diagnostic standard for carpal tunnel syndrome using sonography: a pilot study. J Ultrasound Med. 2012; 31(1):23-9.
2. Liao YY, Lee WN, Lee MR, Chen WS, Chiou HJ, Kuo TT, et...</itunes:subtitle><itunes:summary><![CDATA[References<br /><br />1. Kim HS, Joo SH, Han ZA, Kim YW. The nerve/tunnel index: a new diagnostic standard for carpal tunnel syndrome using sonography: a pilot study. J Ultrasound Med. 2012; 31(1):23-9.<br />2. Liao YY, Lee WN, Lee MR, Chen WS, Chiou HJ, Kuo TT, et al. Carpal tunnel syndrome: US strain imaging for diagnosis. Radiology. 2015; 275 (1): 205-14.<br />3. Bianchi S, Hoffman DF, Tamborrini G, Poletti PA. Ultrasound Findings in Less Frequent Causes of Carpal Tunnel Syndrome. J Ultrasound Med. 2020.<br />4. Chen YT, Williams L, Zak MJ, Fredericson M. Review of Ultrasonography in the Diagnosis of Carpal Tunnel Syndrome and a Proposed Scanning Protocol. J Ultrasound Med. 2016;35(11):2311-24.<br />5. Azman D, Hrabac P, Demarini V. Use of Multiple Ultrasonographic Parameters in Confirmation of Carpal Tunnel Syndrome. J Ultrasound Med. 2018;37(4):879-89.<br />6. Roll SC, Evans KD, Li X, Freimer M, Sommerich CM. Screening for carpal tunnel syndrome using sonography. J Ultrasound Med. 2011;30(12):1657-67.<br />7. Yoshii Y, Zhao C, Amadio PC. Recent Advances in Ultrasound Diagnosis of Carpal Tunnel Syndrome. Diagnostics (Basel). 2020;10(8).<br />8. Klauser AS, Halpern EJ, De Zordo T, Feuchtner GM, Arora R, Gruber J, et al. Carpal tunnel syndrome assessment with US: value of additional cross-sectional area measurements of the median nerve in patients versus healthy volunteers. Radiology. 2009;250(1):171-7.<br />9. Kutlar N, Bayrak AO, Bayrak IK, Canbaz S, Turker H. Diagnosing carpal tunnel syndrome with Doppler ultrasonography: a comparison of ultrasonographic measurements and electrophysiological severity. Neurol Res. 2017;39(2):126-32.<br />10. Bagga B, Sinha A, Khandelwal N, Modi M, Ahuja CK, Sharma R. Comparison of Magnetic Resonance Imaging and Ultrasonography in Diagnosing and Grading Carpal Tunnel Syndrome: A Prospective Study. Curr Probl Diagn Radiol. 2020;49(2):102-15.]]></itunes:summary><itunes:duration>405</itunes:duration><itunes:keywords>cts,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>STEATOSIS - PART III</title><link>https://www.spreaker.com/episode/steatosis-part-iii--41169906</link><description><![CDATA[References<br />1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.<br />2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns, and Quantification. Semin Ultrasound CT MR. 2016;37(6):501-10.<br />3. Li Q, Dhyani M, Grajo JR, Sirlin C, Samir AE. Current status of imaging in non-alcoholic fatty liver disease. World J Hepatol. 2018;10(8):530-42.<br />4. Zhang YN, Fowler KJ, Hamilton G, Cui JY, Sy EZ, Balanay M, et al. liver fat imaging-a clinical overview of ultrasound, CT, and MR imaging. Br J Radiol. 2018;91(1089):20170959.<br />5. M L. The Liver's Weight Problem. Science. 2015.<br />6. Leoni S, Tovoli F, Napoli L, Serio I, Ferri S, Bolondi L. Current guidelines for the management of non-alcoholic fatty liver disease: A systematic review with comparative analysis. World J Gastroenterol. 2018;24(30):3361-73.<br />7. Ferraioli G, Soares Monteiro LB. Ultrasound-based techniques for the diagnosis of liver steatosis. World J Gastroenterol. 2019;25(40):6053-62.<br />8. Pickhardt PJ, Graffy PM, Reeder SB, Hernando D, Li K. Quantification of Liver Fat Content With Unenhanced MDCT: Phantom and Clinical Correlation With MRI Proton Density Fat Fraction. AJR Am J Roentgenol. 2018;211(3):W151-W7.<br />9. Pickhardt PJ, Blake GM, Graffy PM, Sandfort V, Elton DC, Perez AA, et al. Liver Steatosis Categorization on Contrast-Enhanced CT Using a Fully-Automated Deep Learning Volumetric Segmentation Tool: Evaluation in 1,204 Heathy Adults Using Unenhanced CT as Reference Standard. AJR Am J Roentgenol. 2020.<br />10. Reeder SB, Cruite I, Hamilton G, Sirlin CB. Quantitative Assessment of Liver Fat with Magnetic Resonance Imaging and Spectroscopy. J Magn Reson Imaging. 2011;34(4):729-49.<br />11. Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75.<br />12. Pokharel SS, Macura KJ, Kamel IR, Zaheer A. Current MR imaging lipid detection techniques for diagnosis of lesions in the abdomen and pelvis. Radiographics. 2013;33(3):681-702.<br />13- Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75<br />14. Castera L, Friedrich-Rust M, Loomba R. Noninvasive Assessment of Liver Disease in Patients With Nonalcoholic Fatty Liver Disease. Gastroenterology. 2019;156(5):1264-81 e4.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41169906</guid><pubDate>Mon, 28 Sep 2020 02:39:04 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41169906/steatosis_part_iii.mp3" length="1618173" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.
2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns,...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.<br />2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns, and Quantification. Semin Ultrasound CT MR. 2016;37(6):501-10.<br />3. Li Q, Dhyani M, Grajo JR, Sirlin C, Samir AE. Current status of imaging in non-alcoholic fatty liver disease. World J Hepatol. 2018;10(8):530-42.<br />4. Zhang YN, Fowler KJ, Hamilton G, Cui JY, Sy EZ, Balanay M, et al. liver fat imaging-a clinical overview of ultrasound, CT, and MR imaging. Br J Radiol. 2018;91(1089):20170959.<br />5. M L. The Liver's Weight Problem. Science. 2015.<br />6. Leoni S, Tovoli F, Napoli L, Serio I, Ferri S, Bolondi L. Current guidelines for the management of non-alcoholic fatty liver disease: A systematic review with comparative analysis. World J Gastroenterol. 2018;24(30):3361-73.<br />7. Ferraioli G, Soares Monteiro LB. Ultrasound-based techniques for the diagnosis of liver steatosis. World J Gastroenterol. 2019;25(40):6053-62.<br />8. Pickhardt PJ, Graffy PM, Reeder SB, Hernando D, Li K. Quantification of Liver Fat Content With Unenhanced MDCT: Phantom and Clinical Correlation With MRI Proton Density Fat Fraction. AJR Am J Roentgenol. 2018;211(3):W151-W7.<br />9. Pickhardt PJ, Blake GM, Graffy PM, Sandfort V, Elton DC, Perez AA, et al. Liver Steatosis Categorization on Contrast-Enhanced CT Using a Fully-Automated Deep Learning Volumetric Segmentation Tool: Evaluation in 1,204 Heathy Adults Using Unenhanced CT as Reference Standard. AJR Am J Roentgenol. 2020.<br />10. Reeder SB, Cruite I, Hamilton G, Sirlin CB. Quantitative Assessment of Liver Fat with Magnetic Resonance Imaging and Spectroscopy. J Magn Reson Imaging. 2011;34(4):729-49.<br />11. Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75.<br />12. Pokharel SS, Macura KJ, Kamel IR, Zaheer A. Current MR imaging lipid detection techniques for diagnosis of lesions in the abdomen and pelvis. Radiographics. 2013;33(3):681-702.<br />13- Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75<br />14. Castera L, Friedrich-Rust M, Loomba R. Noninvasive Assessment of Liver Disease in Patients With Nonalcoholic Fatty Liver Disease. Gastroenterology. 2019;156(5):1264-81 e4.]]></itunes:summary><itunes:duration>270</itunes:duration><itunes:keywords>mri,steatosis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>STEATOSIS PART-II</title><link>https://www.spreaker.com/episode/steatosis-part-ii--41169786</link><description><![CDATA[References<br />1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.<br />2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns, and Quantification. Semin Ultrasound CT MR. 2016;37(6):501-10.<br />3. Li Q, Dhyani M, Grajo JR, Sirlin C, Samir AE. Current status of imaging in non-alcoholic fatty liver disease. World J Hepatol. 2018;10(8):530-42.<br />4. Zhang YN, Fowler KJ, Hamilton G, Cui JY, Sy EZ, Balanay M, et al. liver fat imaging-a clinical overview of ultrasound, CT, and MR imaging. Br J Radiol. 2018;91(1089):20170959.<br />5. M L. The Liver's Weight Problem. Science. 2015.<br />6. Leoni S, Tovoli F, Napoli L, Serio I, Ferri S, Bolondi L. Current guidelines for the management of non-alcoholic fatty liver disease: A systematic review with comparative analysis. World J Gastroenterol. 2018;24(30):3361-73.<br />7. Ferraioli G, Soares Monteiro LB. Ultrasound-based techniques for the diagnosis of liver steatosis. World J Gastroenterol. 2019;25(40):6053-62.<br />8. Pickhardt PJ, Graffy PM, Reeder SB, Hernando D, Li K. Quantification of Liver Fat Content With Unenhanced MDCT: Phantom and Clinical Correlation With MRI Proton Density Fat Fraction. AJR Am J Roentgenol. 2018;211(3):W151-W7.<br />9. Pickhardt PJ, Blake GM, Graffy PM, Sandfort V, Elton DC, Perez AA, et al. Liver Steatosis Categorization on Contrast-Enhanced CT Using a Fully-Automated Deep Learning Volumetric Segmentation Tool: Evaluation in 1,204 Heathy Adults Using Unenhanced CT as Reference Standard. AJR Am J Roentgenol. 2020.<br />10. Reeder SB, Cruite I, Hamilton G, Sirlin CB. Quantitative Assessment of Liver Fat with Magnetic Resonance Imaging and Spectroscopy. J Magn Reson Imaging. 2011;34(4):729-49.<br />11. Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75.<br />12. Pokharel SS, Macura KJ, Kamel IR, Zaheer A. Current MR imaging lipid detection techniques for diagnosis of lesions in the abdomen and pelvis. Radiographics. 2013;33(3):681-702.<br />13- Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75<br />14. Castera L, Friedrich-Rust M, Loomba R. Noninvasive Assessment of Liver Disease in Patients With Nonalcoholic Fatty Liver Disease. Gastroenterology. 2019;156(5):1264-81 e4.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41169786</guid><pubDate>Mon, 28 Sep 2020 02:26:01 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41169786/steatosis_part_ii.mp3" length="2800026" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.
2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns,...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.<br />2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns, and Quantification. Semin Ultrasound CT MR. 2016;37(6):501-10.<br />3. Li Q, Dhyani M, Grajo JR, Sirlin C, Samir AE. Current status of imaging in non-alcoholic fatty liver disease. World J Hepatol. 2018;10(8):530-42.<br />4. Zhang YN, Fowler KJ, Hamilton G, Cui JY, Sy EZ, Balanay M, et al. liver fat imaging-a clinical overview of ultrasound, CT, and MR imaging. Br J Radiol. 2018;91(1089):20170959.<br />5. M L. The Liver's Weight Problem. Science. 2015.<br />6. Leoni S, Tovoli F, Napoli L, Serio I, Ferri S, Bolondi L. Current guidelines for the management of non-alcoholic fatty liver disease: A systematic review with comparative analysis. World J Gastroenterol. 2018;24(30):3361-73.<br />7. Ferraioli G, Soares Monteiro LB. Ultrasound-based techniques for the diagnosis of liver steatosis. World J Gastroenterol. 2019;25(40):6053-62.<br />8. Pickhardt PJ, Graffy PM, Reeder SB, Hernando D, Li K. Quantification of Liver Fat Content With Unenhanced MDCT: Phantom and Clinical Correlation With MRI Proton Density Fat Fraction. AJR Am J Roentgenol. 2018;211(3):W151-W7.<br />9. Pickhardt PJ, Blake GM, Graffy PM, Sandfort V, Elton DC, Perez AA, et al. Liver Steatosis Categorization on Contrast-Enhanced CT Using a Fully-Automated Deep Learning Volumetric Segmentation Tool: Evaluation in 1,204 Heathy Adults Using Unenhanced CT as Reference Standard. AJR Am J Roentgenol. 2020.<br />10. Reeder SB, Cruite I, Hamilton G, Sirlin CB. Quantitative Assessment of Liver Fat with Magnetic Resonance Imaging and Spectroscopy. J Magn Reson Imaging. 2011;34(4):729-49.<br />11. Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75.<br />12. Pokharel SS, Macura KJ, Kamel IR, Zaheer A. Current MR imaging lipid detection techniques for diagnosis of lesions in the abdomen and pelvis. Radiographics. 2013;33(3):681-702.<br />13- Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75<br />14. Castera L, Friedrich-Rust M, Loomba R. Noninvasive Assessment of Liver Disease in Patients With Nonalcoholic Fatty Liver Disease. Gastroenterology. 2019;156(5):1264-81 e4.]]></itunes:summary><itunes:duration>467</itunes:duration><itunes:keywords>mri,steatosis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>STEATOSIS PART-I</title><link>https://www.spreaker.com/episode/steatosis-part-i--41169777</link><description><![CDATA[References<br />1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.<br />2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns, and Quantification. Semin Ultrasound CT MR. 2016;37(6):501-10.<br />3. Li Q, Dhyani M, Grajo JR, Sirlin C, Samir AE. Current status of imaging in non-alcoholic fatty liver disease. World J Hepatol. 2018;10(8):530-42.<br />4. Zhang YN, Fowler KJ, Hamilton G, Cui JY, Sy EZ, Balanay M, et al. liver fat imaging-a clinical overview of ultrasound, CT, and MR imaging. Br J Radiol. 2018;91(1089):20170959.<br />5. M L. The Liver's Weight Problem. Science. 2015.<br />6. Leoni S, Tovoli F, Napoli L, Serio I, Ferri S, Bolondi L. Current guidelines for the management of non-alcoholic fatty liver disease: A systematic review with comparative analysis. World J Gastroenterol. 2018;24(30):3361-73.<br />7. Ferraioli G, Soares Monteiro LB. Ultrasound-based techniques for the diagnosis of liver steatosis. World J Gastroenterol. 2019;25(40):6053-62.<br />8. Pickhardt PJ, Graffy PM, Reeder SB, Hernando D, Li K. Quantification of Liver Fat Content With Unenhanced MDCT: Phantom and Clinical Correlation With MRI Proton Density Fat Fraction. AJR Am J Roentgenol. 2018;211(3):W151-W7.<br />9. Pickhardt PJ, Blake GM, Graffy PM, Sandfort V, Elton DC, Perez AA, et al. Liver Steatosis Categorization on Contrast-Enhanced CT Using a Fully-Automated Deep Learning Volumetric Segmentation Tool: Evaluation in 1,204 Heathy Adults Using Unenhanced CT as Reference Standard. AJR Am J Roentgenol. 2020.<br />10. Reeder SB, Cruite I, Hamilton G, Sirlin CB. Quantitative Assessment of Liver Fat with Magnetic Resonance Imaging and Spectroscopy. J Magn Reson Imaging. 2011;34(4):729-49.<br />11. Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75.<br />12. Pokharel SS, Macura KJ, Kamel IR, Zaheer A. Current MR imaging lipid detection techniques for diagnosis of lesions in the abdomen and pelvis. Radiographics. 2013;33(3):681-702.<br />13- Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75<br />14. Castera L, Friedrich-Rust M, Loomba R. Noninvasive Assessment of Liver Disease in Patients With Nonalcoholic Fatty Liver Disease. Gastroenterology. 2019;156(5):1264-81 e4.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41169777</guid><pubDate>Mon, 28 Sep 2020 02:25:10 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41169777/steatosis_part_i.mp3" length="2320794" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.
2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns,...</itunes:subtitle><itunes:summary><![CDATA[References<br />1. Takahashi Y, Fukusato T. Histopathology of non-alcoholic fatty liver disease/non-alcoholic steatohepatitis. World J Gastroenterol. 2014;20(42):15539-48.<br />2. Idilman IS, Ozdeniz I, Karcaaltincaba M. Hepatic Steatosis: Etiology, Patterns, and Quantification. Semin Ultrasound CT MR. 2016;37(6):501-10.<br />3. Li Q, Dhyani M, Grajo JR, Sirlin C, Samir AE. Current status of imaging in non-alcoholic fatty liver disease. World J Hepatol. 2018;10(8):530-42.<br />4. Zhang YN, Fowler KJ, Hamilton G, Cui JY, Sy EZ, Balanay M, et al. liver fat imaging-a clinical overview of ultrasound, CT, and MR imaging. Br J Radiol. 2018;91(1089):20170959.<br />5. M L. The Liver's Weight Problem. Science. 2015.<br />6. Leoni S, Tovoli F, Napoli L, Serio I, Ferri S, Bolondi L. Current guidelines for the management of non-alcoholic fatty liver disease: A systematic review with comparative analysis. World J Gastroenterol. 2018;24(30):3361-73.<br />7. Ferraioli G, Soares Monteiro LB. Ultrasound-based techniques for the diagnosis of liver steatosis. World J Gastroenterol. 2019;25(40):6053-62.<br />8. Pickhardt PJ, Graffy PM, Reeder SB, Hernando D, Li K. Quantification of Liver Fat Content With Unenhanced MDCT: Phantom and Clinical Correlation With MRI Proton Density Fat Fraction. AJR Am J Roentgenol. 2018;211(3):W151-W7.<br />9. Pickhardt PJ, Blake GM, Graffy PM, Sandfort V, Elton DC, Perez AA, et al. Liver Steatosis Categorization on Contrast-Enhanced CT Using a Fully-Automated Deep Learning Volumetric Segmentation Tool: Evaluation in 1,204 Heathy Adults Using Unenhanced CT as Reference Standard. AJR Am J Roentgenol. 2020.<br />10. Reeder SB, Cruite I, Hamilton G, Sirlin CB. Quantitative Assessment of Liver Fat with Magnetic Resonance Imaging and Spectroscopy. J Magn Reson Imaging. 2011;34(4):729-49.<br />11. Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75.<br />12. Pokharel SS, Macura KJ, Kamel IR, Zaheer A. Current MR imaging lipid detection techniques for diagnosis of lesions in the abdomen and pelvis. Radiographics. 2013;33(3):681-702.<br />13- Idilman IS, Aniktar H, Idilman R, Kabacam G, Savas B, Elhan A, et al. Hepatic steatosis: quantification by proton density fat fraction with MR imaging versus liver biopsy. Radiology. 2013;267(3):767-75<br />14. Castera L, Friedrich-Rust M, Loomba R. Noninvasive Assessment of Liver Disease in Patients With Nonalcoholic Fatty Liver Disease. Gastroenterology. 2019;156(5):1264-81 e4.]]></itunes:summary><itunes:duration>387</itunes:duration><itunes:keywords>mri,steatosis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Update on Appendicitis - Part II</title><link>https://www.spreaker.com/episode/update-on-appendicitis-part-ii--41111255</link><description><![CDATA[References<br />1.Wagner M, Tubre DJ, Asensio JA. Evolution and Current Trends in the Management of Acute Appendicitis. Surg Clin North Am. 2018;98(5):1005-23.<br />2.Bhangu A, Soreide K, Di Saverio S, Assarsson JH, Drake FT. Acute appendicitis: modern understanding of pathogenesis, diagnosis, and management. Lancet. 2015;386(10000):1278-87.<br />3.Birnbaum BA, Wilson SR. Appendicitis at the millennium. Radiology. 2000;215(2):337-48.<br />4.Radiology ACo. ACR Appropriateness Criteria®<br />Suspected Appendicitis–Child. 2018.<br />5.CC G. Overview and Diagnosis of Acute Appendicitis in Children. Semin Ped Surg. 2016.<br />6.Swenson DW, Ayyala RS, Sams C, Lee EY. Practical Imaging Strategies for Acute Appendicitis in Children. AJR Am J Roentgenol. 2018;211(4):901-9.<br />7.Penticuff R, Jeffrey RB, Olcott EW. Hyperechoic Periappendiceal Fat: Evaluation of Criteria for Improving Specificity in the Sonographic Diagnosis of Appendicitis in Pediatric Patients. J Ultrasound Med. 2020.<br />8.Ilyas M, Ahmad Z, Parry AH. Target sign: appendicitis. Abdom Radiol (NY). 2019;44(1):379-80.<br />9.Xu Y, Jeffrey RB, Chang ST, DiMaio MA, Olcott EW. Sonographic Differentiation of Complicated From Uncomplicated Appendicitis: Implications for Antibiotics-First Therapy. J Ultrasound Med. 2017;36(2):269-77.<br />10.Telesmanich ME, Orth RC, Zhang W, Lopez ME, Carpenter JL, Mahmood N, et al. Searching for certainty: findings predictive of appendicitis in equivocal ultrasound exams. Pediatr Radiol. 2016;46(11):1539-45.<br />11.Repplinger MD, Pickhardt PJ, Robbins JB, Kitchin DR, Ziemlewicz TJ, Hetzel SJ, et al. Prospective Comparison of the Diagnostic Accuracy of MR Imaging versus CT for Acute Appendicitis. Radiology. 2018;288(2):467-75.<br />12.Mushtaq R, Desoky SM, Morello F, Gilbertson-Dahdal D, Gopalakrishnan G, Leetch A, et al. First-Line Diagnostic Evaluation with MRI of Children Suspected of Having Acute Appendicitis. Radiology. 2019;291(1):170-7.<br />13.Wi SA, Kim DJ, Cho ES, Kim KA. Diagnostic performance of MRI for pregnant patients with clinically suspected appendicitis. Abdom Radiol (NY). 2018;43(12):3456-61.<br />14.Kinner S, Pickhardt PJ, Riedesel EL, Gill KG, Robbins JB, Kitchin DR, et al. Diagnostic Accuracy of MRI Versus CT for the Evaluation of Acute Appendicitis in Children and Young Adults. AJR Am J Roentgenol. 2017;209(4):911-9.<br />15.Horrow MM, White DS, Horrow JC. Differentiation of perforated from nonperforated appendicitis at CT. Radiology. 2003;227(1):46-51.<br />16.Foley WD. CT Features for Complicated versus Uncomplicated Appendicitis: What Is the Evidence? Radiology. 2018;287(1):116-8.<br />17.HY K. Analysis of cT Features for Differentiating complicated and Uncomplicated appendicitis. Radiology. 2017.<br />18.Kim HY, Park JH, Lee YJ, Lee SS, Jeon JJ, Lee KH. Systematic Review and Meta-Analysis of CT Features for Differentiating Complicated and Uncomplicated Appendicitis. Radiology. 2018;287(1):104-15.<br />19.Riedesel EL, Weber BC, Shore MW, Cartmill RS, Ostlie DJ, Leys CM, et al. Diagnostic performance of standardized ultrasound protocol for detecting perforation in pediatric appendicitis. Pediatr Radiol. 2019;49(13):1726-34.<br />20.Kim HY, Park JH, Lee SS, Jeon JJ, Yoon CJ, Lee KH. Differentiation between complicated and uncomplicated appendicitis: diagnostic model development and validation study. Abdom Radiol (NY). 2020.<br />21.Carpenter JL, Orth RC, Zhang W, Lopez ME, Mangona KL, Guillerman RP. Diagnostic Performance of US for Differentiating Perforated from Nonperforated Pediatric Appendicitis: A Prospective Cohort Study. Radiology. 2017;282(3):835-41.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41111255</guid><pubDate>Fri, 25 Sep 2020 02:20:04 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41111255/update_on_appendicitis_part_ii.mp3" length="2255994" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Wagner M, Tubre DJ, Asensio JA. Evolution and Current Trends in the Management of Acute Appendicitis. Surg Clin North Am. 2018;98(5):1005-23.
2.Bhangu A, Soreide K, Di Saverio S, Assarsson JH, Drake FT. Acute appendicitis: modern...</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Wagner M, Tubre DJ, Asensio JA. Evolution and Current Trends in the Management of Acute Appendicitis. Surg Clin North Am. 2018;98(5):1005-23.<br />2.Bhangu A, Soreide K, Di Saverio S, Assarsson JH, Drake FT. Acute appendicitis: modern understanding of pathogenesis, diagnosis, and management. Lancet. 2015;386(10000):1278-87.<br />3.Birnbaum BA, Wilson SR. Appendicitis at the millennium. Radiology. 2000;215(2):337-48.<br />4.Radiology ACo. ACR Appropriateness Criteria®<br />Suspected Appendicitis–Child. 2018.<br />5.CC G. Overview and Diagnosis of Acute Appendicitis in Children. Semin Ped Surg. 2016.<br />6.Swenson DW, Ayyala RS, Sams C, Lee EY. Practical Imaging Strategies for Acute Appendicitis in Children. AJR Am J Roentgenol. 2018;211(4):901-9.<br />7.Penticuff R, Jeffrey RB, Olcott EW. Hyperechoic Periappendiceal Fat: Evaluation of Criteria for Improving Specificity in the Sonographic Diagnosis of Appendicitis in Pediatric Patients. J Ultrasound Med. 2020.<br />8.Ilyas M, Ahmad Z, Parry AH. Target sign: appendicitis. Abdom Radiol (NY). 2019;44(1):379-80.<br />9.Xu Y, Jeffrey RB, Chang ST, DiMaio MA, Olcott EW. Sonographic Differentiation of Complicated From Uncomplicated Appendicitis: Implications for Antibiotics-First Therapy. J Ultrasound Med. 2017;36(2):269-77.<br />10.Telesmanich ME, Orth RC, Zhang W, Lopez ME, Carpenter JL, Mahmood N, et al. Searching for certainty: findings predictive of appendicitis in equivocal ultrasound exams. Pediatr Radiol. 2016;46(11):1539-45.<br />11.Repplinger MD, Pickhardt PJ, Robbins JB, Kitchin DR, Ziemlewicz TJ, Hetzel SJ, et al. Prospective Comparison of the Diagnostic Accuracy of MR Imaging versus CT for Acute Appendicitis. Radiology. 2018;288(2):467-75.<br />12.Mushtaq R, Desoky SM, Morello F, Gilbertson-Dahdal D, Gopalakrishnan G, Leetch A, et al. First-Line Diagnostic Evaluation with MRI of Children Suspected of Having Acute Appendicitis. Radiology. 2019;291(1):170-7.<br />13.Wi SA, Kim DJ, Cho ES, Kim KA. Diagnostic performance of MRI for pregnant patients with clinically suspected appendicitis. Abdom Radiol (NY). 2018;43(12):3456-61.<br />14.Kinner S, Pickhardt PJ, Riedesel EL, Gill KG, Robbins JB, Kitchin DR, et al. Diagnostic Accuracy of MRI Versus CT for the Evaluation of Acute Appendicitis in Children and Young Adults. AJR Am J Roentgenol. 2017;209(4):911-9.<br />15.Horrow MM, White DS, Horrow JC. Differentiation of perforated from nonperforated appendicitis at CT. Radiology. 2003;227(1):46-51.<br />16.Foley WD. CT Features for Complicated versus Uncomplicated Appendicitis: What Is the Evidence? Radiology. 2018;287(1):116-8.<br />17.HY K. Analysis of cT Features for Differentiating complicated and Uncomplicated appendicitis. Radiology. 2017.<br />18.Kim HY, Park JH, Lee YJ, Lee SS, Jeon JJ, Lee KH. Systematic Review and Meta-Analysis of CT Features for Differentiating Complicated and Uncomplicated Appendicitis. Radiology. 2018;287(1):104-15.<br />19.Riedesel EL, Weber BC, Shore MW, Cartmill RS, Ostlie DJ, Leys CM, et al. Diagnostic performance of standardized ultrasound protocol for detecting perforation in pediatric appendicitis. Pediatr Radiol. 2019;49(13):1726-34.<br />20.Kim HY, Park JH, Lee SS, Jeon JJ, Yoon CJ, Lee KH. Differentiation between complicated and uncomplicated appendicitis: diagnostic model development and validation study. Abdom Radiol (NY). 2020.<br />21.Carpenter JL, Orth RC, Zhang W, Lopez ME, Mangona KL, Guillerman RP. Diagnostic Performance of US for Differentiating Perforated from Nonperforated Pediatric Appendicitis: A Prospective Cohort Study. Radiology. 2017;282(3):835-41.]]></itunes:summary><itunes:duration>376</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Update on Appendicitis</title><link>https://www.spreaker.com/episode/update-on-appendicitis--41111248</link><description><![CDATA[References<br />1.Wagner M, Tubre DJ, Asensio JA. Evolution and Current Trends in the Management of Acute Appendicitis. Surg Clin North Am. 2018;98(5):1005-23.<br />2.Bhangu A, Soreide K, Di Saverio S, Assarsson JH, Drake FT. Acute appendicitis: modern understanding of pathogenesis, diagnosis, and management. Lancet. 2015;386(10000):1278-87.<br />3.Birnbaum BA, Wilson SR. Appendicitis at the millennium. Radiology. 2000;215(2):337-48.<br />4.Radiology ACo. ACR Appropriateness Criteria®<br />Suspected Appendicitis–Child. 2018.<br />5.CC G. Overview and Diagnosis of Acute Appendicitis in Children. Semin Ped Surg. 2016.<br />6.Swenson DW, Ayyala RS, Sams C, Lee EY. Practical Imaging Strategies for Acute Appendicitis in Children. AJR Am J Roentgenol. 2018;211(4):901-9.<br />7.Penticuff R, Jeffrey RB, Olcott EW. Hyperechoic Periappendiceal Fat: Evaluation of Criteria for Improving Specificity in the Sonographic Diagnosis of Appendicitis in Pediatric Patients. J Ultrasound Med. 2020.<br />8.Ilyas M, Ahmad Z, Parry AH. Target sign: appendicitis. Abdom Radiol (NY). 2019;44(1):379-80.<br />9.Xu Y, Jeffrey RB, Chang ST, DiMaio MA, Olcott EW. Sonographic Differentiation of Complicated From Uncomplicated Appendicitis: Implications for Antibiotics-First Therapy. J Ultrasound Med. 2017;36(2):269-77.<br />10.Telesmanich ME, Orth RC, Zhang W, Lopez ME, Carpenter JL, Mahmood N, et al. Searching for certainty: findings predictive of appendicitis in equivocal ultrasound exams. Pediatr Radiol. 2016;46(11):1539-45.<br />11.Repplinger MD, Pickhardt PJ, Robbins JB, Kitchin DR, Ziemlewicz TJ, Hetzel SJ, et al. Prospective Comparison of the Diagnostic Accuracy of MR Imaging versus CT for Acute Appendicitis. Radiology. 2018;288(2):467-75.<br />12.Mushtaq R, Desoky SM, Morello F, Gilbertson-Dahdal D, Gopalakrishnan G, Leetch A, et al. First-Line Diagnostic Evaluation with MRI of Children Suspected of Having Acute Appendicitis. Radiology. 2019;291(1):170-7.<br />13.Wi SA, Kim DJ, Cho ES, Kim KA. Diagnostic performance of MRI for pregnant patients with clinically suspected appendicitis. Abdom Radiol (NY). 2018;43(12):3456-61.<br />14.Kinner S, Pickhardt PJ, Riedesel EL, Gill KG, Robbins JB, Kitchin DR, et al. Diagnostic Accuracy of MRI Versus CT for the Evaluation of Acute Appendicitis in Children and Young Adults. AJR Am J Roentgenol. 2017;209(4):911-9.<br />15.Horrow MM, White DS, Horrow JC. Differentiation of perforated from nonperforated appendicitis at CT. Radiology. 2003;227(1):46-51.<br />16.Foley WD. CT Features for Complicated versus Uncomplicated Appendicitis: What Is the Evidence? Radiology. 2018;287(1):116-8.<br />17.HY K. Analysis of cT Features for Differentiating complicated and Uncomplicated appendicitis. Radiology. 2017.<br />18.Kim HY, Park JH, Lee YJ, Lee SS, Jeon JJ, Lee KH. Systematic Review and Meta-Analysis of CT Features for Differentiating Complicated and Uncomplicated Appendicitis. Radiology. 2018;287(1):104-15.<br />19.Riedesel EL, Weber BC, Shore MW, Cartmill RS, Ostlie DJ, Leys CM, et al. Diagnostic performance of standardized ultrasound protocol for detecting perforation in pediatric appendicitis. Pediatr Radiol. 2019;49(13):1726-34.<br />20.Kim HY, Park JH, Lee SS, Jeon JJ, Yoon CJ, Lee KH. Differentiation between complicated and uncomplicated appendicitis: diagnostic model development and validation study. Abdom Radiol (NY). 2020.<br />21.Carpenter JL, Orth RC, Zhang W, Lopez ME, Mangona KL, Guillerman RP. Diagnostic Performance of US for Differentiating Perforated from Nonperforated Pediatric Appendicitis: A Prospective Cohort Study. Radiology. 2017;282(3):835-41.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41111248</guid><pubDate>Fri, 25 Sep 2020 02:19:16 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41111248/update_on_appendicitis.mp3" length="3012570" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References
1.Wagner M, Tubre DJ, Asensio JA. Evolution and Current Trends in the Management of Acute Appendicitis. Surg Clin North Am. 2018;98(5):1005-23.
2.Bhangu A, Soreide K, Di Saverio S, Assarsson JH, Drake FT. Acute appendicitis: modern...</itunes:subtitle><itunes:summary><![CDATA[References<br />1.Wagner M, Tubre DJ, Asensio JA. Evolution and Current Trends in the Management of Acute Appendicitis. Surg Clin North Am. 2018;98(5):1005-23.<br />2.Bhangu A, Soreide K, Di Saverio S, Assarsson JH, Drake FT. Acute appendicitis: modern understanding of pathogenesis, diagnosis, and management. Lancet. 2015;386(10000):1278-87.<br />3.Birnbaum BA, Wilson SR. Appendicitis at the millennium. Radiology. 2000;215(2):337-48.<br />4.Radiology ACo. ACR Appropriateness Criteria®<br />Suspected Appendicitis–Child. 2018.<br />5.CC G. Overview and Diagnosis of Acute Appendicitis in Children. Semin Ped Surg. 2016.<br />6.Swenson DW, Ayyala RS, Sams C, Lee EY. Practical Imaging Strategies for Acute Appendicitis in Children. AJR Am J Roentgenol. 2018;211(4):901-9.<br />7.Penticuff R, Jeffrey RB, Olcott EW. Hyperechoic Periappendiceal Fat: Evaluation of Criteria for Improving Specificity in the Sonographic Diagnosis of Appendicitis in Pediatric Patients. J Ultrasound Med. 2020.<br />8.Ilyas M, Ahmad Z, Parry AH. Target sign: appendicitis. Abdom Radiol (NY). 2019;44(1):379-80.<br />9.Xu Y, Jeffrey RB, Chang ST, DiMaio MA, Olcott EW. Sonographic Differentiation of Complicated From Uncomplicated Appendicitis: Implications for Antibiotics-First Therapy. J Ultrasound Med. 2017;36(2):269-77.<br />10.Telesmanich ME, Orth RC, Zhang W, Lopez ME, Carpenter JL, Mahmood N, et al. Searching for certainty: findings predictive of appendicitis in equivocal ultrasound exams. Pediatr Radiol. 2016;46(11):1539-45.<br />11.Repplinger MD, Pickhardt PJ, Robbins JB, Kitchin DR, Ziemlewicz TJ, Hetzel SJ, et al. Prospective Comparison of the Diagnostic Accuracy of MR Imaging versus CT for Acute Appendicitis. Radiology. 2018;288(2):467-75.<br />12.Mushtaq R, Desoky SM, Morello F, Gilbertson-Dahdal D, Gopalakrishnan G, Leetch A, et al. First-Line Diagnostic Evaluation with MRI of Children Suspected of Having Acute Appendicitis. Radiology. 2019;291(1):170-7.<br />13.Wi SA, Kim DJ, Cho ES, Kim KA. Diagnostic performance of MRI for pregnant patients with clinically suspected appendicitis. Abdom Radiol (NY). 2018;43(12):3456-61.<br />14.Kinner S, Pickhardt PJ, Riedesel EL, Gill KG, Robbins JB, Kitchin DR, et al. Diagnostic Accuracy of MRI Versus CT for the Evaluation of Acute Appendicitis in Children and Young Adults. AJR Am J Roentgenol. 2017;209(4):911-9.<br />15.Horrow MM, White DS, Horrow JC. Differentiation of perforated from nonperforated appendicitis at CT. Radiology. 2003;227(1):46-51.<br />16.Foley WD. CT Features for Complicated versus Uncomplicated Appendicitis: What Is the Evidence? Radiology. 2018;287(1):116-8.<br />17.HY K. Analysis of cT Features for Differentiating complicated and Uncomplicated appendicitis. Radiology. 2017.<br />18.Kim HY, Park JH, Lee YJ, Lee SS, Jeon JJ, Lee KH. Systematic Review and Meta-Analysis of CT Features for Differentiating Complicated and Uncomplicated Appendicitis. Radiology. 2018;287(1):104-15.<br />19.Riedesel EL, Weber BC, Shore MW, Cartmill RS, Ostlie DJ, Leys CM, et al. Diagnostic performance of standardized ultrasound protocol for detecting perforation in pediatric appendicitis. Pediatr Radiol. 2019;49(13):1726-34.<br />20.Kim HY, Park JH, Lee SS, Jeon JJ, Yoon CJ, Lee KH. Differentiation between complicated and uncomplicated appendicitis: diagnostic model development and validation study. Abdom Radiol (NY). 2020.<br />21.Carpenter JL, Orth RC, Zhang W, Lopez ME, Mangona KL, Guillerman RP. Diagnostic Performance of US for Differentiating Perforated from Nonperforated Pediatric Appendicitis: A Prospective Cohort Study. Radiology. 2017;282(3):835-41.]]></itunes:summary><itunes:duration>503</itunes:duration><itunes:keywords>appendicitis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Degernative disease of the spine (instability and MRI)</title><link>https://www.spreaker.com/episode/degernative-disease-of-the-spine-instability-and-mri--41028211</link><description><![CDATA[References <br />1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.<br />2. Lotz JC, Haughton V, Boden SD, An HS, Kang JD, Masuda K, et al. New treatments and imaging strategies in degenerative disease of the intervertebral disks. Radiology. 2012;264(1):6-19.<br />3. Theodorou DJ, Theodorou SJ, Kakitsubata S, Nabeshima K, Kakitsubata Y. Abnormal Conditions of the Diskovertebral Segment: MRI With Anatomic-Pathologic Correlation. AJR Am J Roentgenol. 2020;214(4):853-61.<br />4. HS K. Lumbar Degenerative Disease Part 1: Anatomy and Pathophysiology of Intervertebral Discogenic Pain and Radiofrequency Ablation of Basivertebral and Sinuvertebral Nerve Treatment for Chronic Discogenic Back Pain: A Prospective Case Series and Review of Literature. Int J Mol Sci. 2020;21:1483.<br />5. Hughes RJ, Saifuddin A. Numbering of lumbosacral transitional vertebrae on MRI: role of the iliolumbar ligaments. AJR Am J Roentgenol. 2006;187(1):W59-65.<br />6. K C. A Concise Introduction to the Imaging of the Lumbar Spine2016.<br />7. Fardon DF, Williams AL, Dohring EJ, Murtagh FR, Gabriel Rothman SL, Sze GK. Lumbar disc nomenclature: version 2.0: Recommendations of the combined task forces of the North American Spine Society, the American Society of Spine Radiology and the American Society of Neuroradiology. Spine J. 2014;14(11):2525-45.<br />8. Kushchayev SV, Glushko T, Jarraya M, Schuleri KH, Preul MC, Brooks ML, et al. ABCs of the degenerative spine. Insights Imaging. 2018;9(2):253-74.<br />9. Pfirrmann CW, Metzdorf A, Zanetti M, Hodler J, Boos N. Magnetic resonance classification of lumbar intervertebral disc degeneration. Spine (Phila Pa 1976). 2001;26(17):1873-8.<br />10. M B. MRI Degenerative Disease of the Lumbar Spine. J Am Osteopath Coll Radiol. 2018.<br />11. Yu LP, Qian WW, Yin GY, Ren YX, Hu ZY. MRI assessment of lumbar intervertebral disc degeneration with lumbar degenerative disease using the Pfirrmann grading systems. PLoS One. 2012;7(12):e48074.<br />12. KS T. Imaging of Spinal Stenosis. Applied Radiology. 2017.<br />13. Carlson BB, Albert TJ. Lumbar disc herniation: what has the Spine Patient Outcomes Research Trial taught us? Int Orthop. 2019;43(4):853-9.<br />14. Pfirrmann CW, Dora C, Schmid MR, Zanetti M, Hodler J, Boos N. MR image-based grading of lumbar nerve root compromise due to disk herniation: reliability study with surgical correlation. Radiology. 2004;230(2):583-8.<br />15. Gallucci M, Puglielli E, Splendiani A, Pistoia F, Spacca G. Degenerative disorders of the spine. Eur Radiol. 2005;15(3):591-8.<br />16. Mamisch N, Brumann M, Hodler J, Held U, Brunner F, Steurer J, et al. Radiologic criteria for the diagnosis of spinal stenosis: results of a Delphi survey. Radiology. 2012;264(1):174-9.<br />17. N H. The "ABCDE" Approach to the Systematic Assessment of Lumbar Spine MR Examination. CDR. 2020.<br />18. Zileli M, Crostelli M, Grimaldi M, Mazza O, Anania C, Fornari M, et al. Natural Course and Diagnosis of Lumbar Spinal Stenosis: WFNS Spine Committee Recommendations. World Neurosurg X. 2020;7:100073.<br />19. Cho IY, Park SY, Park JH, Suh SW, Lee SH. MRI findings of lumbar spine instability in degenerative spondylolisthesis. J Orthop Surg (Hong Kong). 2017;25(2):2309499017718907.<br />20. Semaan H, Curnutte B, Cooper M, Obri J, Elsamaloty M, Obri T, et al. Overreporting of the disc herniation in lumbar spine MRI scans performed for patients with spondylolisthesis. Acta Radiol. 2020:284185120925483.<br />21. GC G. Lumbar Spine Imaging: MRI. 2017.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41028211</guid><pubDate>Sun, 20 Sep 2020 22:07:01 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41028211/degernative_disease_of_the_spine_instability_and_mri.mp3" length="1786122" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References 
1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.
2. Lotz JC, Haughton V,...</itunes:subtitle><itunes:summary><![CDATA[References <br />1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.<br />2. Lotz JC, Haughton V, Boden SD, An HS, Kang JD, Masuda K, et al. New treatments and imaging strategies in degenerative disease of the intervertebral disks. Radiology. 2012;264(1):6-19.<br />3. Theodorou DJ, Theodorou SJ, Kakitsubata S, Nabeshima K, Kakitsubata Y. Abnormal Conditions of the Diskovertebral Segment: MRI With Anatomic-Pathologic Correlation. AJR Am J Roentgenol. 2020;214(4):853-61.<br />4. HS K. Lumbar Degenerative Disease Part 1: Anatomy and Pathophysiology of Intervertebral Discogenic Pain and Radiofrequency Ablation of Basivertebral and Sinuvertebral Nerve Treatment for Chronic Discogenic Back Pain: A Prospective Case Series and Review of Literature. Int J Mol Sci. 2020;21:1483.<br />5. Hughes RJ, Saifuddin A. Numbering of lumbosacral transitional vertebrae on MRI: role of the iliolumbar ligaments. AJR Am J Roentgenol. 2006;187(1):W59-65.<br />6. K C. A Concise Introduction to the Imaging of the Lumbar Spine2016.<br />7. Fardon DF, Williams AL, Dohring EJ, Murtagh FR, Gabriel Rothman SL, Sze GK. Lumbar disc nomenclature: version 2.0: Recommendations of the combined task forces of the North American Spine Society, the American Society of Spine Radiology and the American Society of Neuroradiology. Spine J. 2014;14(11):2525-45.<br />8. Kushchayev SV, Glushko T, Jarraya M, Schuleri KH, Preul MC, Brooks ML, et al. ABCs of the degenerative spine. Insights Imaging. 2018;9(2):253-74.<br />9. Pfirrmann CW, Metzdorf A, Zanetti M, Hodler J, Boos N. Magnetic resonance classification of lumbar intervertebral disc degeneration. Spine (Phila Pa 1976). 2001;26(17):1873-8.<br />10. M B. MRI Degenerative Disease of the Lumbar Spine. J Am Osteopath Coll Radiol. 2018.<br />11. Yu LP, Qian WW, Yin GY, Ren YX, Hu ZY. MRI assessment of lumbar intervertebral disc degeneration with lumbar degenerative disease using the Pfirrmann grading systems. PLoS One. 2012;7(12):e48074.<br />12. KS T. Imaging of Spinal Stenosis. Applied Radiology. 2017.<br />13. Carlson BB, Albert TJ. Lumbar disc herniation: what has the Spine Patient Outcomes Research Trial taught us? Int Orthop. 2019;43(4):853-9.<br />14. Pfirrmann CW, Dora C, Schmid MR, Zanetti M, Hodler J, Boos N. MR image-based grading of lumbar nerve root compromise due to disk herniation: reliability study with surgical correlation. Radiology. 2004;230(2):583-8.<br />15. Gallucci M, Puglielli E, Splendiani A, Pistoia F, Spacca G. Degenerative disorders of the spine. Eur Radiol. 2005;15(3):591-8.<br />16. Mamisch N, Brumann M, Hodler J, Held U, Brunner F, Steurer J, et al. Radiologic criteria for the diagnosis of spinal stenosis: results of a Delphi survey. Radiology. 2012;264(1):174-9.<br />17. N H. The "ABCDE" Approach to the Systematic Assessment of Lumbar Spine MR Examination. CDR. 2020.<br />18. Zileli M, Crostelli M, Grimaldi M, Mazza O, Anania C, Fornari M, et al. Natural Course and Diagnosis of Lumbar Spinal Stenosis: WFNS Spine Committee Recommendations. World Neurosurg X. 2020;7:100073.<br />19. Cho IY, Park SY, Park JH, Suh SW, Lee SH. MRI findings of lumbar spine instability in degenerative spondylolisthesis. J Orthop Surg (Hong Kong). 2017;25(2):2309499017718907.<br />20. Semaan H, Curnutte B, Cooper M, Obri J, Elsamaloty M, Obri T, et al. Overreporting of the disc herniation in lumbar spine MRI scans performed for patients with spondylolisthesis. Acta Radiol. 2020:284185120925483.<br />21. GC G. Lumbar Spine Imaging: MRI. 2017.]]></itunes:summary><itunes:duration>298</itunes:duration><itunes:keywords>instability,spine</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Degenerative disease of the spine (disc displacement and spinal stenosis)</title><link>https://www.spreaker.com/episode/degenerative-disease-of-the-spine-disc-displacement-and-spinal-stenosis--41027897</link><description><![CDATA[References <br />1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.<br />2. Lotz JC, Haughton V, Boden SD, An HS, Kang JD, Masuda K, et al. New treatments and imaging strategies in degenerative disease of the intervertebral disks. Radiology. 2012;264(1):6-19.<br />3. Theodorou DJ, Theodorou SJ, Kakitsubata S, Nabeshima K, Kakitsubata Y. Abnormal Conditions of the Diskovertebral Segment: MRI With Anatomic-Pathologic Correlation. AJR Am J Roentgenol. 2020;214(4):853-61.<br />4. HS K. Lumbar Degenerative Disease Part 1: Anatomy and Pathophysiology of Intervertebral Discogenic Pain and Radiofrequency Ablation of Basivertebral and Sinuvertebral Nerve Treatment for Chronic Discogenic Back Pain: A Prospective Case Series and Review of Literature. Int J Mol Sci. 2020;21:1483.<br />5. Hughes RJ, Saifuddin A. Numbering of lumbosacral transitional vertebrae on MRI: role of the iliolumbar ligaments. AJR Am J Roentgenol. 2006;187(1):W59-65.<br />6. K C. A Concise Introduction to the Imaging of the Lumbar Spine2016.<br />7. Fardon DF, Williams AL, Dohring EJ, Murtagh FR, Gabriel Rothman SL, Sze GK. Lumbar disc nomenclature: version 2.0: Recommendations of the combined task forces of the North American Spine Society, the American Society of Spine Radiology and the American Society of Neuroradiology. Spine J. 2014;14(11):2525-45.<br />8. Kushchayev SV, Glushko T, Jarraya M, Schuleri KH, Preul MC, Brooks ML, et al. ABCs of the degenerative spine. Insights Imaging. 2018;9(2):253-74.<br />9. Pfirrmann CW, Metzdorf A, Zanetti M, Hodler J, Boos N. Magnetic resonance classification of lumbar intervertebral disc degeneration. Spine (Phila Pa 1976). 2001;26(17):1873-8.<br />10. M B. MRI Degenerative Disease of the Lumbar Spine. J Am Osteopath Coll Radiol. 2018.<br />11. Yu LP, Qian WW, Yin GY, Ren YX, Hu ZY. MRI assessment of lumbar intervertebral disc degeneration with lumbar degenerative disease using the Pfirrmann grading systems. PLoS One. 2012;7(12):e48074.<br />12. KS T. Imaging of Spinal Stenosis. Applied Radiology. 2017.<br />13. Carlson BB, Albert TJ. Lumbar disc herniation: what has the Spine Patient Outcomes Research Trial taught us? Int Orthop. 2019;43(4):853-9.<br />14. Pfirrmann CW, Dora C, Schmid MR, Zanetti M, Hodler J, Boos N. MR image-based grading of lumbar nerve root compromise due to disk herniation: reliability study with surgical correlation. Radiology. 2004;230(2):583-8.<br />15. Gallucci M, Puglielli E, Splendiani A, Pistoia F, Spacca G. Degenerative disorders of the spine. Eur Radiol. 2005;15(3):591-8.<br />16. Mamisch N, Brumann M, Hodler J, Held U, Brunner F, Steurer J, et al. Radiologic criteria for the diagnosis of spinal stenosis: results of a Delphi survey. Radiology. 2012;264(1):174-9.<br />17. N H. The "ABCDE" Approach to the Systematic Assessment of Lumbar Spine MR Examination. CDR. 2020.<br />18. Zileli M, Crostelli M, Grimaldi M, Mazza O, Anania C, Fornari M, et al. Natural Course and Diagnosis of Lumbar Spinal Stenosis: WFNS Spine Committee Recommendations. World Neurosurg X. 2020;7:100073.<br />19. Cho IY, Park SY, Park JH, Suh SW, Lee SH. MRI findings of lumbar spine instability in degenerative spondylolisthesis. J Orthop Surg (Hong Kong). 2017;25(2):2309499017718907.<br />20. Semaan H, Curnutte B, Cooper M, Obri J, Elsamaloty M, Obri T, et al. Overreporting of the disc herniation in lumbar spine MRI scans performed for patients with spondylolisthesis. Acta Radiol. 2020:284185120925483.<br />21. GC G. Lumbar Spine Imaging: MRI. 2017.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41027897</guid><pubDate>Sun, 20 Sep 2020 21:41:26 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41027897/degenerative_disease_of_the_spine_disc_displacement_and_spinal_stenosis.mp3" length="2792727" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References 
1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.
2. Lotz JC, Haughton V,...</itunes:subtitle><itunes:summary><![CDATA[References <br />1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.<br />2. Lotz JC, Haughton V, Boden SD, An HS, Kang JD, Masuda K, et al. New treatments and imaging strategies in degenerative disease of the intervertebral disks. Radiology. 2012;264(1):6-19.<br />3. Theodorou DJ, Theodorou SJ, Kakitsubata S, Nabeshima K, Kakitsubata Y. Abnormal Conditions of the Diskovertebral Segment: MRI With Anatomic-Pathologic Correlation. AJR Am J Roentgenol. 2020;214(4):853-61.<br />4. HS K. Lumbar Degenerative Disease Part 1: Anatomy and Pathophysiology of Intervertebral Discogenic Pain and Radiofrequency Ablation of Basivertebral and Sinuvertebral Nerve Treatment for Chronic Discogenic Back Pain: A Prospective Case Series and Review of Literature. Int J Mol Sci. 2020;21:1483.<br />5. Hughes RJ, Saifuddin A. Numbering of lumbosacral transitional vertebrae on MRI: role of the iliolumbar ligaments. AJR Am J Roentgenol. 2006;187(1):W59-65.<br />6. K C. A Concise Introduction to the Imaging of the Lumbar Spine2016.<br />7. Fardon DF, Williams AL, Dohring EJ, Murtagh FR, Gabriel Rothman SL, Sze GK. Lumbar disc nomenclature: version 2.0: Recommendations of the combined task forces of the North American Spine Society, the American Society of Spine Radiology and the American Society of Neuroradiology. Spine J. 2014;14(11):2525-45.<br />8. Kushchayev SV, Glushko T, Jarraya M, Schuleri KH, Preul MC, Brooks ML, et al. ABCs of the degenerative spine. Insights Imaging. 2018;9(2):253-74.<br />9. Pfirrmann CW, Metzdorf A, Zanetti M, Hodler J, Boos N. Magnetic resonance classification of lumbar intervertebral disc degeneration. Spine (Phila Pa 1976). 2001;26(17):1873-8.<br />10. M B. MRI Degenerative Disease of the Lumbar Spine. J Am Osteopath Coll Radiol. 2018.<br />11. Yu LP, Qian WW, Yin GY, Ren YX, Hu ZY. MRI assessment of lumbar intervertebral disc degeneration with lumbar degenerative disease using the Pfirrmann grading systems. PLoS One. 2012;7(12):e48074.<br />12. KS T. Imaging of Spinal Stenosis. Applied Radiology. 2017.<br />13. Carlson BB, Albert TJ. Lumbar disc herniation: what has the Spine Patient Outcomes Research Trial taught us? Int Orthop. 2019;43(4):853-9.<br />14. Pfirrmann CW, Dora C, Schmid MR, Zanetti M, Hodler J, Boos N. MR image-based grading of lumbar nerve root compromise due to disk herniation: reliability study with surgical correlation. Radiology. 2004;230(2):583-8.<br />15. Gallucci M, Puglielli E, Splendiani A, Pistoia F, Spacca G. Degenerative disorders of the spine. Eur Radiol. 2005;15(3):591-8.<br />16. Mamisch N, Brumann M, Hodler J, Held U, Brunner F, Steurer J, et al. Radiologic criteria for the diagnosis of spinal stenosis: results of a Delphi survey. Radiology. 2012;264(1):174-9.<br />17. N H. The "ABCDE" Approach to the Systematic Assessment of Lumbar Spine MR Examination. CDR. 2020.<br />18. Zileli M, Crostelli M, Grimaldi M, Mazza O, Anania C, Fornari M, et al. Natural Course and Diagnosis of Lumbar Spinal Stenosis: WFNS Spine Committee Recommendations. World Neurosurg X. 2020;7:100073.<br />19. Cho IY, Park SY, Park JH, Suh SW, Lee SH. MRI findings of lumbar spine instability in degenerative spondylolisthesis. J Orthop Surg (Hong Kong). 2017;25(2):2309499017718907.<br />20. Semaan H, Curnutte B, Cooper M, Obri J, Elsamaloty M, Obri T, et al. Overreporting of the disc herniation in lumbar spine MRI scans performed for patients with spondylolisthesis. Acta Radiol. 2020:284185120925483.<br />21. GC G. Lumbar Spine Imaging: MRI. 2017.]]></itunes:summary><itunes:duration>466</itunes:duration><itunes:keywords>extrusion,herniation,protrusion,spine</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Degenerative Disease of the Spine (basic science and disc degeneration and vertebral endplate alterations)</title><link>https://www.spreaker.com/episode/degenerative-disease-of-the-spine-basic-science-and-disc-degeneration-and-vertebral-endplate-alterations--41027447</link><description><![CDATA[References <br />1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.<br />2. Lotz JC, Haughton V, Boden SD, An HS, Kang JD, Masuda K, et al. New treatments and imaging strategies in degenerative disease of the intervertebral disks. Radiology. 2012;264(1):6-19.<br />3. Theodorou DJ, Theodorou SJ, Kakitsubata S, Nabeshima K, Kakitsubata Y. Abnormal Conditions of the Diskovertebral Segment: MRI With Anatomic-Pathologic Correlation. AJR Am J Roentgenol. 2020;214(4):853-61.<br />4. HS K. Lumbar Degenerative Disease Part 1: Anatomy and Pathophysiology of Intervertebral Discogenic Pain and Radiofrequency Ablation of Basivertebral and Sinuvertebral Nerve Treatment for Chronic Discogenic Back Pain: A Prospective Case Series and Review of Literature. Int J Mol Sci. 2020;21:1483.<br />5. Hughes RJ, Saifuddin A. Numbering of lumbosacral transitional vertebrae on MRI: role of the iliolumbar ligaments. AJR Am J Roentgenol. 2006;187(1):W59-65.<br />6. K C. A Concise Introduction to the Imaging of the Lumbar Spine2016.<br />7. Fardon DF, Williams AL, Dohring EJ, Murtagh FR, Gabriel Rothman SL, Sze GK. Lumbar disc nomenclature: version 2.0: Recommendations of the combined task forces of the North American Spine Society, the American Society of Spine Radiology and the American Society of Neuroradiology. Spine J. 2014;14(11):2525-45.<br />8. Kushchayev SV, Glushko T, Jarraya M, Schuleri KH, Preul MC, Brooks ML, et al. ABCs of the degenerative spine. Insights Imaging. 2018;9(2):253-74.<br />9. Pfirrmann CW, Metzdorf A, Zanetti M, Hodler J, Boos N. Magnetic resonance classification of lumbar intervertebral disc degeneration. Spine (Phila Pa 1976). 2001;26(17):1873-8.<br />10. M B. MRI Degenerative Disease of the Lumbar Spine. J Am Osteopath Coll Radiol. 2018.<br />11. Yu LP, Qian WW, Yin GY, Ren YX, Hu ZY. MRI assessment of lumbar intervertebral disc degeneration with lumbar degenerative disease using the Pfirrmann grading systems. PLoS One. 2012;7(12):e48074.<br />12. KS T. Imaging of Spinal Stenosis. Applied Radiology. 2017.<br />13. Carlson BB, Albert TJ. Lumbar disc herniation: what has the Spine Patient Outcomes Research Trial taught us? Int Orthop. 2019;43(4):853-9.<br />14. Pfirrmann CW, Dora C, Schmid MR, Zanetti M, Hodler J, Boos N. MR image-based grading of lumbar nerve root compromise due to disk herniation: reliability study with surgical correlation. Radiology. 2004;230(2):583-8.<br />15. Gallucci M, Puglielli E, Splendiani A, Pistoia F, Spacca G. Degenerative disorders of the spine. Eur Radiol. 2005;15(3):591-8.<br />16. Mamisch N, Brumann M, Hodler J, Held U, Brunner F, Steurer J, et al. Radiologic criteria for the diagnosis of spinal stenosis: results of a Delphi survey. Radiology. 2012;264(1):174-9.<br />17. N H. The "ABCDE" Approach to the Systematic Assessment of Lumbar Spine MR Examination. CDR. 2020.<br />18. Zileli M, Crostelli M, Grimaldi M, Mazza O, Anania C, Fornari M, et al. Natural Course and Diagnosis of Lumbar Spinal Stenosis: WFNS Spine Committee Recommendations. World Neurosurg X. 2020;7:100073.<br />19. Cho IY, Park SY, Park JH, Suh SW, Lee SH. MRI findings of lumbar spine instability in degenerative spondylolisthesis. J Orthop Surg (Hong Kong). 2017;25(2):2309499017718907.<br />20. Semaan H, Curnutte B, Cooper M, Obri J, Elsamaloty M, Obri T, et al. Overreporting of the disc herniation in lumbar spine MRI scans performed for patients with spondylolisthesis. Acta Radiol. 2020:284185120925483.<br />21. GC G. Lumbar Spine Imaging: MRI. 2017.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41027447</guid><pubDate>Sun, 20 Sep 2020 20:49:37 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41027447/degenerative_disease_of_the_spine_basic_science_and_disc_degeneration_and_vertebral_endplate_alterations.mp3" length="2584359" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References 
1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.
2. Lotz JC, Haughton V,...</itunes:subtitle><itunes:summary><![CDATA[References <br />1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.<br />2. Lotz JC, Haughton V, Boden SD, An HS, Kang JD, Masuda K, et al. New treatments and imaging strategies in degenerative disease of the intervertebral disks. Radiology. 2012;264(1):6-19.<br />3. Theodorou DJ, Theodorou SJ, Kakitsubata S, Nabeshima K, Kakitsubata Y. Abnormal Conditions of the Diskovertebral Segment: MRI With Anatomic-Pathologic Correlation. AJR Am J Roentgenol. 2020;214(4):853-61.<br />4. HS K. Lumbar Degenerative Disease Part 1: Anatomy and Pathophysiology of Intervertebral Discogenic Pain and Radiofrequency Ablation of Basivertebral and Sinuvertebral Nerve Treatment for Chronic Discogenic Back Pain: A Prospective Case Series and Review of Literature. Int J Mol Sci. 2020;21:1483.<br />5. Hughes RJ, Saifuddin A. Numbering of lumbosacral transitional vertebrae on MRI: role of the iliolumbar ligaments. AJR Am J Roentgenol. 2006;187(1):W59-65.<br />6. K C. A Concise Introduction to the Imaging of the Lumbar Spine2016.<br />7. Fardon DF, Williams AL, Dohring EJ, Murtagh FR, Gabriel Rothman SL, Sze GK. Lumbar disc nomenclature: version 2.0: Recommendations of the combined task forces of the North American Spine Society, the American Society of Spine Radiology and the American Society of Neuroradiology. Spine J. 2014;14(11):2525-45.<br />8. Kushchayev SV, Glushko T, Jarraya M, Schuleri KH, Preul MC, Brooks ML, et al. ABCs of the degenerative spine. Insights Imaging. 2018;9(2):253-74.<br />9. Pfirrmann CW, Metzdorf A, Zanetti M, Hodler J, Boos N. Magnetic resonance classification of lumbar intervertebral disc degeneration. Spine (Phila Pa 1976). 2001;26(17):1873-8.<br />10. M B. MRI Degenerative Disease of the Lumbar Spine. J Am Osteopath Coll Radiol. 2018.<br />11. Yu LP, Qian WW, Yin GY, Ren YX, Hu ZY. MRI assessment of lumbar intervertebral disc degeneration with lumbar degenerative disease using the Pfirrmann grading systems. PLoS One. 2012;7(12):e48074.<br />12. KS T. Imaging of Spinal Stenosis. Applied Radiology. 2017.<br />13. Carlson BB, Albert TJ. Lumbar disc herniation: what has the Spine Patient Outcomes Research Trial taught us? Int Orthop. 2019;43(4):853-9.<br />14. Pfirrmann CW, Dora C, Schmid MR, Zanetti M, Hodler J, Boos N. MR image-based grading of lumbar nerve root compromise due to disk herniation: reliability study with surgical correlation. Radiology. 2004;230(2):583-8.<br />15. Gallucci M, Puglielli E, Splendiani A, Pistoia F, Spacca G. Degenerative disorders of the spine. Eur Radiol. 2005;15(3):591-8.<br />16. Mamisch N, Brumann M, Hodler J, Held U, Brunner F, Steurer J, et al. Radiologic criteria for the diagnosis of spinal stenosis: results of a Delphi survey. Radiology. 2012;264(1):174-9.<br />17. N H. The "ABCDE" Approach to the Systematic Assessment of Lumbar Spine MR Examination. CDR. 2020.<br />18. Zileli M, Crostelli M, Grimaldi M, Mazza O, Anania C, Fornari M, et al. Natural Course and Diagnosis of Lumbar Spinal Stenosis: WFNS Spine Committee Recommendations. World Neurosurg X. 2020;7:100073.<br />19. Cho IY, Park SY, Park JH, Suh SW, Lee SH. MRI findings of lumbar spine instability in degenerative spondylolisthesis. J Orthop Surg (Hong Kong). 2017;25(2):2309499017718907.<br />20. Semaan H, Curnutte B, Cooper M, Obri J, Elsamaloty M, Obri T, et al. Overreporting of the disc herniation in lumbar spine MRI scans performed for patients with spondylolisthesis. Acta Radiol. 2020:284185120925483.<br />21. GC G. Lumbar Spine Imaging: MRI. 2017.]]></itunes:summary><itunes:duration>431</itunes:duration><itunes:keywords>spine</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Degenerative Disease of the Spine (anatomy and types of degeneration)</title><link>https://www.spreaker.com/episode/degenerative-disease-of-the-spine-anatomy-and-types-of-degeneration--41026899</link><description><![CDATA[References <br />1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.<br />2. Lotz JC, Haughton V, Boden SD, An HS, Kang JD, Masuda K, et al. New treatments and imaging strategies in degenerative disease of the intervertebral disks. Radiology. 2012;264(1):6-19.<br />3. Theodorou DJ, Theodorou SJ, Kakitsubata S, Nabeshima K, Kakitsubata Y. Abnormal Conditions of the Diskovertebral Segment: MRI With Anatomic-Pathologic Correlation. AJR Am J Roentgenol. 2020;214(4):853-61.<br />4. HS K. Lumbar Degenerative Disease Part 1: Anatomy and Pathophysiology of Intervertebral Discogenic Pain and Radiofrequency Ablation of Basivertebral and Sinuvertebral Nerve Treatment for Chronic Discogenic Back Pain: A Prospective Case Series and Review of Literature. Int J Mol Sci. 2020;21:1483.<br />5. Hughes RJ, Saifuddin A. Numbering of lumbosacral transitional vertebrae on MRI: role of the iliolumbar ligaments. AJR Am J Roentgenol. 2006;187(1):W59-65.<br />6. K C. A Concise Introduction to the Imaging of the Lumbar Spine2016.<br />7. Fardon DF, Williams AL, Dohring EJ, Murtagh FR, Gabriel Rothman SL, Sze GK. Lumbar disc nomenclature: version 2.0: Recommendations of the combined task forces of the North American Spine Society, the American Society of Spine Radiology and the American Society of Neuroradiology. Spine J. 2014;14(11):2525-45.<br />8. Kushchayev SV, Glushko T, Jarraya M, Schuleri KH, Preul MC, Brooks ML, et al. ABCs of the degenerative spine. Insights Imaging. 2018;9(2):253-74.<br />9. Pfirrmann CW, Metzdorf A, Zanetti M, Hodler J, Boos N. Magnetic resonance classification of lumbar intervertebral disc degeneration. Spine (Phila Pa 1976). 2001;26(17):1873-8.<br />10. M B. MRI Degenerative Disease of the Lumbar Spine. J Am Osteopath Coll Radiol. 2018.<br />11. Yu LP, Qian WW, Yin GY, Ren YX, Hu ZY. MRI assessment of lumbar intervertebral disc degeneration with lumbar degenerative disease using the Pfirrmann grading systems. PLoS One. 2012;7(12):e48074.<br />12. KS T. Imaging of Spinal Stenosis. Applied Radiology. 2017.<br />13. Carlson BB, Albert TJ. Lumbar disc herniation: what has the Spine Patient Outcomes Research Trial taught us? Int Orthop. 2019;43(4):853-9.<br />14. Pfirrmann CW, Dora C, Schmid MR, Zanetti M, Hodler J, Boos N. MR image-based grading of lumbar nerve root compromise due to disk herniation: reliability study with surgical correlation. Radiology. 2004;230(2):583-8.<br />15. Gallucci M, Puglielli E, Splendiani A, Pistoia F, Spacca G. Degenerative disorders of the spine. Eur Radiol. 2005;15(3):591-8.<br />16. Mamisch N, Brumann M, Hodler J, Held U, Brunner F, Steurer J, et al. Radiologic criteria for the diagnosis of spinal stenosis: results of a Delphi survey. Radiology. 2012;264(1):174-9.<br />17. N H. The "ABCDE" Approach to the Systematic Assessment of Lumbar Spine MR Examination. CDR. 2020.<br />18. Zileli M, Crostelli M, Grimaldi M, Mazza O, Anania C, Fornari M, et al. Natural Course and Diagnosis of Lumbar Spinal Stenosis: WFNS Spine Committee Recommendations. World Neurosurg X. 2020;7:100073.<br />19. Cho IY, Park SY, Park JH, Suh SW, Lee SH. MRI findings of lumbar spine instability in degenerative spondylolisthesis. J Orthop Surg (Hong Kong). 2017;25(2):2309499017718907.<br />20. Semaan H, Curnutte B, Cooper M, Obri J, Elsamaloty M, Obri T, et al. Overreporting of the disc herniation in lumbar spine MRI scans performed for patients with spondylolisthesis. Acta Radiol. 2020:284185120925483.<br />21. GC G. Lumbar Spine Imaging: MRI. 2017.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/41026899</guid><pubDate>Sun, 20 Sep 2020 19:47:43 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/41026899/degenerative_disease_of_the_spine_anatomy_and_types_of_degeneration.mp3" length="1276317" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References 
1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.
2. Lotz JC, Haughton V,...</itunes:subtitle><itunes:summary><![CDATA[References <br />1. Ota Y, Connolly M, Srinivasan A, Kim J, Capizzano AA, Moritani T. Mechanisms and Origins of Spinal Pain: from Molecules to Anatomy, with Diagnostic Clues and Imaging Findings. Radiographics. 2020;40(4):1163-81.<br />2. Lotz JC, Haughton V, Boden SD, An HS, Kang JD, Masuda K, et al. New treatments and imaging strategies in degenerative disease of the intervertebral disks. Radiology. 2012;264(1):6-19.<br />3. Theodorou DJ, Theodorou SJ, Kakitsubata S, Nabeshima K, Kakitsubata Y. Abnormal Conditions of the Diskovertebral Segment: MRI With Anatomic-Pathologic Correlation. AJR Am J Roentgenol. 2020;214(4):853-61.<br />4. HS K. Lumbar Degenerative Disease Part 1: Anatomy and Pathophysiology of Intervertebral Discogenic Pain and Radiofrequency Ablation of Basivertebral and Sinuvertebral Nerve Treatment for Chronic Discogenic Back Pain: A Prospective Case Series and Review of Literature. Int J Mol Sci. 2020;21:1483.<br />5. Hughes RJ, Saifuddin A. Numbering of lumbosacral transitional vertebrae on MRI: role of the iliolumbar ligaments. AJR Am J Roentgenol. 2006;187(1):W59-65.<br />6. K C. A Concise Introduction to the Imaging of the Lumbar Spine2016.<br />7. Fardon DF, Williams AL, Dohring EJ, Murtagh FR, Gabriel Rothman SL, Sze GK. Lumbar disc nomenclature: version 2.0: Recommendations of the combined task forces of the North American Spine Society, the American Society of Spine Radiology and the American Society of Neuroradiology. Spine J. 2014;14(11):2525-45.<br />8. Kushchayev SV, Glushko T, Jarraya M, Schuleri KH, Preul MC, Brooks ML, et al. ABCs of the degenerative spine. Insights Imaging. 2018;9(2):253-74.<br />9. Pfirrmann CW, Metzdorf A, Zanetti M, Hodler J, Boos N. Magnetic resonance classification of lumbar intervertebral disc degeneration. Spine (Phila Pa 1976). 2001;26(17):1873-8.<br />10. M B. MRI Degenerative Disease of the Lumbar Spine. J Am Osteopath Coll Radiol. 2018.<br />11. Yu LP, Qian WW, Yin GY, Ren YX, Hu ZY. MRI assessment of lumbar intervertebral disc degeneration with lumbar degenerative disease using the Pfirrmann grading systems. PLoS One. 2012;7(12):e48074.<br />12. KS T. Imaging of Spinal Stenosis. Applied Radiology. 2017.<br />13. Carlson BB, Albert TJ. Lumbar disc herniation: what has the Spine Patient Outcomes Research Trial taught us? Int Orthop. 2019;43(4):853-9.<br />14. Pfirrmann CW, Dora C, Schmid MR, Zanetti M, Hodler J, Boos N. MR image-based grading of lumbar nerve root compromise due to disk herniation: reliability study with surgical correlation. Radiology. 2004;230(2):583-8.<br />15. Gallucci M, Puglielli E, Splendiani A, Pistoia F, Spacca G. Degenerative disorders of the spine. Eur Radiol. 2005;15(3):591-8.<br />16. Mamisch N, Brumann M, Hodler J, Held U, Brunner F, Steurer J, et al. Radiologic criteria for the diagnosis of spinal stenosis: results of a Delphi survey. Radiology. 2012;264(1):174-9.<br />17. N H. The "ABCDE" Approach to the Systematic Assessment of Lumbar Spine MR Examination. CDR. 2020.<br />18. Zileli M, Crostelli M, Grimaldi M, Mazza O, Anania C, Fornari M, et al. Natural Course and Diagnosis of Lumbar Spinal Stenosis: WFNS Spine Committee Recommendations. World Neurosurg X. 2020;7:100073.<br />19. Cho IY, Park SY, Park JH, Suh SW, Lee SH. MRI findings of lumbar spine instability in degenerative spondylolisthesis. J Orthop Surg (Hong Kong). 2017;25(2):2309499017718907.<br />20. Semaan H, Curnutte B, Cooper M, Obri J, Elsamaloty M, Obri T, et al. Overreporting of the disc herniation in lumbar spine MRI scans performed for patients with spondylolisthesis. Acta Radiol. 2020:284185120925483.<br />21. GC G. Lumbar Spine Imaging: MRI. 2017.]]></itunes:summary><itunes:duration>213</itunes:duration><itunes:keywords>spine</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Menisci (Compex, Radial, Root Tears, Flaps, Fraying and Indirect Signs of Tears)</title><link>https://www.spreaker.com/episode/menisci-compex-radial-root-tears-flaps-fraying-and-indirect-signs-of-tears--40868271</link><description><![CDATA[REFERENCES<br />1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.<br />2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy. 2000;16(6):11.<br />3.Fox AJ, Bedi A, Rodeo SA. The basic science of human knee menisci: structure, composition, and function. Sports Health. 2012;4(4):340-51.<br />4.JM L. The Meniscus: Basic Science and Clinical Applications. 2000.<br />5.Wadhwa V, Omar H, Coyner K, Khazzam M, Robertson W, Chhabra A. ISAKOS classification of meniscal tears-illustration on 2D and 3D isotropic spin echo MR imaging. Eur J Radiol. 2016;85(1):15-24.<br />6.Ariyachaipanich A, Kaya E, Statum S, Biswas R, Tran B, Bae WC, et al. MR imaging pattern of tibial subchondral bone structure: considerations of meniscal coverage and integrity. Skeletal Radiol. 2020.<br />7.Bhan K. Meniscal Tears: Current Understanding, Diagnosis, and Management. Cureus. 2020;12(6):e8590.<br />8.Greis PE, Bardana DD, Holmstrom MC, Burks RT. Meniscal injury: I. Basic science and evaluation. J Am Acad Orthop Surg. 2002;10(3):168-76.<br />9.Brindle T, Nyland J, Johnson DL. The meniscus: review of basic principles with application to surgery and rehabilitation. J Athl Train. 2001;36(2):160-9.<br />10.Rosas HG. Magnetic resonance imaging of the meniscus. Magn Reson Imaging Clin N Am. 2014;22(4):493-516.<br />11.Mohankumar R, White LM, Naraghi A. Pitfalls and pearls in MRI of the knee. AJR Am J Roentgenol. 2014;203(3):516-30.<br />12.De Smet AA. How I diagnose meniscal tears on knee MRI. AJR Am J Roentgenol. 2012;199(3):481-99.<br />13.Nguyen JC, De Smet AA, Graf BK, Rosas HG. MR imaging-based diagnosis and classification of meniscal tears. Radiographics. 2014;34(4):981-99.<br />14.Smigielski R, Becker R, Zdanowicz U, Ciszek B. Medial meniscus anatomy-from basic science to treatment. Knee Surg Sports Traumatol Arthrosc. 2015;23(1):8-14.<br />15.Choi JY, Chang EY, Cunha GM, Tafur M, Statum S, Chung CB. Posterior medial meniscus root ligament lesions: MRI classification and associated findings. AJR Am J Roentgenol. 2014;203(6):1286-92.<br />16.Oliveira HCS, Gali JC, Caetano EB. Anatomical relationships between Wrisberg meniscofemoral and posterior cruciate ligament's femoral insertions. Rev Bras Ortop. 2013;48(5):412-6.<br />17.de Abreu MR, Chung CB, Trudell D, Resnick D. Meniscofemoral ligaments: patterns of tears and pseudotears of the menisci using cadaveric and clinical material. Skeletal Radiol. 2007;36(8):729-35.<br />18.Singh K, Helms CA, Jacobs MT, Higgins LD. MRI appearance of Wrisberg variant of discoid lateral meniscus. AJR Am J Roentgenol. 2006;187(2):384-7.<br />19.Blake MH, Lattermann C, Johnson DL. MRI and Arthroscopic Evaluation of Meniscal Injuries. Sports Med Arthrosc Rev. 2017;25(4):219-26.<br />20.Sharif B, Ashraf T, Saifuddin A. Magnetic resonance imaging of the meniscal roots. Skeletal Radiol. 2020;49(5):661-76.<br />21.Liu YW, Skalski MR, Patel DB, White EA, Tomasian A, Matcuk GR, Jr. The anterior knee: normal variants, common pathologies, and diagnostic pitfalls on MRI. Skeletal Radiol. 2018;47(8):1069-86.<br />22.Swamy N, Wadhwa V, Bajaj G, Chhabra A, Pandey T. Medial meniscal extrusion: Detection, evaluation and clinical implications. Eur J Radiol. 2018;102:115-24.<br />23.Laundre BJ, Collins MS, Bond JR, Dahm DL, Stuart MJ, Mandrekar JN. MRI accuracy for tears of the posterior horn of the lateral meniscus in patients with acute anterior cruciate ligament injury and the clinical relevance of missed tears. AJR Am J Roentgenol. 2009;193(2):515-23.<br />24.Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, et al. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018;99(2):55-64.<br />25.Saad SS, Gorbachova T, Saing M. Meniscal Tears: Scanned, Scoped, and Sculpted. Radiographics. 2015;35(4):1138-9.<br />26.Beaufils P, Becker R, Kopf S, Englund M, Verdonk R, Ollivier M, et al. Surgical Management of Degenerative Meniscus Lesions: The 2016 ESSKA Meniscus Consensus. Joints. 2017;5(2):59-69.<br />27.Greif DN, Baraga MG, Rizzo MG, Mohile NV, Silva FD, Fox T, et al. MRI appearance of the different meniscal ramp lesion types, with clinical and arthroscopic correlation. Skeletal Radiol. 2020;49(5):677-89.<br />28.Yeo Y, Ahn JM, Kim H, Kang Y, Lee E, Lee JW, et al. MR evaluation of the meniscal ramp lesion in patients with anterior cruciate ligament tear. Skeletal Radiol. 2018;47(12):1683-9.<br />29.Sonnery-Cottet B, Serra Cruz R, Vieira TD, Goes RA, Saithna A. Ramp Lesions: An Unrecognized Posteromedial Instability? Clin Sports Med. 2020;39(1):69-81.<br />30.Bolog NV, Andreisek G. Reporting knee meniscal tears: technical aspects, typical pitfalls and how to avoid them. Insights Imaging. 2016;7(3):385-98.<br />31.Palisch AR, Winters RR, Willis MH, Bray CD, Shybut TB. Posterior Root Meniscal Tears: Preoperative, Intraoperative, and Postoperative Imaging for Transtibial Pullout Repair. Radiographics. 2016;36(6):1792-806.<br />32.Matheny LM, Ockuly AC, Steadman JR, LaPrade RF. Posterior meniscus root tears: associated pathologies to assist as diagnostic tools. Knee Surg Sports Traumatol Arthrosc. 2015;23(10):3127-31.<br />33.Krych AJ, Bernard CD, Leland DP, Camp CL, Johnson AC, Finnoff JT, et al. Isolated meniscus extrusion associated with meniscotibial ligament abnormality. Knee Surg Sports Traumatol Arthrosc. 2019.<br />34.Chang EY, Chen KC, Chung CB. The shiny corner of the knee: a sign of meniscal osteochondral unit dysfunction. Skeletal Radiol. 2014;43(10):1403-9.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40868271</guid><pubDate>Sat, 12 Sep 2020 19:18:36 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40868271/menisci_compex_radial_root_tears_flaps_fraying_and_indirect_signs_of_tears.mp3" length="2594637" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.
2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy....</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.<br />2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy. 2000;16(6):11.<br />3.Fox AJ, Bedi A, Rodeo SA. The basic science of human knee menisci: structure, composition, and function. Sports Health. 2012;4(4):340-51.<br />4.JM L. The Meniscus: Basic Science and Clinical Applications. 2000.<br />5.Wadhwa V, Omar H, Coyner K, Khazzam M, Robertson W, Chhabra A. ISAKOS classification of meniscal tears-illustration on 2D and 3D isotropic spin echo MR imaging. Eur J Radiol. 2016;85(1):15-24.<br />6.Ariyachaipanich A, Kaya E, Statum S, Biswas R, Tran B, Bae WC, et al. MR imaging pattern of tibial subchondral bone structure: considerations of meniscal coverage and integrity. Skeletal Radiol. 2020.<br />7.Bhan K. Meniscal Tears: Current Understanding, Diagnosis, and Management. Cureus. 2020;12(6):e8590.<br />8.Greis PE, Bardana DD, Holmstrom MC, Burks RT. Meniscal injury: I. Basic science and evaluation. J Am Acad Orthop Surg. 2002;10(3):168-76.<br />9.Brindle T, Nyland J, Johnson DL. The meniscus: review of basic principles with application to surgery and rehabilitation. J Athl Train. 2001;36(2):160-9.<br />10.Rosas HG. Magnetic resonance imaging of the meniscus. Magn Reson Imaging Clin N Am. 2014;22(4):493-516.<br />11.Mohankumar R, White LM, Naraghi A. Pitfalls and pearls in MRI of the knee. AJR Am J Roentgenol. 2014;203(3):516-30.<br />12.De Smet AA. How I diagnose meniscal tears on knee MRI. AJR Am J Roentgenol. 2012;199(3):481-99.<br />13.Nguyen JC, De Smet AA, Graf BK, Rosas HG. MR imaging-based diagnosis and classification of meniscal tears. Radiographics. 2014;34(4):981-99.<br />14.Smigielski R, Becker R, Zdanowicz U, Ciszek B. Medial meniscus anatomy-from basic science to treatment. Knee Surg Sports Traumatol Arthrosc. 2015;23(1):8-14.<br />15.Choi JY, Chang EY, Cunha GM, Tafur M, Statum S, Chung CB. Posterior medial meniscus root ligament lesions: MRI classification and associated findings. AJR Am J Roentgenol. 2014;203(6):1286-92.<br />16.Oliveira HCS, Gali JC, Caetano EB. Anatomical relationships between Wrisberg meniscofemoral and posterior cruciate ligament's femoral insertions. Rev Bras Ortop. 2013;48(5):412-6.<br />17.de Abreu MR, Chung CB, Trudell D, Resnick D. Meniscofemoral ligaments: patterns of tears and pseudotears of the menisci using cadaveric and clinical material. Skeletal Radiol. 2007;36(8):729-35.<br />18.Singh K, Helms CA, Jacobs MT, Higgins LD. MRI appearance of Wrisberg variant of discoid lateral meniscus. AJR Am J Roentgenol. 2006;187(2):384-7.<br />19.Blake MH, Lattermann C, Johnson DL. MRI and Arthroscopic Evaluation of Meniscal Injuries. Sports Med Arthrosc Rev. 2017;25(4):219-26.<br />20.Sharif B, Ashraf T, Saifuddin A. Magnetic resonance imaging of the meniscal roots. Skeletal Radiol. 2020;49(5):661-76.<br />21.Liu YW, Skalski MR, Patel DB, White EA, Tomasian A, Matcuk GR, Jr. The anterior knee: normal variants, common pathologies, and diagnostic pitfalls on MRI. Skeletal Radiol. 2018;47(8):1069-86.<br />22.Swamy N, Wadhwa V, Bajaj G, Chhabra A, Pandey T. Medial meniscal extrusion: Detection, evaluation and clinical implications. Eur J Radiol. 2018;102:115-24.<br />23.Laundre BJ, Collins MS, Bond JR, Dahm DL, Stuart MJ, Mandrekar JN. MRI accuracy for tears of the posterior horn of the lateral meniscus in patients with acute anterior cruciate ligament injury and the clinical relevance of missed tears. AJR Am J Roentgenol. 2009;193(2):515-23.<br />24.Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, et al. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018;99(2):55-64.<br />25.Saad SS, Gorbachova T, Saing M. Meniscal Tears: Scanned, Scoped, and Sculpted. Radiographics. 2015;35(4):1138-9.<br...]]></itunes:summary><itunes:duration>433</itunes:duration><itunes:keywords>knee,menisci,meniscus,mri,tear</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Menisci (Horizontal and Vertical Tears)</title><link>https://www.spreaker.com/episode/menisci-horizontal-and-vertical-tears--40867569</link><description><![CDATA[REFERENCES<br />1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.<br />2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy. 2000;16(6):11.<br />3.Fox AJ, Bedi A, Rodeo SA. The basic science of human knee menisci: structure, composition, and function. Sports Health. 2012;4(4):340-51.<br />4.JM L. The Meniscus: Basic Science and Clinical Applications. 2000.<br />5.Wadhwa V, Omar H, Coyner K, Khazzam M, Robertson W, Chhabra A. ISAKOS classification of meniscal tears-illustration on 2D and 3D isotropic spin echo MR imaging. Eur J Radiol. 2016;85(1):15-24.<br />6.Ariyachaipanich A, Kaya E, Statum S, Biswas R, Tran B, Bae WC, et al. MR imaging pattern of tibial subchondral bone structure: considerations of meniscal coverage and integrity. Skeletal Radiol. 2020.<br />7.Bhan K. Meniscal Tears: Current Understanding, Diagnosis, and Management. Cureus. 2020;12(6):e8590.<br />8.Greis PE, Bardana DD, Holmstrom MC, Burks RT. Meniscal injury: I. Basic science and evaluation. J Am Acad Orthop Surg. 2002;10(3):168-76.<br />9.Brindle T, Nyland J, Johnson DL. The meniscus: review of basic principles with application to surgery and rehabilitation. J Athl Train. 2001;36(2):160-9.<br />10.Rosas HG. Magnetic resonance imaging of the meniscus. Magn Reson Imaging Clin N Am. 2014;22(4):493-516.<br />11.Mohankumar R, White LM, Naraghi A. Pitfalls and pearls in MRI of the knee. AJR Am J Roentgenol. 2014;203(3):516-30.<br />12.De Smet AA. How I diagnose meniscal tears on knee MRI. AJR Am J Roentgenol. 2012;199(3):481-99.<br />13.Nguyen JC, De Smet AA, Graf BK, Rosas HG. MR imaging-based diagnosis and classification of meniscal tears. Radiographics. 2014;34(4):981-99.<br />14.Smigielski R, Becker R, Zdanowicz U, Ciszek B. Medial meniscus anatomy-from basic science to treatment. Knee Surg Sports Traumatol Arthrosc. 2015;23(1):8-14.<br />15.Choi JY, Chang EY, Cunha GM, Tafur M, Statum S, Chung CB. Posterior medial meniscus root ligament lesions: MRI classification and associated findings. AJR Am J Roentgenol. 2014;203(6):1286-92.<br />16.Oliveira HCS, Gali JC, Caetano EB. Anatomical relationships between Wrisberg meniscofemoral and posterior cruciate ligament's femoral insertions. Rev Bras Ortop. 2013;48(5):412-6.<br />17.de Abreu MR, Chung CB, Trudell D, Resnick D. Meniscofemoral ligaments: patterns of tears and pseudotears of the menisci using cadaveric and clinical material. Skeletal Radiol. 2007;36(8):729-35.<br />18.Singh K, Helms CA, Jacobs MT, Higgins LD. MRI appearance of Wrisberg variant of discoid lateral meniscus. AJR Am J Roentgenol. 2006;187(2):384-7.<br />19.Blake MH, Lattermann C, Johnson DL. MRI and Arthroscopic Evaluation of Meniscal Injuries. Sports Med Arthrosc Rev. 2017;25(4):219-26.<br />20.Sharif B, Ashraf T, Saifuddin A. Magnetic resonance imaging of the meniscal roots. Skeletal Radiol. 2020;49(5):661-76.<br />21.Liu YW, Skalski MR, Patel DB, White EA, Tomasian A, Matcuk GR, Jr. The anterior knee: normal variants, common pathologies, and diagnostic pitfalls on MRI. Skeletal Radiol. 2018;47(8):1069-86.<br />22.Swamy N, Wadhwa V, Bajaj G, Chhabra A, Pandey T. Medial meniscal extrusion: Detection, evaluation and clinical implications. Eur J Radiol. 2018;102:115-24.<br />23.Laundre BJ, Collins MS, Bond JR, Dahm DL, Stuart MJ, Mandrekar JN. MRI accuracy for tears of the posterior horn of the lateral meniscus in patients with acute anterior cruciate ligament injury and the clinical relevance of missed tears. AJR Am J Roentgenol. 2009;193(2):515-23.<br />24.Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, et al. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018;99(2):55-64.<br />25.Saad SS, Gorbachova T, Saing M. Meniscal Tears: Scanned, Scoped, and Sculpted. Radiographics. 2015;35(4):1138-9.<br />26.Beaufils P, Becker R, Kopf S, Englund M, Verdonk R, Ollivier M, et al. Surgical Management of Degenerative Meniscus Lesions: The 2016 ESSKA Meniscus Consensus. Joints. 2017;5(2):59-69.<br />27.Greif DN, Baraga MG, Rizzo MG, Mohile NV, Silva FD, Fox T, et al. MRI appearance of the different meniscal ramp lesion types, with clinical and arthroscopic correlation. Skeletal Radiol. 2020;49(5):677-89.<br />28.Yeo Y, Ahn JM, Kim H, Kang Y, Lee E, Lee JW, et al. MR evaluation of the meniscal ramp lesion in patients with anterior cruciate ligament tear. Skeletal Radiol. 2018;47(12):1683-9.<br />29.Sonnery-Cottet B, Serra Cruz R, Vieira TD, Goes RA, Saithna A. Ramp Lesions: An Unrecognized Posteromedial Instability? Clin Sports Med. 2020;39(1):69-81.<br />30.Bolog NV, Andreisek G. Reporting knee meniscal tears: technical aspects, typical pitfalls and how to avoid them. Insights Imaging. 2016;7(3):385-98.<br />31.Palisch AR, Winters RR, Willis MH, Bray CD, Shybut TB. Posterior Root Meniscal Tears: Preoperative, Intraoperative, and Postoperative Imaging for Transtibial Pullout Repair. Radiographics. 2016;36(6):1792-806.<br />32.Matheny LM, Ockuly AC, Steadman JR, LaPrade RF. Posterior meniscus root tears: associated pathologies to assist as diagnostic tools. Knee Surg Sports Traumatol Arthrosc. 2015;23(10):3127-31.<br />33.Krych AJ, Bernard CD, Leland DP, Camp CL, Johnson AC, Finnoff JT, et al. Isolated meniscus extrusion associated with meniscotibial ligament abnormality. Knee Surg Sports Traumatol Arthrosc. 2019.<br />34.Chang EY, Chen KC, Chung CB. The shiny corner of the knee: a sign of meniscal osteochondral unit dysfunction. Skeletal Radiol. 2014;43(10):1403-9.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40867569</guid><pubDate>Sat, 12 Sep 2020 17:57:53 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40867569/menisci_horizontal_and_vertical_tears.mp3" length="2506941" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.
2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy....</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.<br />2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy. 2000;16(6):11.<br />3.Fox AJ, Bedi A, Rodeo SA. The basic science of human knee menisci: structure, composition, and function. Sports Health. 2012;4(4):340-51.<br />4.JM L. The Meniscus: Basic Science and Clinical Applications. 2000.<br />5.Wadhwa V, Omar H, Coyner K, Khazzam M, Robertson W, Chhabra A. ISAKOS classification of meniscal tears-illustration on 2D and 3D isotropic spin echo MR imaging. Eur J Radiol. 2016;85(1):15-24.<br />6.Ariyachaipanich A, Kaya E, Statum S, Biswas R, Tran B, Bae WC, et al. MR imaging pattern of tibial subchondral bone structure: considerations of meniscal coverage and integrity. Skeletal Radiol. 2020.<br />7.Bhan K. Meniscal Tears: Current Understanding, Diagnosis, and Management. Cureus. 2020;12(6):e8590.<br />8.Greis PE, Bardana DD, Holmstrom MC, Burks RT. Meniscal injury: I. Basic science and evaluation. J Am Acad Orthop Surg. 2002;10(3):168-76.<br />9.Brindle T, Nyland J, Johnson DL. The meniscus: review of basic principles with application to surgery and rehabilitation. J Athl Train. 2001;36(2):160-9.<br />10.Rosas HG. Magnetic resonance imaging of the meniscus. Magn Reson Imaging Clin N Am. 2014;22(4):493-516.<br />11.Mohankumar R, White LM, Naraghi A. Pitfalls and pearls in MRI of the knee. AJR Am J Roentgenol. 2014;203(3):516-30.<br />12.De Smet AA. How I diagnose meniscal tears on knee MRI. AJR Am J Roentgenol. 2012;199(3):481-99.<br />13.Nguyen JC, De Smet AA, Graf BK, Rosas HG. MR imaging-based diagnosis and classification of meniscal tears. Radiographics. 2014;34(4):981-99.<br />14.Smigielski R, Becker R, Zdanowicz U, Ciszek B. Medial meniscus anatomy-from basic science to treatment. Knee Surg Sports Traumatol Arthrosc. 2015;23(1):8-14.<br />15.Choi JY, Chang EY, Cunha GM, Tafur M, Statum S, Chung CB. Posterior medial meniscus root ligament lesions: MRI classification and associated findings. AJR Am J Roentgenol. 2014;203(6):1286-92.<br />16.Oliveira HCS, Gali JC, Caetano EB. Anatomical relationships between Wrisberg meniscofemoral and posterior cruciate ligament's femoral insertions. Rev Bras Ortop. 2013;48(5):412-6.<br />17.de Abreu MR, Chung CB, Trudell D, Resnick D. Meniscofemoral ligaments: patterns of tears and pseudotears of the menisci using cadaveric and clinical material. Skeletal Radiol. 2007;36(8):729-35.<br />18.Singh K, Helms CA, Jacobs MT, Higgins LD. MRI appearance of Wrisberg variant of discoid lateral meniscus. AJR Am J Roentgenol. 2006;187(2):384-7.<br />19.Blake MH, Lattermann C, Johnson DL. MRI and Arthroscopic Evaluation of Meniscal Injuries. Sports Med Arthrosc Rev. 2017;25(4):219-26.<br />20.Sharif B, Ashraf T, Saifuddin A. Magnetic resonance imaging of the meniscal roots. Skeletal Radiol. 2020;49(5):661-76.<br />21.Liu YW, Skalski MR, Patel DB, White EA, Tomasian A, Matcuk GR, Jr. The anterior knee: normal variants, common pathologies, and diagnostic pitfalls on MRI. Skeletal Radiol. 2018;47(8):1069-86.<br />22.Swamy N, Wadhwa V, Bajaj G, Chhabra A, Pandey T. Medial meniscal extrusion: Detection, evaluation and clinical implications. Eur J Radiol. 2018;102:115-24.<br />23.Laundre BJ, Collins MS, Bond JR, Dahm DL, Stuart MJ, Mandrekar JN. MRI accuracy for tears of the posterior horn of the lateral meniscus in patients with acute anterior cruciate ligament injury and the clinical relevance of missed tears. AJR Am J Roentgenol. 2009;193(2):515-23.<br />24.Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, et al. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018;99(2):55-64.<br />25.Saad SS, Gorbachova T, Saing M. Meniscal Tears: Scanned, Scoped, and Sculpted. Radiographics. 2015;35(4):1138-9.<br...]]></itunes:summary><itunes:duration>418</itunes:duration><itunes:keywords>knee,menisci,meniscus,mri,tears</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Menisci (Anatomical Variations and Biochemistry)</title><link>https://www.spreaker.com/episode/menisci-anatomical-variations-and-biochemistry--40864726</link><description><![CDATA[REFERENCES<br />1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.<br />2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy. 2000;16(6):11.<br />3.Fox AJ, Bedi A, Rodeo SA. The basic science of human knee menisci: structure, composition, and function. Sports Health. 2012;4(4):340-51.<br />4.JM L. The Meniscus: Basic Science and Clinical Applications. 2000.<br />5.Wadhwa V, Omar H, Coyner K, Khazzam M, Robertson W, Chhabra A. ISAKOS classification of meniscal tears-illustration on 2D and 3D isotropic spin echo MR imaging. Eur J Radiol. 2016;85(1):15-24.<br />6.Ariyachaipanich A, Kaya E, Statum S, Biswas R, Tran B, Bae WC, et al. MR imaging pattern of tibial subchondral bone structure: considerations of meniscal coverage and integrity. Skeletal Radiol. 2020.<br />7.Bhan K. Meniscal Tears: Current Understanding, Diagnosis, and Management. Cureus. 2020;12(6):e8590.<br />8.Greis PE, Bardana DD, Holmstrom MC, Burks RT. Meniscal injury: I. Basic science and evaluation. J Am Acad Orthop Surg. 2002;10(3):168-76.<br />9.Brindle T, Nyland J, Johnson DL. The meniscus: review of basic principles with application to surgery and rehabilitation. J Athl Train. 2001;36(2):160-9.<br />10.Rosas HG. Magnetic resonance imaging of the meniscus. Magn Reson Imaging Clin N Am. 2014;22(4):493-516.<br />11.Mohankumar R, White LM, Naraghi A. Pitfalls and pearls in MRI of the knee. AJR Am J Roentgenol. 2014;203(3):516-30.<br />12.De Smet AA. How I diagnose meniscal tears on knee MRI. AJR Am J Roentgenol. 2012;199(3):481-99.<br />13.Nguyen JC, De Smet AA, Graf BK, Rosas HG. MR imaging-based diagnosis and classification of meniscal tears. Radiographics. 2014;34(4):981-99.<br />14.Smigielski R, Becker R, Zdanowicz U, Ciszek B. Medial meniscus anatomy-from basic science to treatment. Knee Surg Sports Traumatol Arthrosc. 2015;23(1):8-14.<br />15.Choi JY, Chang EY, Cunha GM, Tafur M, Statum S, Chung CB. Posterior medial meniscus root ligament lesions: MRI classification and associated findings. AJR Am J Roentgenol. 2014;203(6):1286-92.<br />16.Oliveira HCS, Gali JC, Caetano EB. Anatomical relationships between Wrisberg meniscofemoral and posterior cruciate ligament's femoral insertions. Rev Bras Ortop. 2013;48(5):412-6.<br />17.de Abreu MR, Chung CB, Trudell D, Resnick D. Meniscofemoral ligaments: patterns of tears and pseudotears of the menisci using cadaveric and clinical material. Skeletal Radiol. 2007;36(8):729-35.<br />18.Singh K, Helms CA, Jacobs MT, Higgins LD. MRI appearance of Wrisberg variant of discoid lateral meniscus. AJR Am J Roentgenol. 2006;187(2):384-7.<br />19.Blake MH, Lattermann C, Johnson DL. MRI and Arthroscopic Evaluation of Meniscal Injuries. Sports Med Arthrosc Rev. 2017;25(4):219-26.<br />20.Sharif B, Ashraf T, Saifuddin A. Magnetic resonance imaging of the meniscal roots. Skeletal Radiol. 2020;49(5):661-76.<br />21.Liu YW, Skalski MR, Patel DB, White EA, Tomasian A, Matcuk GR, Jr. The anterior knee: normal variants, common pathologies, and diagnostic pitfalls on MRI. Skeletal Radiol. 2018;47(8):1069-86.<br />22.Swamy N, Wadhwa V, Bajaj G, Chhabra A, Pandey T. Medial meniscal extrusion: Detection, evaluation and clinical implications. Eur J Radiol. 2018;102:115-24.<br />23.Laundre BJ, Collins MS, Bond JR, Dahm DL, Stuart MJ, Mandrekar JN. MRI accuracy for tears of the posterior horn of the lateral meniscus in patients with acute anterior cruciate ligament injury and the clinical relevance of missed tears. AJR Am J Roentgenol. 2009;193(2):515-23.<br />24.Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, et al. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018;99(2):55-64.<br />25.Saad SS, Gorbachova T, Saing M. Meniscal Tears: Scanned, Scoped, and Sculpted. Radiographics. 2015;35(4):1138-9.<br />26.Beaufils P, Becker R, Kopf S, Englund M, Verdonk R, Ollivier M, et al. Surgical Management of Degenerative Meniscus Lesions: The 2016 ESSKA Meniscus Consensus. Joints. 2017;5(2):59-69.<br />27.Greif DN, Baraga MG, Rizzo MG, Mohile NV, Silva FD, Fox T, et al. MRI appearance of the different meniscal ramp lesion types, with clinical and arthroscopic correlation. Skeletal Radiol. 2020;49(5):677-89.<br />28.Yeo Y, Ahn JM, Kim H, Kang Y, Lee E, Lee JW, et al. MR evaluation of the meniscal ramp lesion in patients with anterior cruciate ligament tear. Skeletal Radiol. 2018;47(12):1683-9.<br />29.Sonnery-Cottet B, Serra Cruz R, Vieira TD, Goes RA, Saithna A. Ramp Lesions: An Unrecognized Posteromedial Instability? Clin Sports Med. 2020;39(1):69-81.<br />30.Bolog NV, Andreisek G. Reporting knee meniscal tears: technical aspects, typical pitfalls and how to avoid them. Insights Imaging. 2016;7(3):385-98.<br />31.Palisch AR, Winters RR, Willis MH, Bray CD, Shybut TB. Posterior Root Meniscal Tears: Preoperative, Intraoperative, and Postoperative Imaging for Transtibial Pullout Repair. Radiographics. 2016;36(6):1792-806.<br />32.Matheny LM, Ockuly AC, Steadman JR, LaPrade RF. Posterior meniscus root tears: associated pathologies to assist as diagnostic tools. Knee Surg Sports Traumatol Arthrosc. 2015;23(10):3127-31.<br />33.Krych AJ, Bernard CD, Leland DP, Camp CL, Johnson AC, Finnoff JT, et al. Isolated meniscus extrusion associated with meniscotibial ligament abnormality. Knee Surg Sports Traumatol Arthrosc. 2019.<br />34.Chang EY, Chen KC, Chung CB. The shiny corner of the knee: a sign of meniscal osteochondral unit dysfunction. Skeletal Radiol. 2014;43(10):1403-9.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40864726</guid><pubDate>Sat, 12 Sep 2020 15:28:36 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40864726/menisci_anatomical_variations_and_biochemistry.mp3" length="1741725" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.
2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy....</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.<br />2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy. 2000;16(6):11.<br />3.Fox AJ, Bedi A, Rodeo SA. The basic science of human knee menisci: structure, composition, and function. Sports Health. 2012;4(4):340-51.<br />4.JM L. The Meniscus: Basic Science and Clinical Applications. 2000.<br />5.Wadhwa V, Omar H, Coyner K, Khazzam M, Robertson W, Chhabra A. ISAKOS classification of meniscal tears-illustration on 2D and 3D isotropic spin echo MR imaging. Eur J Radiol. 2016;85(1):15-24.<br />6.Ariyachaipanich A, Kaya E, Statum S, Biswas R, Tran B, Bae WC, et al. MR imaging pattern of tibial subchondral bone structure: considerations of meniscal coverage and integrity. Skeletal Radiol. 2020.<br />7.Bhan K. Meniscal Tears: Current Understanding, Diagnosis, and Management. Cureus. 2020;12(6):e8590.<br />8.Greis PE, Bardana DD, Holmstrom MC, Burks RT. Meniscal injury: I. Basic science and evaluation. J Am Acad Orthop Surg. 2002;10(3):168-76.<br />9.Brindle T, Nyland J, Johnson DL. The meniscus: review of basic principles with application to surgery and rehabilitation. J Athl Train. 2001;36(2):160-9.<br />10.Rosas HG. Magnetic resonance imaging of the meniscus. Magn Reson Imaging Clin N Am. 2014;22(4):493-516.<br />11.Mohankumar R, White LM, Naraghi A. Pitfalls and pearls in MRI of the knee. AJR Am J Roentgenol. 2014;203(3):516-30.<br />12.De Smet AA. How I diagnose meniscal tears on knee MRI. AJR Am J Roentgenol. 2012;199(3):481-99.<br />13.Nguyen JC, De Smet AA, Graf BK, Rosas HG. MR imaging-based diagnosis and classification of meniscal tears. Radiographics. 2014;34(4):981-99.<br />14.Smigielski R, Becker R, Zdanowicz U, Ciszek B. Medial meniscus anatomy-from basic science to treatment. Knee Surg Sports Traumatol Arthrosc. 2015;23(1):8-14.<br />15.Choi JY, Chang EY, Cunha GM, Tafur M, Statum S, Chung CB. Posterior medial meniscus root ligament lesions: MRI classification and associated findings. AJR Am J Roentgenol. 2014;203(6):1286-92.<br />16.Oliveira HCS, Gali JC, Caetano EB. Anatomical relationships between Wrisberg meniscofemoral and posterior cruciate ligament's femoral insertions. Rev Bras Ortop. 2013;48(5):412-6.<br />17.de Abreu MR, Chung CB, Trudell D, Resnick D. Meniscofemoral ligaments: patterns of tears and pseudotears of the menisci using cadaveric and clinical material. Skeletal Radiol. 2007;36(8):729-35.<br />18.Singh K, Helms CA, Jacobs MT, Higgins LD. MRI appearance of Wrisberg variant of discoid lateral meniscus. AJR Am J Roentgenol. 2006;187(2):384-7.<br />19.Blake MH, Lattermann C, Johnson DL. MRI and Arthroscopic Evaluation of Meniscal Injuries. Sports Med Arthrosc Rev. 2017;25(4):219-26.<br />20.Sharif B, Ashraf T, Saifuddin A. Magnetic resonance imaging of the meniscal roots. Skeletal Radiol. 2020;49(5):661-76.<br />21.Liu YW, Skalski MR, Patel DB, White EA, Tomasian A, Matcuk GR, Jr. The anterior knee: normal variants, common pathologies, and diagnostic pitfalls on MRI. Skeletal Radiol. 2018;47(8):1069-86.<br />22.Swamy N, Wadhwa V, Bajaj G, Chhabra A, Pandey T. Medial meniscal extrusion: Detection, evaluation and clinical implications. Eur J Radiol. 2018;102:115-24.<br />23.Laundre BJ, Collins MS, Bond JR, Dahm DL, Stuart MJ, Mandrekar JN. MRI accuracy for tears of the posterior horn of the lateral meniscus in patients with acute anterior cruciate ligament injury and the clinical relevance of missed tears. AJR Am J Roentgenol. 2009;193(2):515-23.<br />24.Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, et al. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018;99(2):55-64.<br />25.Saad SS, Gorbachova T, Saing M. Meniscal Tears: Scanned, Scoped, and Sculpted. Radiographics. 2015;35(4):1138-9.<br...]]></itunes:summary><itunes:duration>291</itunes:duration><itunes:keywords>knee,menisci,meniscus,mri</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Menisci (Introduction and Anatomy)</title><link>https://www.spreaker.com/episode/menisci-introduction-and-anatomy--40861905</link><description><![CDATA[REFERENCES<br />1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.<br />2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy. 2000;16(6):11.<br />3.Fox AJ, Bedi A, Rodeo SA. The basic science of human knee menisci: structure, composition, and function. Sports Health. 2012;4(4):340-51.<br />4.JM L. The Meniscus: Basic Science and Clinical Applications. 2000.<br />5.Wadhwa V, Omar H, Coyner K, Khazzam M, Robertson W, Chhabra A. ISAKOS classification of meniscal tears-illustration on 2D and 3D isotropic spin echo MR imaging. Eur J Radiol. 2016;85(1):15-24.<br />6.Ariyachaipanich A, Kaya E, Statum S, Biswas R, Tran B, Bae WC, et al. MR imaging pattern of tibial subchondral bone structure: considerations of meniscal coverage and integrity. Skeletal Radiol. 2020.<br />7.Bhan K. Meniscal Tears: Current Understanding, Diagnosis, and Management. Cureus. 2020;12(6):e8590.<br />8.Greis PE, Bardana DD, Holmstrom MC, Burks RT. Meniscal injury: I. Basic science and evaluation. J Am Acad Orthop Surg. 2002;10(3):168-76.<br />9.Brindle T, Nyland J, Johnson DL. The meniscus: review of basic principles with application to surgery and rehabilitation. J Athl Train. 2001;36(2):160-9.<br />10.Rosas HG. Magnetic resonance imaging of the meniscus. Magn Reson Imaging Clin N Am. 2014;22(4):493-516.<br />11.Mohankumar R, White LM, Naraghi A. Pitfalls and pearls in MRI of the knee. AJR Am J Roentgenol. 2014;203(3):516-30.<br />12.De Smet AA. How I diagnose meniscal tears on knee MRI. AJR Am J Roentgenol. 2012;199(3):481-99.<br />13.Nguyen JC, De Smet AA, Graf BK, Rosas HG. MR imaging-based diagnosis and classification of meniscal tears. Radiographics. 2014;34(4):981-99.<br />14.Smigielski R, Becker R, Zdanowicz U, Ciszek B. Medial meniscus anatomy-from basic science to treatment. Knee Surg Sports Traumatol Arthrosc. 2015;23(1):8-14.<br />15.Choi JY, Chang EY, Cunha GM, Tafur M, Statum S, Chung CB. Posterior medial meniscus root ligament lesions: MRI classification and associated findings. AJR Am J Roentgenol. 2014;203(6):1286-92.<br />16.Oliveira HCS, Gali JC, Caetano EB. Anatomical relationships between Wrisberg meniscofemoral and posterior cruciate ligament's femoral insertions. Rev Bras Ortop. 2013;48(5):412-6.<br />17.de Abreu MR, Chung CB, Trudell D, Resnick D. Meniscofemoral ligaments: patterns of tears and pseudotears of the menisci using cadaveric and clinical material. Skeletal Radiol. 2007;36(8):729-35.<br />18.Singh K, Helms CA, Jacobs MT, Higgins LD. MRI appearance of Wrisberg variant of discoid lateral meniscus. AJR Am J Roentgenol. 2006;187(2):384-7.<br />19.Blake MH, Lattermann C, Johnson DL. MRI and Arthroscopic Evaluation of Meniscal Injuries. Sports Med Arthrosc Rev. 2017;25(4):219-26.<br />20.Sharif B, Ashraf T, Saifuddin A. Magnetic resonance imaging of the meniscal roots. Skeletal Radiol. 2020;49(5):661-76.<br />21.Liu YW, Skalski MR, Patel DB, White EA, Tomasian A, Matcuk GR, Jr. The anterior knee: normal variants, common pathologies, and diagnostic pitfalls on MRI. Skeletal Radiol. 2018;47(8):1069-86.<br />22.Swamy N, Wadhwa V, Bajaj G, Chhabra A, Pandey T. Medial meniscal extrusion: Detection, evaluation and clinical implications. Eur J Radiol. 2018;102:115-24.<br />23.Laundre BJ, Collins MS, Bond JR, Dahm DL, Stuart MJ, Mandrekar JN. MRI accuracy for tears of the posterior horn of the lateral meniscus in patients with acute anterior cruciate ligament injury and the clinical relevance of missed tears. AJR Am J Roentgenol. 2009;193(2):515-23.<br />24.Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, et al. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018;99(2):55-64.<br />25.Saad SS, Gorbachova T, Saing M. Meniscal Tears: Scanned, Scoped, and Sculpted. Radiographics. 2015;35(4):1138-9.<br />26.Beaufils P, Becker R, Kopf S, Englund M, Verdonk R, Ollivier M, et al. Surgical Management of Degenerative Meniscus Lesions: The 2016 ESSKA Meniscus Consensus. Joints. 2017;5(2):59-69.<br />27.Greif DN, Baraga MG, Rizzo MG, Mohile NV, Silva FD, Fox T, et al. MRI appearance of the different meniscal ramp lesion types, with clinical and arthroscopic correlation. Skeletal Radiol. 2020;49(5):677-89.<br />28.Yeo Y, Ahn JM, Kim H, Kang Y, Lee E, Lee JW, et al. MR evaluation of the meniscal ramp lesion in patients with anterior cruciate ligament tear. Skeletal Radiol. 2018;47(12):1683-9.<br />29.Sonnery-Cottet B, Serra Cruz R, Vieira TD, Goes RA, Saithna A. Ramp Lesions: An Unrecognized Posteromedial Instability? Clin Sports Med. 2020;39(1):69-81.<br />30.Bolog NV, Andreisek G. Reporting knee meniscal tears: technical aspects, typical pitfalls and how to avoid them. Insights Imaging. 2016;7(3):385-98.<br />31.Palisch AR, Winters RR, Willis MH, Bray CD, Shybut TB. Posterior Root Meniscal Tears: Preoperative, Intraoperative, and Postoperative Imaging for Transtibial Pullout Repair. Radiographics. 2016;36(6):1792-806.<br />32.Matheny LM, Ockuly AC, Steadman JR, LaPrade RF. Posterior meniscus root tears: associated pathologies to assist as diagnostic tools. Knee Surg Sports Traumatol Arthrosc. 2015;23(10):3127-31.<br />33.Krych AJ, Bernard CD, Leland DP, Camp CL, Johnson AC, Finnoff JT, et al. Isolated meniscus extrusion associated with meniscotibial ligament abnormality. Knee Surg Sports Traumatol Arthrosc. 2019.<br />34.Chang EY, Chen KC, Chung CB. The shiny corner of the knee: a sign of meniscal osteochondral unit dysfunction. Skeletal Radiol. 2014;43(10):1403-9.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40861905</guid><pubDate>Sat, 12 Sep 2020 13:55:38 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40861905/menisci_introduction_and_anatomy.mp3" length="2906730" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.
2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy....</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1.Brody JM, Hulstyn MJ, Fleming BC, Tung GA. The meniscal roots: gross anatomic correlation with 3-T MRI findings. AJR Am J Roentgenol. 2007;188(5):W446-50.<br />2.Lee BI, Min KD. Abnormal band of the lateral meniscus of the knee. Arthroscopy. 2000;16(6):11.<br />3.Fox AJ, Bedi A, Rodeo SA. The basic science of human knee menisci: structure, composition, and function. Sports Health. 2012;4(4):340-51.<br />4.JM L. The Meniscus: Basic Science and Clinical Applications. 2000.<br />5.Wadhwa V, Omar H, Coyner K, Khazzam M, Robertson W, Chhabra A. ISAKOS classification of meniscal tears-illustration on 2D and 3D isotropic spin echo MR imaging. Eur J Radiol. 2016;85(1):15-24.<br />6.Ariyachaipanich A, Kaya E, Statum S, Biswas R, Tran B, Bae WC, et al. MR imaging pattern of tibial subchondral bone structure: considerations of meniscal coverage and integrity. Skeletal Radiol. 2020.<br />7.Bhan K. Meniscal Tears: Current Understanding, Diagnosis, and Management. Cureus. 2020;12(6):e8590.<br />8.Greis PE, Bardana DD, Holmstrom MC, Burks RT. Meniscal injury: I. Basic science and evaluation. J Am Acad Orthop Surg. 2002;10(3):168-76.<br />9.Brindle T, Nyland J, Johnson DL. The meniscus: review of basic principles with application to surgery and rehabilitation. J Athl Train. 2001;36(2):160-9.<br />10.Rosas HG. Magnetic resonance imaging of the meniscus. Magn Reson Imaging Clin N Am. 2014;22(4):493-516.<br />11.Mohankumar R, White LM, Naraghi A. Pitfalls and pearls in MRI of the knee. AJR Am J Roentgenol. 2014;203(3):516-30.<br />12.De Smet AA. How I diagnose meniscal tears on knee MRI. AJR Am J Roentgenol. 2012;199(3):481-99.<br />13.Nguyen JC, De Smet AA, Graf BK, Rosas HG. MR imaging-based diagnosis and classification of meniscal tears. Radiographics. 2014;34(4):981-99.<br />14.Smigielski R, Becker R, Zdanowicz U, Ciszek B. Medial meniscus anatomy-from basic science to treatment. Knee Surg Sports Traumatol Arthrosc. 2015;23(1):8-14.<br />15.Choi JY, Chang EY, Cunha GM, Tafur M, Statum S, Chung CB. Posterior medial meniscus root ligament lesions: MRI classification and associated findings. AJR Am J Roentgenol. 2014;203(6):1286-92.<br />16.Oliveira HCS, Gali JC, Caetano EB. Anatomical relationships between Wrisberg meniscofemoral and posterior cruciate ligament's femoral insertions. Rev Bras Ortop. 2013;48(5):412-6.<br />17.de Abreu MR, Chung CB, Trudell D, Resnick D. Meniscofemoral ligaments: patterns of tears and pseudotears of the menisci using cadaveric and clinical material. Skeletal Radiol. 2007;36(8):729-35.<br />18.Singh K, Helms CA, Jacobs MT, Higgins LD. MRI appearance of Wrisberg variant of discoid lateral meniscus. AJR Am J Roentgenol. 2006;187(2):384-7.<br />19.Blake MH, Lattermann C, Johnson DL. MRI and Arthroscopic Evaluation of Meniscal Injuries. Sports Med Arthrosc Rev. 2017;25(4):219-26.<br />20.Sharif B, Ashraf T, Saifuddin A. Magnetic resonance imaging of the meniscal roots. Skeletal Radiol. 2020;49(5):661-76.<br />21.Liu YW, Skalski MR, Patel DB, White EA, Tomasian A, Matcuk GR, Jr. The anterior knee: normal variants, common pathologies, and diagnostic pitfalls on MRI. Skeletal Radiol. 2018;47(8):1069-86.<br />22.Swamy N, Wadhwa V, Bajaj G, Chhabra A, Pandey T. Medial meniscal extrusion: Detection, evaluation and clinical implications. Eur J Radiol. 2018;102:115-24.<br />23.Laundre BJ, Collins MS, Bond JR, Dahm DL, Stuart MJ, Mandrekar JN. MRI accuracy for tears of the posterior horn of the lateral meniscus in patients with acute anterior cruciate ligament injury and the clinical relevance of missed tears. AJR Am J Roentgenol. 2009;193(2):515-23.<br />24.Lecouvet F, Van Haver T, Acid S, Perlepe V, Kirchgesner T, Vande Berg B, et al. Magnetic resonance imaging (MRI) of the knee: Identification of difficult-to-diagnose meniscal lesions. Diagn Interv Imaging. 2018;99(2):55-64.<br />25.Saad SS, Gorbachova T, Saing M. Meniscal Tears: Scanned, Scoped, and Sculpted. Radiographics. 2015;35(4):1138-9.<br...]]></itunes:summary><itunes:duration>485</itunes:duration><itunes:keywords>knee,menisci,meniscus,mri</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>PULLEY-PART-II (PATHOLOGY)</title><link>https://www.spreaker.com/episode/pulley-part-ii-pathology--40723703</link><description><![CDATA[REFERENCES<br />1.Bianchi S, Martinoli C, de Gautard R, Gaignot C. Ultrasound of the digital flexor system: Normal and pathological findings(). J Ultrasound. 2007;10(2):85-92.<br />2.DP G. Green’s Operative Hand Surgery.<br />3.Hauger O, Chung CB, Lektrakul N, Botte MJ, Trudell D, Boutin RD, et al. Pulley system in the fingers: normal anatomy and simulated lesions in cadavers at MR imaging, CT, and US with and without contrast material distention of the tendon sheath. Radiology. 2000;217(1):201-12.<br />4.Makkouk AH, Oetgen ME, Swigart CR, Dodds SD. Trigger finger: etiology, evaluation, and treatment. Curr Rev Musculoskelet Med. 2008;1(2):92-6.<br />5.Guerini H, Pessis E, Theumann N, Le Quintrec JS, Campagna R, Chevrot A, et al. Sonographic appearance of trigger fingers. J Ultrasound Med. 2008;27(10):1407-13.<br />6.Tagliafico A, Resmini E, van Holsbeeck MT, Derchi LE, Ferone D, Martinoli C. Sonographic depiction of trigger fingers in acromegaly. J Ultrasound Med. 2009;28(11):1441-6.<br />7.Drossos K, Remmelink M, Nagy N, de Maertelaer V, Pasteels JL, Schuind F. Correlations between clinical presentations of adult trigger digits and histologic aspects of the A1 pulley. J Hand Surg Am. 2009;34(8):1429-35.<br />8.Sato J, Ishii Y, Noguchi H. Comparison of the Thickness of Pulley and Flexor Tendon Between in Neutral and in Flexed Positions of Trigger Finger. Open Orthop J. 2016;10:36-40.<br />9.Miyamoto H, Miura T, Isayama H, Masuzaki R, Koike K, Ohe T. Stiffness of the first annular pulley in normal and trigger fingers. J Hand Surg Am. 2011;36(9):1486-91.<br />10.Sbernardori MC, Mazzarello V, Tranquilli-Leali P. Scanning electron microscopic findings of the gliding surface of the A1 pulley in trigger fingers and thumbs. J Hand Surg Eur Vol. 2007;32(4):384-7.<br />11.Tanaka Y, Gotani H, Yano K, Sasaki K, Miyashita M, Hamada Y. Sonographic evaluation of effects of the volar plate on trigger finger. J Orthop Sci. 2015;20(6):999-1004.<br />12.Cordiner-Lawrie S, Diaz J, Burge P, Athanasou NA. Localized amyloid deposition in trigger finger. J Hand Surg Br. 2001;26(4):380-3.<br />13.Matthews A, Smith K, Read L, Nicholas J, Schmidt E. Trigger finger: An overview of the treatment options. JAAPA. 2019;32(1):17-21.<br />14.Kim HR, Lee SH. Ultrasonographic assessment of clinically diagnosed trigger fingers. Rheumatol Int. 2010;30(11):1455-8.<br />15.Chuang XL, Ooi CC, Chin ST, Png MA, Wong SK, Tay SC, et al. What triggers in trigger finger? The flexor tendons at the flexor digitorum superficialis bifurcation. J Plast Reconstr Aesthet Surg. 2017;70(10):1411-9.<br />16.Sato J, Ishii Y, Noguchi H, Takeda M. Sonographic appearance of the flexor tendon, volar plate, and A1 pulley with respect to the severity of trigger finger. J Hand Surg Am. 2012;37(10):2012-20.<br />17.Jacob D, Cohen M, Bianchi S. Ultrasound imaging of non-traumatic lesions of wrist and hand tendons. Eur Radiol. 2007;17(9):2237-47.<br />18.Sato J, Ishii Y, Noguchi H, Takeda M. Sonographic analyses of pulley and flexor tendon in idiopathic trigger finger with interphalangeal joint contracture. Ultrasound Med Biol. 2014;40(6):1146-53.<br />19.Spirig A, Juon B, Banz Y, Rieben R, Vogelin E. Correlation Between Sonographic and In Vivo Measurement of A1 Pulleys in Trigger Fingers. Ultrasound Med Biol. 2016;42(7):1482-90.<br />20.Gruber H, Peer S, Loizides A. The "dark tendon sign" (DTS): a sonographic indicator for idiopathic trigger finger. Ultrasound Med Biol. 2011;37(5):688-92.<br />21.Mogami R, Pereira Vaz JL, de Fatima Barcelos Chagas Y, de Abreu MM, Torezani RS, de Almeida Vieira A, et al. Ultrasonography of Hands and Wrists in the Diagnosis of Complications of Chikungunya Fever. J Ultrasound Med. 2018;37(2):511-20.<br />22.Kaeley GS. Visualization of Enthesitis by Ultrasound: a Key Diagnostic Tool in Spondyloarthropathy Diagnosis and Management. Curr Rheumatol Rep. 2020;22(9):48.<br />23.Tinazzi I, McGonagle D, Aydin SZ, Chessa D, Marchetta A, Macchioni P. 'Deep Koebner' phenomenon of the flexor tendon-associated accessory pulleys as a novel factor in tenosynovitis and dactylitis in psoriatic arthritis. Ann Rheum Dis. 2018;77(6):922-5.<br />24.Sapundzhieva T, Karalilova R, Batalov A. Hand ultrasound patterns in rheumatoid and psoriatic arthritis: the role of ultrasound in the differential diagnosis. Rheumatol Int. 2020;40(6):837-48.<br />25.Tinazzi I, McGonagle D, Macchioni P, Aydin SZ. Power Doppler enhancement of accessory pulleys confirming disease localization in psoriatic dactylitis. Rheumatology (Oxford). 2020;59(8):2030-4.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40723703</guid><pubDate>Sun, 06 Sep 2020 02:03:38 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40723703/pulley_part_ii_pathology.mp3" length="3344346" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1.Bianchi S, Martinoli C, de Gautard R, Gaignot C. Ultrasound of the digital flexor system: Normal and pathological findings(). J Ultrasound. 2007;10(2):85-92.
2.DP G. Green’s Operative Hand Surgery.
3.Hauger O, Chung CB, Lektrakul N, Botte...</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1.Bianchi S, Martinoli C, de Gautard R, Gaignot C. Ultrasound of the digital flexor system: Normal and pathological findings(). J Ultrasound. 2007;10(2):85-92.<br />2.DP G. Green’s Operative Hand Surgery.<br />3.Hauger O, Chung CB, Lektrakul N, Botte MJ, Trudell D, Boutin RD, et al. Pulley system in the fingers: normal anatomy and simulated lesions in cadavers at MR imaging, CT, and US with and without contrast material distention of the tendon sheath. Radiology. 2000;217(1):201-12.<br />4.Makkouk AH, Oetgen ME, Swigart CR, Dodds SD. Trigger finger: etiology, evaluation, and treatment. Curr Rev Musculoskelet Med. 2008;1(2):92-6.<br />5.Guerini H, Pessis E, Theumann N, Le Quintrec JS, Campagna R, Chevrot A, et al. Sonographic appearance of trigger fingers. J Ultrasound Med. 2008;27(10):1407-13.<br />6.Tagliafico A, Resmini E, van Holsbeeck MT, Derchi LE, Ferone D, Martinoli C. Sonographic depiction of trigger fingers in acromegaly. J Ultrasound Med. 2009;28(11):1441-6.<br />7.Drossos K, Remmelink M, Nagy N, de Maertelaer V, Pasteels JL, Schuind F. Correlations between clinical presentations of adult trigger digits and histologic aspects of the A1 pulley. J Hand Surg Am. 2009;34(8):1429-35.<br />8.Sato J, Ishii Y, Noguchi H. Comparison of the Thickness of Pulley and Flexor Tendon Between in Neutral and in Flexed Positions of Trigger Finger. Open Orthop J. 2016;10:36-40.<br />9.Miyamoto H, Miura T, Isayama H, Masuzaki R, Koike K, Ohe T. Stiffness of the first annular pulley in normal and trigger fingers. J Hand Surg Am. 2011;36(9):1486-91.<br />10.Sbernardori MC, Mazzarello V, Tranquilli-Leali P. Scanning electron microscopic findings of the gliding surface of the A1 pulley in trigger fingers and thumbs. J Hand Surg Eur Vol. 2007;32(4):384-7.<br />11.Tanaka Y, Gotani H, Yano K, Sasaki K, Miyashita M, Hamada Y. Sonographic evaluation of effects of the volar plate on trigger finger. J Orthop Sci. 2015;20(6):999-1004.<br />12.Cordiner-Lawrie S, Diaz J, Burge P, Athanasou NA. Localized amyloid deposition in trigger finger. J Hand Surg Br. 2001;26(4):380-3.<br />13.Matthews A, Smith K, Read L, Nicholas J, Schmidt E. Trigger finger: An overview of the treatment options. JAAPA. 2019;32(1):17-21.<br />14.Kim HR, Lee SH. Ultrasonographic assessment of clinically diagnosed trigger fingers. Rheumatol Int. 2010;30(11):1455-8.<br />15.Chuang XL, Ooi CC, Chin ST, Png MA, Wong SK, Tay SC, et al. What triggers in trigger finger? The flexor tendons at the flexor digitorum superficialis bifurcation. J Plast Reconstr Aesthet Surg. 2017;70(10):1411-9.<br />16.Sato J, Ishii Y, Noguchi H, Takeda M. Sonographic appearance of the flexor tendon, volar plate, and A1 pulley with respect to the severity of trigger finger. J Hand Surg Am. 2012;37(10):2012-20.<br />17.Jacob D, Cohen M, Bianchi S. Ultrasound imaging of non-traumatic lesions of wrist and hand tendons. Eur Radiol. 2007;17(9):2237-47.<br />18.Sato J, Ishii Y, Noguchi H, Takeda M. Sonographic analyses of pulley and flexor tendon in idiopathic trigger finger with interphalangeal joint contracture. Ultrasound Med Biol. 2014;40(6):1146-53.<br />19.Spirig A, Juon B, Banz Y, Rieben R, Vogelin E. Correlation Between Sonographic and In Vivo Measurement of A1 Pulleys in Trigger Fingers. Ultrasound Med Biol. 2016;42(7):1482-90.<br />20.Gruber H, Peer S, Loizides A. The "dark tendon sign" (DTS): a sonographic indicator for idiopathic trigger finger. Ultrasound Med Biol. 2011;37(5):688-92.<br />21.Mogami R, Pereira Vaz JL, de Fatima Barcelos Chagas Y, de Abreu MM, Torezani RS, de Almeida Vieira A, et al. Ultrasonography of Hands and Wrists in the Diagnosis of Complications of Chikungunya Fever. J Ultrasound Med. 2018;37(2):511-20.<br />22.Kaeley GS. Visualization of Enthesitis by Ultrasound: a Key Diagnostic Tool in Spondyloarthropathy Diagnosis and Management. Curr Rheumatol Rep. 2020;22(9):48.<br />23.Tinazzi I, McGonagle D, Aydin SZ, Chessa D, Marchetta A, Macchioni P. 'Deep Koebner'...]]></itunes:summary><itunes:duration>558</itunes:duration><itunes:keywords>annular,fingers,pulleys,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>PULLEYS-PART-I (ANATOMY)</title><link>https://www.spreaker.com/episode/pulleys-part-i-anatomy--40723117</link><description><![CDATA[REFERENCES<br />1.Bianchi S, Martinoli C, de Gautard R, Gaignot C. Ultrasound of the digital flexor system: Normal and pathological findings(). J Ultrasound. 2007;10(2):85-92.<br />2.DP G. Green’s Operative Hand Surgery.<br />3.Hauger O, Chung CB, Lektrakul N, Botte MJ, Trudell D, Boutin RD, et al. Pulley system in the fingers: normal anatomy and simulated lesions in cadavers at MR imaging, CT, and US with and without contrast material distention of the tendon sheath. Radiology. 2000;217(1):201-12.<br />4.Makkouk AH, Oetgen ME, Swigart CR, Dodds SD. Trigger finger: etiology, evaluation, and treatment. Curr Rev Musculoskelet Med. 2008;1(2):92-6.<br />5.Guerini H, Pessis E, Theumann N, Le Quintrec JS, Campagna R, Chevrot A, et al. Sonographic appearance of trigger fingers. J Ultrasound Med. 2008;27(10):1407-13.<br />6.Tagliafico A, Resmini E, van Holsbeeck MT, Derchi LE, Ferone D, Martinoli C. Sonographic depiction of trigger fingers in acromegaly. J Ultrasound Med. 2009;28(11):1441-6.<br />7.Drossos K, Remmelink M, Nagy N, de Maertelaer V, Pasteels JL, Schuind F. Correlations between clinical presentations of adult trigger digits and histologic aspects of the A1 pulley. J Hand Surg Am. 2009;34(8):1429-35.<br />8.Sato J, Ishii Y, Noguchi H. Comparison of the Thickness of Pulley and Flexor Tendon Between in Neutral and in Flexed Positions of Trigger Finger. Open Orthop J. 2016;10:36-40.<br />9.Miyamoto H, Miura T, Isayama H, Masuzaki R, Koike K, Ohe T. Stiffness of the first annular pulley in normal and trigger fingers. J Hand Surg Am. 2011;36(9):1486-91.<br />10.Sbernardori MC, Mazzarello V, Tranquilli-Leali P. Scanning electron microscopic findings of the gliding surface of the A1 pulley in trigger fingers and thumbs. J Hand Surg Eur Vol. 2007;32(4):384-7.<br />11.Tanaka Y, Gotani H, Yano K, Sasaki K, Miyashita M, Hamada Y. Sonographic evaluation of effects of the volar plate on trigger finger. J Orthop Sci. 2015;20(6):999-1004.<br />12.Cordiner-Lawrie S, Diaz J, Burge P, Athanasou NA. Localized amyloid deposition in trigger finger. J Hand Surg Br. 2001;26(4):380-3.<br />13.Matthews A, Smith K, Read L, Nicholas J, Schmidt E. Trigger finger: An overview of the treatment options. JAAPA. 2019;32(1):17-21.<br />14.Kim HR, Lee SH. Ultrasonographic assessment of clinically diagnosed trigger fingers. Rheumatol Int. 2010;30(11):1455-8.<br />15.Chuang XL, Ooi CC, Chin ST, Png MA, Wong SK, Tay SC, et al. What triggers in trigger finger? The flexor tendons at the flexor digitorum superficialis bifurcation. J Plast Reconstr Aesthet Surg. 2017;70(10):1411-9.<br />16.Sato J, Ishii Y, Noguchi H, Takeda M. Sonographic appearance of the flexor tendon, volar plate, and A1 pulley with respect to the severity of trigger finger. J Hand Surg Am. 2012;37(10):2012-20.<br />17.Jacob D, Cohen M, Bianchi S. Ultrasound imaging of non-traumatic lesions of wrist and hand tendons. Eur Radiol. 2007;17(9):2237-47.<br />18.Sato J, Ishii Y, Noguchi H, Takeda M. Sonographic analyses of pulley and flexor tendon in idiopathic trigger finger with interphalangeal joint contracture. Ultrasound Med Biol. 2014;40(6):1146-53.<br />19.Spirig A, Juon B, Banz Y, Rieben R, Vogelin E. Correlation Between Sonographic and In Vivo Measurement of A1 Pulleys in Trigger Fingers. Ultrasound Med Biol. 2016;42(7):1482-90.<br />20.Gruber H, Peer S, Loizides A. The "dark tendon sign" (DTS): a sonographic indicator for idiopathic trigger finger. Ultrasound Med Biol. 2011;37(5):688-92.<br />21.Mogami R, Pereira Vaz JL, de Fatima Barcelos Chagas Y, de Abreu MM, Torezani RS, de Almeida Vieira A, et al. Ultrasonography of Hands and Wrists in the Diagnosis of Complications of Chikungunya Fever. J Ultrasound Med. 2018;37(2):511-20.<br />22.Kaeley GS. Visualization of Enthesitis by Ultrasound: a Key Diagnostic Tool in Spondyloarthropathy Diagnosis and Management. Curr Rheumatol Rep. 2020;22(9):48.<br />23.Tinazzi I, McGonagle D, Aydin SZ, Chessa D, Marchetta A, Macchioni P. 'Deep Koebner' phenomenon of the flexor tendon-associated accessory pulleys as a novel factor in tenosynovitis and dactylitis in psoriatic arthritis. Ann Rheum Dis. 2018;77(6):922-5.<br />24.Sapundzhieva T, Karalilova R, Batalov A. Hand ultrasound patterns in rheumatoid and psoriatic arthritis: the role of ultrasound in the differential diagnosis. Rheumatol Int. 2020;40(6):837-48.<br />25.Tinazzi I, McGonagle D, Macchioni P, Aydin SZ. Power Doppler enhancement of accessory pulleys confirming disease localization in psoriatic dactylitis. Rheumatology (Oxford). 2020;59(8):2030-4.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40723117</guid><pubDate>Sun, 06 Sep 2020 00:35:27 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40723117/pulleys_part_i_anatomy.mp3" length="1020573" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1.Bianchi S, Martinoli C, de Gautard R, Gaignot C. Ultrasound of the digital flexor system: Normal and pathological findings(). J Ultrasound. 2007;10(2):85-92.
2.DP G. Green’s Operative Hand Surgery.
3.Hauger O, Chung CB, Lektrakul N, Botte...</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1.Bianchi S, Martinoli C, de Gautard R, Gaignot C. Ultrasound of the digital flexor system: Normal and pathological findings(). J Ultrasound. 2007;10(2):85-92.<br />2.DP G. Green’s Operative Hand Surgery.<br />3.Hauger O, Chung CB, Lektrakul N, Botte MJ, Trudell D, Boutin RD, et al. Pulley system in the fingers: normal anatomy and simulated lesions in cadavers at MR imaging, CT, and US with and without contrast material distention of the tendon sheath. Radiology. 2000;217(1):201-12.<br />4.Makkouk AH, Oetgen ME, Swigart CR, Dodds SD. Trigger finger: etiology, evaluation, and treatment. Curr Rev Musculoskelet Med. 2008;1(2):92-6.<br />5.Guerini H, Pessis E, Theumann N, Le Quintrec JS, Campagna R, Chevrot A, et al. Sonographic appearance of trigger fingers. J Ultrasound Med. 2008;27(10):1407-13.<br />6.Tagliafico A, Resmini E, van Holsbeeck MT, Derchi LE, Ferone D, Martinoli C. Sonographic depiction of trigger fingers in acromegaly. J Ultrasound Med. 2009;28(11):1441-6.<br />7.Drossos K, Remmelink M, Nagy N, de Maertelaer V, Pasteels JL, Schuind F. Correlations between clinical presentations of adult trigger digits and histologic aspects of the A1 pulley. J Hand Surg Am. 2009;34(8):1429-35.<br />8.Sato J, Ishii Y, Noguchi H. Comparison of the Thickness of Pulley and Flexor Tendon Between in Neutral and in Flexed Positions of Trigger Finger. Open Orthop J. 2016;10:36-40.<br />9.Miyamoto H, Miura T, Isayama H, Masuzaki R, Koike K, Ohe T. Stiffness of the first annular pulley in normal and trigger fingers. J Hand Surg Am. 2011;36(9):1486-91.<br />10.Sbernardori MC, Mazzarello V, Tranquilli-Leali P. Scanning electron microscopic findings of the gliding surface of the A1 pulley in trigger fingers and thumbs. J Hand Surg Eur Vol. 2007;32(4):384-7.<br />11.Tanaka Y, Gotani H, Yano K, Sasaki K, Miyashita M, Hamada Y. Sonographic evaluation of effects of the volar plate on trigger finger. J Orthop Sci. 2015;20(6):999-1004.<br />12.Cordiner-Lawrie S, Diaz J, Burge P, Athanasou NA. Localized amyloid deposition in trigger finger. J Hand Surg Br. 2001;26(4):380-3.<br />13.Matthews A, Smith K, Read L, Nicholas J, Schmidt E. Trigger finger: An overview of the treatment options. JAAPA. 2019;32(1):17-21.<br />14.Kim HR, Lee SH. Ultrasonographic assessment of clinically diagnosed trigger fingers. Rheumatol Int. 2010;30(11):1455-8.<br />15.Chuang XL, Ooi CC, Chin ST, Png MA, Wong SK, Tay SC, et al. What triggers in trigger finger? The flexor tendons at the flexor digitorum superficialis bifurcation. J Plast Reconstr Aesthet Surg. 2017;70(10):1411-9.<br />16.Sato J, Ishii Y, Noguchi H, Takeda M. Sonographic appearance of the flexor tendon, volar plate, and A1 pulley with respect to the severity of trigger finger. J Hand Surg Am. 2012;37(10):2012-20.<br />17.Jacob D, Cohen M, Bianchi S. Ultrasound imaging of non-traumatic lesions of wrist and hand tendons. Eur Radiol. 2007;17(9):2237-47.<br />18.Sato J, Ishii Y, Noguchi H, Takeda M. Sonographic analyses of pulley and flexor tendon in idiopathic trigger finger with interphalangeal joint contracture. Ultrasound Med Biol. 2014;40(6):1146-53.<br />19.Spirig A, Juon B, Banz Y, Rieben R, Vogelin E. Correlation Between Sonographic and In Vivo Measurement of A1 Pulleys in Trigger Fingers. Ultrasound Med Biol. 2016;42(7):1482-90.<br />20.Gruber H, Peer S, Loizides A. The "dark tendon sign" (DTS): a sonographic indicator for idiopathic trigger finger. Ultrasound Med Biol. 2011;37(5):688-92.<br />21.Mogami R, Pereira Vaz JL, de Fatima Barcelos Chagas Y, de Abreu MM, Torezani RS, de Almeida Vieira A, et al. Ultrasonography of Hands and Wrists in the Diagnosis of Complications of Chikungunya Fever. J Ultrasound Med. 2018;37(2):511-20.<br />22.Kaeley GS. Visualization of Enthesitis by Ultrasound: a Key Diagnostic Tool in Spondyloarthropathy Diagnosis and Management. Curr Rheumatol Rep. 2020;22(9):48.<br />23.Tinazzi I, McGonagle D, Aydin SZ, Chessa D, Marchetta A, Macchioni P. 'Deep Koebner'...]]></itunes:summary><itunes:duration>171</itunes:duration><itunes:keywords>annular,fingers,pulley,ultrasound</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>WHAT THE RADIOLOGIST SHOULD KNOW ABOUT VASCULAR MANIFESTATIONS OF COVID-19 PART III</title><link>https://www.spreaker.com/episode/what-the-radiologist-should-know-about-vascular-manifestations-of-covid-19-part-iii--40406286</link><description><![CDATA[REFERENCES<br />1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the renin-angiotensin system. Eur Heart J Cardiovasc Pharmacother. 2020.<br />2.Santamarina MG, Boisier D, Contreras R, Baque M, Volpacchio M, Beddings I. COVID-19: a hypothesis regarding the ventilation-perfusion mismatch. Crit Care. 2020;24(1):395.<br />3.Merrill JT, Erkan D, Winakur J, James JA. Emerging evidence of a COVID-19 thrombotic syndrome has treatment implications. Nat Rev Rheumatol. 2020.<br />4.Teuwen LA, Geldhof V, Pasut A, Carmeliet P. COVID-19: the vasculature unleashed. Nat Rev Immunol. 2020;20(7):389-91.<br />5.Potus F, Mai V, Lebret M, Malenfant S, Breton-Gagnon E, Lajoie AC, et al. Novel insights on the pulmonary vascular consequences of COVID-19. Am J Physiol Lung Cell Mol Physiol. 2020;319(2):L277-L88.<br />6.Varga Z, Flammer AJ, Steiger P, Haberecker M, Andermatt R, Zinkernagel AS, et al. Endothelial cell infection and endotheliitis in COVID-19. Lancet. 2020;395(10234):1417-8.<br />7.Ackermann M, Verleden SE, Kuehnel M, Haverich A, Welte T, Laenger F, et al. Pulmonary Vascular Endothelialitis, Thrombosis, and Angiogenesis in Covid-19. N Engl J Med. 2020;383(2):120-8.<br />8.McGonagle D. Immune Mechanisms of Pulmonary Intravascular Coagulopathy in COVID-19 Pneumonia. lancet Rheumatol. 2020.<br />9.Perricone C, Bartoloni E, Bursi R, Cafaro G, Guidelli GM, Shoenfeld Y, et al. COVID-19 as part of the hyperferritinemic syndromes: the role of iron depletion therapy. Immunol Res. 2020;68(4):213-24.<br />10.Long B, Brady WJ, Koyfman A, Gottlieb M. Cardiovascular complications in COVID-19. Am J Emerg Med. 2020;38(7):1504-7.<br />11.Price LC, McCabe C, Garfield B, Wort SJ. Thrombosis and COVID-19 pneumonia: the clot thickens! Eur Respir J. 2020;56(1).<br />12.Parry AH, Wani AH, Yaseen M, Dar MI. Demystifying pulmonary vascular complications in severe coronavirus disease-19 pneumonia (COVID-19) in the light of clinico-radiologic-pathologic correlation. Thromb Res. 2020.<br />13.Polak SB, Van Gool IC, Cohen D, von der Thusen JH, van Paassen J. A systematic review of pathological findings in COVID-19: a pathophysiological timeline and possible mechanisms of disease progression. Mod Pathol. 2020.<br />14.von der Thusen J, van der Eerden M. Histopathology and genetic susceptibility in COVID-19 pneumonia. Eur J Clin Invest. 2020:e13259.<br />15.Behzad S, Aghaghazvini L, Radmard AR, Gholamrezanezhad A. Extrapulmonary manifestations of COVID-19: Radiologic and clinical overview. Clin Imaging. 2020;66:35-41.<br />16.Qanadli SD, Beigelman-Aubry C, Rotzinger DC. Vascular Changes Detected With Thoracic CT in Coronavirus Disease (COVID-19) Might Be Significant Determinants for Accurate Diagnosis and Optimal Patient Management. AJR Am J Roentgenol. 2020;215(1):W15.<br />17.Moreira BL, Santana PRP, Zanetti G, Marchiori E. COVID-19 and acute pulmonary embolism: what should be considered to indicate a computed tomography pulmonary angiography scan? Rev Soc Bras Med Trop. 2020;53:e20200267.<br />18.Oudkerk M, Kuijpers D, Oudkerk SF, van Beek EJ. The vascular nature of COVID-19. Br J Radiol. 2020:20200718.<br />19.Lang M, Som A, Mendoza DP, Flores EJ, Reid N, Carey D, et al. Hypoxaemia related to COVID-19: vascular and perfusion abnormalities on dual-energy CT. Lancet Infect Dis. 2020.<br />20.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected by Pulmonary CT Angiography. Radiology. 2020:201544.<br />21.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020:201955.<br />22.Lang M. Pulmonary Vascular Manifestations of COVID-19 Pneumonia. Radiol Cardiothorac Imaging. 2020.<br />23.Kaminetzky M. Pulmonary Embolism on CTPA in COVID-19 Patients. Radiol Cardiothorac Imaging. 2020.<br />24.Thachil J, Srivastava A. SARS-2 Coronavirus-Associated Hemostatic Lung Abnormality in COVID-19: Is It Pulmonary Thrombosis or Pulmonary Embolism? Semin Thromb Hemost. 2020.<br />25.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected with Pulmonary CT Angiography. Radiology. 2020;296(3):E186-E8.<br />26.Saba L, Sverzellati N. Is COVID Evolution Due to Occurrence of Pulmonary Vascular Thrombosis? J Thorac Imaging. 2020.<br />27.E C. Pulmonary Thromboembolism in COVID-19: Venous Thromboembolism or Arterial Thrombosis? Radiol Cardiothorac Imaging. 2020.<br />28.Provencher S, Potus F, Bonnet S. COVID-19 and the pulmonary vasculature. Pulm Circ. 2020;10(3):2045894020933088.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40406286</guid><pubDate>Wed, 19 Aug 2020 16:01:23 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40406286/what_the_radiologist_should_know_about_vascular_manifestations_of_covid_19_part_iii.mp3" length="1923210" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the...</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the renin-angiotensin system. Eur Heart J Cardiovasc Pharmacother. 2020.<br />2.Santamarina MG, Boisier D, Contreras R, Baque M, Volpacchio M, Beddings I. COVID-19: a hypothesis regarding the ventilation-perfusion mismatch. Crit Care. 2020;24(1):395.<br />3.Merrill JT, Erkan D, Winakur J, James JA. Emerging evidence of a COVID-19 thrombotic syndrome has treatment implications. Nat Rev Rheumatol. 2020.<br />4.Teuwen LA, Geldhof V, Pasut A, Carmeliet P. COVID-19: the vasculature unleashed. Nat Rev Immunol. 2020;20(7):389-91.<br />5.Potus F, Mai V, Lebret M, Malenfant S, Breton-Gagnon E, Lajoie AC, et al. Novel insights on the pulmonary vascular consequences of COVID-19. Am J Physiol Lung Cell Mol Physiol. 2020;319(2):L277-L88.<br />6.Varga Z, Flammer AJ, Steiger P, Haberecker M, Andermatt R, Zinkernagel AS, et al. Endothelial cell infection and endotheliitis in COVID-19. Lancet. 2020;395(10234):1417-8.<br />7.Ackermann M, Verleden SE, Kuehnel M, Haverich A, Welte T, Laenger F, et al. Pulmonary Vascular Endothelialitis, Thrombosis, and Angiogenesis in Covid-19. N Engl J Med. 2020;383(2):120-8.<br />8.McGonagle D. Immune Mechanisms of Pulmonary Intravascular Coagulopathy in COVID-19 Pneumonia. lancet Rheumatol. 2020.<br />9.Perricone C, Bartoloni E, Bursi R, Cafaro G, Guidelli GM, Shoenfeld Y, et al. COVID-19 as part of the hyperferritinemic syndromes: the role of iron depletion therapy. Immunol Res. 2020;68(4):213-24.<br />10.Long B, Brady WJ, Koyfman A, Gottlieb M. Cardiovascular complications in COVID-19. Am J Emerg Med. 2020;38(7):1504-7.<br />11.Price LC, McCabe C, Garfield B, Wort SJ. Thrombosis and COVID-19 pneumonia: the clot thickens! Eur Respir J. 2020;56(1).<br />12.Parry AH, Wani AH, Yaseen M, Dar MI. Demystifying pulmonary vascular complications in severe coronavirus disease-19 pneumonia (COVID-19) in the light of clinico-radiologic-pathologic correlation. Thromb Res. 2020.<br />13.Polak SB, Van Gool IC, Cohen D, von der Thusen JH, van Paassen J. A systematic review of pathological findings in COVID-19: a pathophysiological timeline and possible mechanisms of disease progression. Mod Pathol. 2020.<br />14.von der Thusen J, van der Eerden M. Histopathology and genetic susceptibility in COVID-19 pneumonia. Eur J Clin Invest. 2020:e13259.<br />15.Behzad S, Aghaghazvini L, Radmard AR, Gholamrezanezhad A. Extrapulmonary manifestations of COVID-19: Radiologic and clinical overview. Clin Imaging. 2020;66:35-41.<br />16.Qanadli SD, Beigelman-Aubry C, Rotzinger DC. Vascular Changes Detected With Thoracic CT in Coronavirus Disease (COVID-19) Might Be Significant Determinants for Accurate Diagnosis and Optimal Patient Management. AJR Am J Roentgenol. 2020;215(1):W15.<br />17.Moreira BL, Santana PRP, Zanetti G, Marchiori E. COVID-19 and acute pulmonary embolism: what should be considered to indicate a computed tomography pulmonary angiography scan? Rev Soc Bras Med Trop. 2020;53:e20200267.<br />18.Oudkerk M, Kuijpers D, Oudkerk SF, van Beek EJ. The vascular nature of COVID-19. Br J Radiol. 2020:20200718.<br />19.Lang M, Som A, Mendoza DP, Flores EJ, Reid N, Carey D, et al. Hypoxaemia related to COVID-19: vascular and perfusion abnormalities on dual-energy CT. Lancet Infect Dis. 2020.<br />20.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected by Pulmonary CT Angiography. Radiology. 2020:201544.<br />21.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020:201955.<br />22.Lang M. Pulmonary Vascular Manifestations of COVID-19 Pneumonia. Radiol Cardiothorac Imaging. 2020.<br />23.Kaminetzky M. Pulmonary Embolism on CTPA in COVID-19 Patients. Radiol...]]></itunes:summary><itunes:duration>321</itunes:duration><itunes:keywords>covid-19,sars-cov-2,thrombosis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>WHAT THE RADIOLOGIST SHOULD KNOW ABOUT VASCULAR MANIFESTATIONS OF COVID-19 PART II</title><link>https://www.spreaker.com/episode/what-the-radiologist-should-know-about-vascular-manifestations-of-covid-19-part-ii--40405583</link><description><![CDATA[REFERÊNCES<br />1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the renin-angiotensin system. Eur Heart J Cardiovasc Pharmacother. 2020.<br />2.Santamarina MG, Boisier D, Contreras R, Baque M, Volpacchio M, Beddings I. COVID-19: a hypothesis regarding the ventilation-perfusion mismatch. Crit Care. 2020;24(1):395.<br />3.Merrill JT, Erkan D, Winakur J, James JA. Emerging evidence of a COVID-19 thrombotic syndrome has treatment implications. Nat Rev Rheumatol. 2020.<br />4.Teuwen LA, Geldhof V, Pasut A, Carmeliet P. COVID-19: the vasculature unleashed. Nat Rev Immunol. 2020;20(7):389-91.<br />5.Potus F, Mai V, Lebret M, Malenfant S, Breton-Gagnon E, Lajoie AC, et al. Novel insights on the pulmonary vascular consequences of COVID-19. Am J Physiol Lung Cell Mol Physiol. 2020;319(2):L277-L88.<br />6.Varga Z, Flammer AJ, Steiger P, Haberecker M, Andermatt R, Zinkernagel AS, et al. Endothelial cell infection and endotheliitis in COVID-19. Lancet. 2020;395(10234):1417-8.<br />7.Ackermann M, Verleden SE, Kuehnel M, Haverich A, Welte T, Laenger F, et al. Pulmonary Vascular Endothelialitis, Thrombosis, and Angiogenesis in Covid-19. N Engl J Med. 2020;383(2):120-8.<br />8.McGonagle D. Immune Mechanisms of Pulmonary Intravascular Coagulopathy in COVID-19 Pneumonia. lancet Rheumatol. 2020.<br />9.Perricone C, Bartoloni E, Bursi R, Cafaro G, Guidelli GM, Shoenfeld Y, et al. COVID-19 as part of the hyperferritinemic syndromes: the role of iron depletion therapy. Immunol Res. 2020;68(4):213-24.<br />10.Long B, Brady WJ, Koyfman A, Gottlieb M. Cardiovascular complications in COVID-19. Am J Emerg Med. 2020;38(7):1504-7.<br />11.Price LC, McCabe C, Garfield B, Wort SJ. Thrombosis and COVID-19 pneumonia: the clot thickens! Eur Respir J. 2020;56(1).<br />12.Parry AH, Wani AH, Yaseen M, Dar MI. Demystifying pulmonary vascular complications in severe coronavirus disease-19 pneumonia (COVID-19) in the light of clinico-radiologic-pathologic correlation. Thromb Res. 2020.<br />13.Polak SB, Van Gool IC, Cohen D, von der Thusen JH, van Paassen J. A systematic review of pathological findings in COVID-19: a pathophysiological timeline and possible mechanisms of disease progression. Mod Pathol. 2020.<br />14.von der Thusen J, van der Eerden M. Histopathology and genetic susceptibility in COVID-19 pneumonia. Eur J Clin Invest. 2020:e13259.<br />15.Behzad S, Aghaghazvini L, Radmard AR, Gholamrezanezhad A. Extrapulmonary manifestations of COVID-19: Radiologic and clinical overview. Clin Imaging. 2020;66:35-41.<br />16.Qanadli SD, Beigelman-Aubry C, Rotzinger DC. Vascular Changes Detected With Thoracic CT in Coronavirus Disease (COVID-19) Might Be Significant Determinants for Accurate Diagnosis and Optimal Patient Management. AJR Am J Roentgenol. 2020;215(1):W15.<br />17.Moreira BL, Santana PRP, Zanetti G, Marchiori E. COVID-19 and acute pulmonary embolism: what should be considered to indicate a computed tomography pulmonary angiography scan? Rev Soc Bras Med Trop. 2020;53:e20200267.<br />18.Oudkerk M, Kuijpers D, Oudkerk SF, van Beek EJ. The vascular nature of COVID-19. Br J Radiol. 2020:20200718.<br />19.Lang M, Som A, Mendoza DP, Flores EJ, Reid N, Carey D, et al. Hypoxaemia related to COVID-19: vascular and perfusion abnormalities on dual-energy CT. Lancet Infect Dis. 2020.<br />20.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected by Pulmonary CT Angiography. Radiology. 2020:201544.<br />21.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020:201955.<br />22.Lang M. Pulmonary Vascular Manifestations of COVID-19 Pneumonia. Radiol Cardiothorac Imaging. 2020.<br />23.Kaminetzky M. Pulmonary Embolism on CTPA in COVID-19 Patients. Radiol Cardiothorac Imaging. 2020.<br />24.Thachil J, Srivastava A. SARS-2 Coronavirus-Associated Hemostatic Lung Abnormality in COVID-19: Is It Pulmonary Thrombosis or Pulmonary Embolism? Semin Thromb Hemost. 2020.<br />25.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected with Pulmonary CT Angiography. Radiology. 2020;296(3):E186-E8.<br />26.Saba L, Sverzellati N. Is COVID Evolution Due to Occurrence of Pulmonary Vascular Thrombosis? J Thorac Imaging. 2020.<br />27.E C. Pulmonary Thromboembolism in COVID-19: Venous Thromboembolism or Arterial Thrombosis? Radiol Cardiothorac Imaging. 2020.<br />28.Provencher S, Potus F, Bonnet S. COVID-19 and the pulmonary vasculature. Pulm Circ. 2020;10(3):2045894020933088.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40405583</guid><pubDate>Wed, 19 Aug 2020 15:16:37 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40405583/what_the_radiologist_should_know_about_vascular_manifestations_of_covid_19_part_ii.mp3" length="1513773" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCES
1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCES<br />1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the renin-angiotensin system. Eur Heart J Cardiovasc Pharmacother. 2020.<br />2.Santamarina MG, Boisier D, Contreras R, Baque M, Volpacchio M, Beddings I. COVID-19: a hypothesis regarding the ventilation-perfusion mismatch. Crit Care. 2020;24(1):395.<br />3.Merrill JT, Erkan D, Winakur J, James JA. Emerging evidence of a COVID-19 thrombotic syndrome has treatment implications. Nat Rev Rheumatol. 2020.<br />4.Teuwen LA, Geldhof V, Pasut A, Carmeliet P. COVID-19: the vasculature unleashed. Nat Rev Immunol. 2020;20(7):389-91.<br />5.Potus F, Mai V, Lebret M, Malenfant S, Breton-Gagnon E, Lajoie AC, et al. Novel insights on the pulmonary vascular consequences of COVID-19. Am J Physiol Lung Cell Mol Physiol. 2020;319(2):L277-L88.<br />6.Varga Z, Flammer AJ, Steiger P, Haberecker M, Andermatt R, Zinkernagel AS, et al. Endothelial cell infection and endotheliitis in COVID-19. Lancet. 2020;395(10234):1417-8.<br />7.Ackermann M, Verleden SE, Kuehnel M, Haverich A, Welte T, Laenger F, et al. Pulmonary Vascular Endothelialitis, Thrombosis, and Angiogenesis in Covid-19. N Engl J Med. 2020;383(2):120-8.<br />8.McGonagle D. Immune Mechanisms of Pulmonary Intravascular Coagulopathy in COVID-19 Pneumonia. lancet Rheumatol. 2020.<br />9.Perricone C, Bartoloni E, Bursi R, Cafaro G, Guidelli GM, Shoenfeld Y, et al. COVID-19 as part of the hyperferritinemic syndromes: the role of iron depletion therapy. Immunol Res. 2020;68(4):213-24.<br />10.Long B, Brady WJ, Koyfman A, Gottlieb M. Cardiovascular complications in COVID-19. Am J Emerg Med. 2020;38(7):1504-7.<br />11.Price LC, McCabe C, Garfield B, Wort SJ. Thrombosis and COVID-19 pneumonia: the clot thickens! Eur Respir J. 2020;56(1).<br />12.Parry AH, Wani AH, Yaseen M, Dar MI. Demystifying pulmonary vascular complications in severe coronavirus disease-19 pneumonia (COVID-19) in the light of clinico-radiologic-pathologic correlation. Thromb Res. 2020.<br />13.Polak SB, Van Gool IC, Cohen D, von der Thusen JH, van Paassen J. A systematic review of pathological findings in COVID-19: a pathophysiological timeline and possible mechanisms of disease progression. Mod Pathol. 2020.<br />14.von der Thusen J, van der Eerden M. Histopathology and genetic susceptibility in COVID-19 pneumonia. Eur J Clin Invest. 2020:e13259.<br />15.Behzad S, Aghaghazvini L, Radmard AR, Gholamrezanezhad A. Extrapulmonary manifestations of COVID-19: Radiologic and clinical overview. Clin Imaging. 2020;66:35-41.<br />16.Qanadli SD, Beigelman-Aubry C, Rotzinger DC. Vascular Changes Detected With Thoracic CT in Coronavirus Disease (COVID-19) Might Be Significant Determinants for Accurate Diagnosis and Optimal Patient Management. AJR Am J Roentgenol. 2020;215(1):W15.<br />17.Moreira BL, Santana PRP, Zanetti G, Marchiori E. COVID-19 and acute pulmonary embolism: what should be considered to indicate a computed tomography pulmonary angiography scan? Rev Soc Bras Med Trop. 2020;53:e20200267.<br />18.Oudkerk M, Kuijpers D, Oudkerk SF, van Beek EJ. The vascular nature of COVID-19. Br J Radiol. 2020:20200718.<br />19.Lang M, Som A, Mendoza DP, Flores EJ, Reid N, Carey D, et al. Hypoxaemia related to COVID-19: vascular and perfusion abnormalities on dual-energy CT. Lancet Infect Dis. 2020.<br />20.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected by Pulmonary CT Angiography. Radiology. 2020:201544.<br />21.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020:201955.<br />22.Lang M. Pulmonary Vascular Manifestations of COVID-19 Pneumonia. Radiol Cardiothorac Imaging. 2020.<br />23.Kaminetzky M. Pulmonary Embolism on CTPA in COVID-19 Patients. Radiol...]]></itunes:summary><itunes:duration>253</itunes:duration><itunes:keywords>covid-19,sars-cov-2,thrombosis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>WHAT THE RADIOLOGIST SHOULD KNOW ABOUT VASCULAR MANIFESTATIONS OF COVID-19</title><link>https://www.spreaker.com/episode/what-the-radiologist-should-know-about-vascular-manifestations-of-covid-19--40405268</link><description><![CDATA[REFERÊNCES<br />1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the renin-angiotensin system. Eur Heart J Cardiovasc Pharmacother. 2020.<br />2.Santamarina MG, Boisier D, Contreras R, Baque M, Volpacchio M, Beddings I. COVID-19: a hypothesis regarding the ventilation-perfusion mismatch. Crit Care. 2020;24(1):395.<br />3.Merrill JT, Erkan D, Winakur J, James JA. Emerging evidence of a COVID-19 thrombotic syndrome has treatment implications. Nat Rev Rheumatol. 2020.<br />4.Teuwen LA, Geldhof V, Pasut A, Carmeliet P. COVID-19: the vasculature unleashed. Nat Rev Immunol. 2020;20(7):389-91.<br />5.Potus F, Mai V, Lebret M, Malenfant S, Breton-Gagnon E, Lajoie AC, et al. Novel insights on the pulmonary vascular consequences of COVID-19. Am J Physiol Lung Cell Mol Physiol. 2020;319(2):L277-L88.<br />6.Varga Z, Flammer AJ, Steiger P, Haberecker M, Andermatt R, Zinkernagel AS, et al. Endothelial cell infection and endotheliitis in COVID-19. Lancet. 2020;395(10234):1417-8.<br />7.Ackermann M, Verleden SE, Kuehnel M, Haverich A, Welte T, Laenger F, et al. Pulmonary Vascular Endothelialitis, Thrombosis, and Angiogenesis in Covid-19. N Engl J Med. 2020;383(2):120-8.<br />8.McGonagle D. Immune Mechanisms of Pulmonary Intravascular Coagulopathy in COVID-19 Pneumonia. lancet Rheumatol. 2020.<br />9.Perricone C, Bartoloni E, Bursi R, Cafaro G, Guidelli GM, Shoenfeld Y, et al. COVID-19 as part of the hyperferritinemic syndromes: the role of iron depletion therapy. Immunol Res. 2020;68(4):213-24.<br />10.Long B, Brady WJ, Koyfman A, Gottlieb M. Cardiovascular complications in COVID-19. Am J Emerg Med. 2020;38(7):1504-7.<br />11.Price LC, McCabe C, Garfield B, Wort SJ. Thrombosis and COVID-19 pneumonia: the clot thickens! Eur Respir J. 2020;56(1).<br />12.Parry AH, Wani AH, Yaseen M, Dar MI. Demystifying pulmonary vascular complications in severe coronavirus disease-19 pneumonia (COVID-19) in the light of clinico-radiologic-pathologic correlation. Thromb Res. 2020.<br />13.Polak SB, Van Gool IC, Cohen D, von der Thusen JH, van Paassen J. A systematic review of pathological findings in COVID-19: a pathophysiological timeline and possible mechanisms of disease progression. Mod Pathol. 2020.<br />14.von der Thusen J, van der Eerden M. Histopathology and genetic susceptibility in COVID-19 pneumonia. Eur J Clin Invest. 2020:e13259.<br />15.Behzad S, Aghaghazvini L, Radmard AR, Gholamrezanezhad A. Extrapulmonary manifestations of COVID-19: Radiologic and clinical overview. Clin Imaging. 2020;66:35-41.<br />16.Qanadli SD, Beigelman-Aubry C, Rotzinger DC. Vascular Changes Detected With Thoracic CT in Coronavirus Disease (COVID-19) Might Be Significant Determinants for Accurate Diagnosis and Optimal Patient Management. AJR Am J Roentgenol. 2020;215(1):W15.<br />17.Moreira BL, Santana PRP, Zanetti G, Marchiori E. COVID-19 and acute pulmonary embolism: what should be considered to indicate a computed tomography pulmonary angiography scan? Rev Soc Bras Med Trop. 2020;53:e20200267.<br />18.Oudkerk M, Kuijpers D, Oudkerk SF, van Beek EJ. The vascular nature of COVID-19. Br J Radiol. 2020:20200718.<br />19.Lang M, Som A, Mendoza DP, Flores EJ, Reid N, Carey D, et al. Hypoxaemia related to COVID-19: vascular and perfusion abnormalities on dual-energy CT. Lancet Infect Dis. 2020.<br />20.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected by Pulmonary CT Angiography. Radiology. 2020:201544.<br />21.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020:201955.<br />22.Lang M. Pulmonary Vascular Manifestations of COVID-19 Pneumonia. Radiol Cardiothorac Imaging. 2020.<br />23.Kaminetzky M. Pulmonary Embolism on CTPA in COVID-19 Patients. Radiol Cardiothorac Imaging. 2020.<br />24.Thachil J, Srivastava A. SARS-2 Coronavirus-Associated Hemostatic Lung Abnormality in COVID-19: Is It Pulmonary Thrombosis or Pulmonary Embolism? Semin Thromb Hemost. 2020.<br />25.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected with Pulmonary CT Angiography. Radiology. 2020;296(3):E186-E8.<br />26.Saba L, Sverzellati N. Is COVID Evolution Due to Occurrence of Pulmonary Vascular Thrombosis? J Thorac Imaging. 2020.<br />27.E C. Pulmonary Thromboembolism in COVID-19: Venous Thromboembolism or Arterial Thrombosis? Radiol Cardiothorac Imaging. 2020.<br />28.Provencher S, Potus F, Bonnet S. COVID-19 and the pulmonary vasculature. Pulm Circ. 2020;10(3):2045894020933088.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40405268</guid><pubDate>Wed, 19 Aug 2020 14:43:23 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40405268/what_the_radiologist_should_know_about_vascular_manifestations_of_covid_19.mp3" length="2155482" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERÊNCES
1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the...</itunes:subtitle><itunes:summary><![CDATA[REFERÊNCES<br />1.Offringa A, Montijn R, Singh S, Paul M, Pinto YM, Pinto-Sietsma SJ. The mechanistic overview of SARS-CoV-2 using angiotensin-converting enzyme 2 to enter the cell for replication: possible treatment options related to the renin-angiotensin system. Eur Heart J Cardiovasc Pharmacother. 2020.<br />2.Santamarina MG, Boisier D, Contreras R, Baque M, Volpacchio M, Beddings I. COVID-19: a hypothesis regarding the ventilation-perfusion mismatch. Crit Care. 2020;24(1):395.<br />3.Merrill JT, Erkan D, Winakur J, James JA. Emerging evidence of a COVID-19 thrombotic syndrome has treatment implications. Nat Rev Rheumatol. 2020.<br />4.Teuwen LA, Geldhof V, Pasut A, Carmeliet P. COVID-19: the vasculature unleashed. Nat Rev Immunol. 2020;20(7):389-91.<br />5.Potus F, Mai V, Lebret M, Malenfant S, Breton-Gagnon E, Lajoie AC, et al. Novel insights on the pulmonary vascular consequences of COVID-19. Am J Physiol Lung Cell Mol Physiol. 2020;319(2):L277-L88.<br />6.Varga Z, Flammer AJ, Steiger P, Haberecker M, Andermatt R, Zinkernagel AS, et al. Endothelial cell infection and endotheliitis in COVID-19. Lancet. 2020;395(10234):1417-8.<br />7.Ackermann M, Verleden SE, Kuehnel M, Haverich A, Welte T, Laenger F, et al. Pulmonary Vascular Endothelialitis, Thrombosis, and Angiogenesis in Covid-19. N Engl J Med. 2020;383(2):120-8.<br />8.McGonagle D. Immune Mechanisms of Pulmonary Intravascular Coagulopathy in COVID-19 Pneumonia. lancet Rheumatol. 2020.<br />9.Perricone C, Bartoloni E, Bursi R, Cafaro G, Guidelli GM, Shoenfeld Y, et al. COVID-19 as part of the hyperferritinemic syndromes: the role of iron depletion therapy. Immunol Res. 2020;68(4):213-24.<br />10.Long B, Brady WJ, Koyfman A, Gottlieb M. Cardiovascular complications in COVID-19. Am J Emerg Med. 2020;38(7):1504-7.<br />11.Price LC, McCabe C, Garfield B, Wort SJ. Thrombosis and COVID-19 pneumonia: the clot thickens! Eur Respir J. 2020;56(1).<br />12.Parry AH, Wani AH, Yaseen M, Dar MI. Demystifying pulmonary vascular complications in severe coronavirus disease-19 pneumonia (COVID-19) in the light of clinico-radiologic-pathologic correlation. Thromb Res. 2020.<br />13.Polak SB, Van Gool IC, Cohen D, von der Thusen JH, van Paassen J. A systematic review of pathological findings in COVID-19: a pathophysiological timeline and possible mechanisms of disease progression. Mod Pathol. 2020.<br />14.von der Thusen J, van der Eerden M. Histopathology and genetic susceptibility in COVID-19 pneumonia. Eur J Clin Invest. 2020:e13259.<br />15.Behzad S, Aghaghazvini L, Radmard AR, Gholamrezanezhad A. Extrapulmonary manifestations of COVID-19: Radiologic and clinical overview. Clin Imaging. 2020;66:35-41.<br />16.Qanadli SD, Beigelman-Aubry C, Rotzinger DC. Vascular Changes Detected With Thoracic CT in Coronavirus Disease (COVID-19) Might Be Significant Determinants for Accurate Diagnosis and Optimal Patient Management. AJR Am J Roentgenol. 2020;215(1):W15.<br />17.Moreira BL, Santana PRP, Zanetti G, Marchiori E. COVID-19 and acute pulmonary embolism: what should be considered to indicate a computed tomography pulmonary angiography scan? Rev Soc Bras Med Trop. 2020;53:e20200267.<br />18.Oudkerk M, Kuijpers D, Oudkerk SF, van Beek EJ. The vascular nature of COVID-19. Br J Radiol. 2020:20200718.<br />19.Lang M, Som A, Mendoza DP, Flores EJ, Reid N, Carey D, et al. Hypoxaemia related to COVID-19: vascular and perfusion abnormalities on dual-energy CT. Lancet Infect Dis. 2020.<br />20.Grillet F, Behr J, Calame P, Aubry S, Delabrousse E. Acute Pulmonary Embolism Associated with COVID-19 Pneumonia Detected by Pulmonary CT Angiography. Radiology. 2020:201544.<br />21.Poyiadji N, Cormier P, Patel PY, Hadied MO, Bhargava P, Khanna K, et al. Acute Pulmonary Embolism and COVID-19. Radiology. 2020:201955.<br />22.Lang M. Pulmonary Vascular Manifestations of COVID-19 Pneumonia. Radiol Cardiothorac Imaging. 2020.<br />23.Kaminetzky M. Pulmonary Embolism on CTPA in COVID-19 Patients. Radiol...]]></itunes:summary><itunes:duration>360</itunes:duration><itunes:keywords>covid-19,sars-cov-2,thrombosis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>First Trimester Bleeding - Part II</title><link>https://www.spreaker.com/episode/first-trimester-bleeding-part-ii--40277373</link><description><![CDATA[References:<br />1.Expert Panel on Women's I, Brown DL, Packard A, Maturen KE, Deshmukh SP, Dudiak KM, et al. ACR Appropriateness Criteria((R)) First Trimester Vaginal Bleeding. J Am Coll Radiol. 2018;15(5S):S69-S77.<br />2.Wang PS, Rodgers SK, Horrow MM. Ultrasound of the First Trimester. Radiol Clin North Am. 2019;57(3):617-33.<br />3.Phillips CH, Wortman JR, Ginsburg ES, Sodickson AD, Doubilet PM, Khurana B. First-trimester emergencies: a radiologist's perspective. Emerg Radiol. 2018;25(1):61-72.<br />4.Murugan VA, Murphy BO, Dupuis C, Goldstein A, Kim YH. Role of ultrasound in the evaluation of first-trimester pregnancies in the acute setting. Ultrasonography. 2020;39(2):178-89.<br />5.Knez J, Day A, Jurkovic D. Ultrasound imaging in the management of bleeding and pain in early pregnancy. Best Pract Res Clin Obstet Gynaecol. 2014;28(5):621-36.<br />6.Promes SB, Nobay F. Pitfalls in first-trimester bleeding. Emerg Med Clin North Am. 2010;28(1):219-34, x.<br />7.Dighe M, Cuevas C, Moshiri M, Dubinsky T, Dogra VS. Sonography in first trimester bleeding. J Clin Ultrasound. 2008;36(6):352-66.<br />8.Leite J, Ross P, Rossi AC, Jeanty P. Prognosis of very large first-trimester hematomas. J Ultrasound Med. 2006;25(11):1441-5.<br />9.Stein MW, Ricci ZJ, Novak L, Roberts JH, Koenigsberg M. Sonographic comparison of the tubal ring of ectopic pregnancy with the corpus luteum. J Ultrasound Med. 2004;23(1):57-62.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40277373</guid><pubDate>Wed, 12 Aug 2020 04:08:54 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40277373/first_trimester_bleeding_part_ii.mp3" length="4268394" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References:
1.Expert Panel on Women's I, Brown DL, Packard A, Maturen KE, Deshmukh SP, Dudiak KM, et al. ACR Appropriateness Criteria((R)) First Trimester Vaginal Bleeding. J Am Coll Radiol. 2018;15(5S):S69-S77.
2.Wang PS, Rodgers SK, Horrow MM....</itunes:subtitle><itunes:summary><![CDATA[References:<br />1.Expert Panel on Women's I, Brown DL, Packard A, Maturen KE, Deshmukh SP, Dudiak KM, et al. ACR Appropriateness Criteria((R)) First Trimester Vaginal Bleeding. J Am Coll Radiol. 2018;15(5S):S69-S77.<br />2.Wang PS, Rodgers SK, Horrow MM. Ultrasound of the First Trimester. Radiol Clin North Am. 2019;57(3):617-33.<br />3.Phillips CH, Wortman JR, Ginsburg ES, Sodickson AD, Doubilet PM, Khurana B. First-trimester emergencies: a radiologist's perspective. Emerg Radiol. 2018;25(1):61-72.<br />4.Murugan VA, Murphy BO, Dupuis C, Goldstein A, Kim YH. Role of ultrasound in the evaluation of first-trimester pregnancies in the acute setting. Ultrasonography. 2020;39(2):178-89.<br />5.Knez J, Day A, Jurkovic D. Ultrasound imaging in the management of bleeding and pain in early pregnancy. Best Pract Res Clin Obstet Gynaecol. 2014;28(5):621-36.<br />6.Promes SB, Nobay F. Pitfalls in first-trimester bleeding. Emerg Med Clin North Am. 2010;28(1):219-34, x.<br />7.Dighe M, Cuevas C, Moshiri M, Dubinsky T, Dogra VS. Sonography in first trimester bleeding. J Clin Ultrasound. 2008;36(6):352-66.<br />8.Leite J, Ross P, Rossi AC, Jeanty P. Prognosis of very large first-trimester hematomas. J Ultrasound Med. 2006;25(11):1441-5.<br />9.Stein MW, Ricci ZJ, Novak L, Roberts JH, Koenigsberg M. Sonographic comparison of the tubal ring of ectopic pregnancy with the corpus luteum. J Ultrasound Med. 2004;23(1):57-62.]]></itunes:summary><itunes:duration>712</itunes:duration><itunes:keywords>bleeding,firsttrimester,gestation</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>First trimester Bleeding - Part I</title><link>https://www.spreaker.com/episode/first-trimester-bleeding-part-i--40277361</link><description><![CDATA[References:<br />1.Expert Panel on Women's I, Brown DL, Packard A, Maturen KE, Deshmukh SP, Dudiak KM, et al. ACR Appropriateness Criteria((R)) First Trimester Vaginal Bleeding. J Am Coll Radiol. 2018;15(5S):S69-S77.<br />2.Wang PS, Rodgers SK, Horrow MM. Ultrasound of the First Trimester. Radiol Clin North Am. 2019;57(3):617-33.<br />3.Phillips CH, Wortman JR, Ginsburg ES, Sodickson AD, Doubilet PM, Khurana B. First-trimester emergencies: a radiologist's perspective. Emerg Radiol. 2018;25(1):61-72.<br />4.Murugan VA, Murphy BO, Dupuis C, Goldstein A, Kim YH. Role of ultrasound in the evaluation of first-trimester pregnancies in the acute setting. Ultrasonography. 2020;39(2):178-89.<br />5.Knez J, Day A, Jurkovic D. Ultrasound imaging in the management of bleeding and pain in early pregnancy. Best Pract Res Clin Obstet Gynaecol. 2014;28(5):621-36.<br />6.Promes SB, Nobay F. Pitfalls in first-trimester bleeding. Emerg Med Clin North Am. 2010;28(1):219-34, x.<br />7.Dighe M, Cuevas C, Moshiri M, Dubinsky T, Dogra VS. Sonography in first trimester bleeding. J Clin Ultrasound. 2008;36(6):352-66.<br />8.Leite J, Ross P, Rossi AC, Jeanty P. Prognosis of very large first-trimester hematomas. J Ultrasound Med. 2006;25(11):1441-5.<br />9.Stein MW, Ricci ZJ, Novak L, Roberts JH, Koenigsberg M. Sonographic comparison of the tubal ring of ectopic pregnancy with the corpus luteum. J Ultrasound Med. 2004;23(1):57-62.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40277361</guid><pubDate>Wed, 12 Aug 2020 04:07:16 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40277361/first_trimester_bleeding_part_i.mp3" length="1857213" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>References:
1.Expert Panel on Women's I, Brown DL, Packard A, Maturen KE, Deshmukh SP, Dudiak KM, et al. ACR Appropriateness Criteria((R)) First Trimester Vaginal Bleeding. J Am Coll Radiol. 2018;15(5S):S69-S77.
2.Wang PS, Rodgers SK, Horrow MM....</itunes:subtitle><itunes:summary><![CDATA[References:<br />1.Expert Panel on Women's I, Brown DL, Packard A, Maturen KE, Deshmukh SP, Dudiak KM, et al. ACR Appropriateness Criteria((R)) First Trimester Vaginal Bleeding. J Am Coll Radiol. 2018;15(5S):S69-S77.<br />2.Wang PS, Rodgers SK, Horrow MM. Ultrasound of the First Trimester. Radiol Clin North Am. 2019;57(3):617-33.<br />3.Phillips CH, Wortman JR, Ginsburg ES, Sodickson AD, Doubilet PM, Khurana B. First-trimester emergencies: a radiologist's perspective. Emerg Radiol. 2018;25(1):61-72.<br />4.Murugan VA, Murphy BO, Dupuis C, Goldstein A, Kim YH. Role of ultrasound in the evaluation of first-trimester pregnancies in the acute setting. Ultrasonography. 2020;39(2):178-89.<br />5.Knez J, Day A, Jurkovic D. Ultrasound imaging in the management of bleeding and pain in early pregnancy. Best Pract Res Clin Obstet Gynaecol. 2014;28(5):621-36.<br />6.Promes SB, Nobay F. Pitfalls in first-trimester bleeding. Emerg Med Clin North Am. 2010;28(1):219-34, x.<br />7.Dighe M, Cuevas C, Moshiri M, Dubinsky T, Dogra VS. Sonography in first trimester bleeding. J Clin Ultrasound. 2008;36(6):352-66.<br />8.Leite J, Ross P, Rossi AC, Jeanty P. Prognosis of very large first-trimester hematomas. J Ultrasound Med. 2006;25(11):1441-5.<br />9.Stein MW, Ricci ZJ, Novak L, Roberts JH, Koenigsberg M. Sonographic comparison of the tubal ring of ectopic pregnancy with the corpus luteum. J Ultrasound Med. 2004;23(1):57-62.]]></itunes:summary><itunes:duration>310</itunes:duration><itunes:keywords>bleeding,firsttrimester,gestation</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ATHLETIC PUBALGIA PART III - INGUINAL REGION ANATOMY AND MECHANISMS OF INJURY</title><link>https://www.spreaker.com/episode/athletic-pubalgia-part-iii-inguinal-region-anatomy-and-mechanisms-of-injury--40116698</link><description><![CDATA[1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.<br />2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.<br />3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury in Athletes. Semin Musculoskelet Radiol. 2019;23(4):361-75.<br />4.Hopkins JN, Brown W, Lee CA. Sports Hernia: Definition, Evaluation, and Treatment. JBJS Rev. 2017;5(9):e6.<br />5.Lee SC, Endo Y, Potter HG. Imaging of Groin Pain: Magnetic Resonance and Ultrasound Imaging Features. Sports Health. 2017;9(5):428-35.<br />6.Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />7.Valent A, Frizziero A, Bressan S, Zanella E, Giannotti E, Masiero S. Insertional tendinopathy of the adductors and rectus abdominis in athletes: a review. Muscles Ligaments Tendons J. 2012;2(2):142-8.<br />8.Chopra A, Robinson P. Imaging Athletic Groin Pain. Radiol Clin North Am. 2016;54(5):865-73.<br />9.Becker I, Woodley SJ, Stringer MD. The adult human pubic symphysis: a systematic review. J Anat. 2010;217(5):475-87.<br />10.Brandon CJ, Jacobson JA, Fessell D, Dong Q, Morag Y, Girish G, et al. Groin pain beyond the hip: how anatomy predisposes to injury as visualized by musculoskeletal ultrasound and MRI. AJR Am J Roentgenol. 2011;197(5):1190-7.<br />11.Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />12.Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />13.Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />14.De Maeseneer M, Forsyth R, Provyn S, Milants A, Lenchik L, De Smet A, et al. MR imaging-anatomical-histological evaluation of the abdominal muscles, aponeurosis, and adductor tendon insertions on the pubic symphysis: a cadaver study. Eur J Radiol. 2019;118:107-13.<br />15.Hegazi TM, Belair JA, McCarthy EJ, Roedl JB, Morrison WB. Sports Injuries about the Hip: What the Radiologist Should Know. Radiographics. 2016;36(6):1717-45.<br />16.Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />17.Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />18.Davis JA, Stringer MD, Woodley SJ. New insights into the proximal tendons of adductor longus, adductor brevis and gracilis. Br J Sports Med. 2012;46(12):871-6.<br />19.Lungu E, Michaud J, Bureau NJ. US Assessment of Sports-related Hip Injuries. Radiographics. 2018;38(3):867-89.<br />20.Schilders E, Bharam S, Golan E, Dimitrakopoulou A, Mitchell A, Spaepen M, et al. The pyramidalis-anterior pubic ligament-adductor longus complex (PLAC) and its role with adductor injuries: a new anatomical concept. Knee Surg Sports Traumatol Arthrosc. 2017;25(12):3969-77.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40116698</guid><pubDate>Sun, 02 Aug 2020 23:13:24 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40116698/athletic_pubalgia_part_iii_inguinal_region_anatomy_and_mechanisms_of_injury.mp3" length="1848042" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.&#13;
2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.&#13;
3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury...</itunes:subtitle><itunes:summary><![CDATA[1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.<br />2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.<br />3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury in Athletes. Semin Musculoskelet Radiol. 2019;23(4):361-75.<br />4.Hopkins JN, Brown W, Lee CA. Sports Hernia: Definition, Evaluation, and Treatment. JBJS Rev. 2017;5(9):e6.<br />5.Lee SC, Endo Y, Potter HG. Imaging of Groin Pain: Magnetic Resonance and Ultrasound Imaging Features. Sports Health. 2017;9(5):428-35.<br />6.Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />7.Valent A, Frizziero A, Bressan S, Zanella E, Giannotti E, Masiero S. Insertional tendinopathy of the adductors and rectus abdominis in athletes: a review. Muscles Ligaments Tendons J. 2012;2(2):142-8.<br />8.Chopra A, Robinson P. Imaging Athletic Groin Pain. Radiol Clin North Am. 2016;54(5):865-73.<br />9.Becker I, Woodley SJ, Stringer MD. The adult human pubic symphysis: a systematic review. J Anat. 2010;217(5):475-87.<br />10.Brandon CJ, Jacobson JA, Fessell D, Dong Q, Morag Y, Girish G, et al. Groin pain beyond the hip: how anatomy predisposes to injury as visualized by musculoskeletal ultrasound and MRI. AJR Am J Roentgenol. 2011;197(5):1190-7.<br />11.Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />12.Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />13.Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />14.De Maeseneer M, Forsyth R, Provyn S, Milants A, Lenchik L, De Smet A, et al. MR imaging-anatomical-histological evaluation of the abdominal muscles, aponeurosis, and adductor tendon insertions on the pubic symphysis: a cadaver study. Eur J Radiol. 2019;118:107-13.<br />15.Hegazi TM, Belair JA, McCarthy EJ, Roedl JB, Morrison WB. Sports Injuries about the Hip: What the Radiologist Should Know. Radiographics. 2016;36(6):1717-45.<br />16.Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />17.Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />18.Davis JA, Stringer MD, Woodley SJ. New insights into the proximal tendons of adductor longus, adductor brevis and gracilis. Br J Sports Med. 2012;46(12):871-6.<br />19.Lungu E, Michaud J, Bureau NJ. US Assessment of Sports-related Hip Injuries. Radiographics. 2018;38(3):867-89.<br />20.Schilders E, Bharam S, Golan E, Dimitrakopoulou A, Mitchell A, Spaepen M, et al. The pyramidalis-anterior pubic ligament-adductor longus complex (PLAC) and its role with adductor injuries: a new anatomical concept. Knee Surg Sports Traumatol Arthrosc. 2017;25(12):3969-77.]]></itunes:summary><itunes:duration>308</itunes:duration><itunes:keywords>groin,inguinal,pubalgia,sport</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ATHLETIC PUBALGIA PART II: MUSCLE ANATOMY AND THE RECTUS/PYRAMIDALIS-ADDUCTOR LONGUS COMPLEX</title><link>https://www.spreaker.com/episode/athletic-pubalgia-part-ii-muscle-anatomy-and-the-rectus-pyramidalis-adductor-longus-complex--40115947</link><description><![CDATA[1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.<br />2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.<br />3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury in Athletes. Semin Musculoskelet Radiol. 2019;23(4):361-75.<br />4.Hopkins JN, Brown W, Lee CA. Sports Hernia: Definition, Evaluation, and Treatment. JBJS Rev. 2017;5(9):e6.<br />5.Lee SC, Endo Y, Potter HG. Imaging of Groin Pain: Magnetic Resonance and Ultrasound Imaging Features. Sports Health. 2017;9(5):428-35.<br />6.Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />7.Valent A, Frizziero A, Bressan S, Zanella E, Giannotti E, Masiero S. Insertional tendinopathy of the adductors and rectus abdominis in athletes: a review. Muscles Ligaments Tendons J. 2012;2(2):142-8.<br />8.Chopra A, Robinson P. Imaging Athletic Groin Pain. Radiol Clin North Am. 2016;54(5):865-73.<br />9.Becker I, Woodley SJ, Stringer MD. The adult human pubic symphysis: a systematic review. J Anat. 2010;217(5):475-87.<br />10.Brandon CJ, Jacobson JA, Fessell D, Dong Q, Morag Y, Girish G, et al. Groin pain beyond the hip: how anatomy predisposes to injury as visualized by musculoskeletal ultrasound and MRI. AJR Am J Roentgenol. 2011;197(5):1190-7.<br />11.Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />12.Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />13.Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />14.De Maeseneer M, Forsyth R, Provyn S, Milants A, Lenchik L, De Smet A, et al. MR imaging-anatomical-histological evaluation of the abdominal muscles, aponeurosis, and adductor tendon insertions on the pubic symphysis: a cadaver study. Eur J Radiol. 2019;118:107-13.<br />15.Hegazi TM, Belair JA, McCarthy EJ, Roedl JB, Morrison WB. Sports Injuries about the Hip: What the Radiologist Should Know. Radiographics. 2016;36(6):1717-45.<br />16.Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />17.Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />18.Davis JA, Stringer MD, Woodley SJ. New insights into the proximal tendons of adductor longus, adductor brevis and gracilis. Br J Sports Med. 2012;46(12):871-6.<br />19.Lungu E, Michaud J, Bureau NJ. US Assessment of Sports-related Hip Injuries. Radiographics. 2018;38(3):867-89.<br />20.Schilders E, Bharam S, Golan E, Dimitrakopoulou A, Mitchell A, Spaepen M, et al. The pyramidalis-anterior pubic ligament-adductor longus complex (PLAC) and its role with adductor injuries: a new anatomical concept. Knee Surg Sports Traumatol Arthrosc. 2017;25(12):3969-77.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40115947</guid><pubDate>Sun, 02 Aug 2020 21:44:59 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40115947/imported_7d603dc1_ffb1_4a0e_80e3_3ccdb0074b00.mp3" length="5809632" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.&#13;
2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.&#13;
3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury...</itunes:subtitle><itunes:summary><![CDATA[1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.<br />2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.<br />3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury in Athletes. Semin Musculoskelet Radiol. 2019;23(4):361-75.<br />4.Hopkins JN, Brown W, Lee CA. Sports Hernia: Definition, Evaluation, and Treatment. JBJS Rev. 2017;5(9):e6.<br />5.Lee SC, Endo Y, Potter HG. Imaging of Groin Pain: Magnetic Resonance and Ultrasound Imaging Features. Sports Health. 2017;9(5):428-35.<br />6.Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />7.Valent A, Frizziero A, Bressan S, Zanella E, Giannotti E, Masiero S. Insertional tendinopathy of the adductors and rectus abdominis in athletes: a review. Muscles Ligaments Tendons J. 2012;2(2):142-8.<br />8.Chopra A, Robinson P. Imaging Athletic Groin Pain. Radiol Clin North Am. 2016;54(5):865-73.<br />9.Becker I, Woodley SJ, Stringer MD. The adult human pubic symphysis: a systematic review. J Anat. 2010;217(5):475-87.<br />10.Brandon CJ, Jacobson JA, Fessell D, Dong Q, Morag Y, Girish G, et al. Groin pain beyond the hip: how anatomy predisposes to injury as visualized by musculoskeletal ultrasound and MRI. AJR Am J Roentgenol. 2011;197(5):1190-7.<br />11.Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />12.Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />13.Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />14.De Maeseneer M, Forsyth R, Provyn S, Milants A, Lenchik L, De Smet A, et al. MR imaging-anatomical-histological evaluation of the abdominal muscles, aponeurosis, and adductor tendon insertions on the pubic symphysis: a cadaver study. Eur J Radiol. 2019;118:107-13.<br />15.Hegazi TM, Belair JA, McCarthy EJ, Roedl JB, Morrison WB. Sports Injuries about the Hip: What the Radiologist Should Know. Radiographics. 2016;36(6):1717-45.<br />16.Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />17.Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />18.Davis JA, Stringer MD, Woodley SJ. New insights into the proximal tendons of adductor longus, adductor brevis and gracilis. Br J Sports Med. 2012;46(12):871-6.<br />19.Lungu E, Michaud J, Bureau NJ. US Assessment of Sports-related Hip Injuries. Radiographics. 2018;38(3):867-89.<br />20.Schilders E, Bharam S, Golan E, Dimitrakopoulou A, Mitchell A, Spaepen M, et al. The pyramidalis-anterior pubic ligament-adductor longus complex (PLAC) and its role with adductor injuries: a new anatomical concept. Knee Surg Sports Traumatol Arthrosc. 2017;25(12):3969-77.]]></itunes:summary><itunes:duration>364</itunes:duration><itunes:keywords>pyramidalis,rectusabdominis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ATHLETIC PUBALGIA PART I: TERMINOLOGY, OSSEOUS AND LIGAMENTOUS ANATOMY</title><link>https://www.spreaker.com/episode/athletic-pubalgia-part-i-terminology-osseous-and-ligamentous-anatomy--40115248</link><description><![CDATA[1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.<br />2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.<br />3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury in Athletes. Semin Musculoskelet Radiol. 2019;23(4):361-75.<br />4.Hopkins JN, Brown W, Lee CA. Sports Hernia: Definition, Evaluation, and Treatment. JBJS Rev. 2017;5(9):e6.<br />5.Lee SC, Endo Y, Potter HG. Imaging of Groin Pain: Magnetic Resonance and Ultrasound Imaging Features. Sports Health. 2017;9(5):428-35.<br />6.Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />7.Valent A, Frizziero A, Bressan S, Zanella E, Giannotti E, Masiero S. Insertional tendinopathy of the adductors and rectus abdominis in athletes: a review. Muscles Ligaments Tendons J. 2012;2(2):142-8.<br />8.Chopra A, Robinson P. Imaging Athletic Groin Pain. Radiol Clin North Am. 2016;54(5):865-73.<br />9.Becker I, Woodley SJ, Stringer MD. The adult human pubic symphysis: a systematic review. J Anat. 2010;217(5):475-87.<br />10.Brandon CJ, Jacobson JA, Fessell D, Dong Q, Morag Y, Girish G, et al. Groin pain beyond the hip: how anatomy predisposes to injury as visualized by musculoskeletal ultrasound and MRI. AJR Am J Roentgenol. 2011;197(5):1190-7.<br />11.Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />12.Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />13.Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />14.De Maeseneer M, Forsyth R, Provyn S, Milants A, Lenchik L, De Smet A, et al. MR imaging-anatomical-histological evaluation of the abdominal muscles, aponeurosis, and adductor tendon insertions on the pubic symphysis: a cadaver study. Eur J Radiol. 2019;118:107-13.<br />15.Hegazi TM, Belair JA, McCarthy EJ, Roedl JB, Morrison WB. Sports Injuries about the Hip: What the Radiologist Should Know. Radiographics. 2016;36(6):1717-45.<br />16.Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />17.Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />18.Davis JA, Stringer MD, Woodley SJ. New insights into the proximal tendons of adductor longus, adductor brevis and gracilis. Br J Sports Med. 2012;46(12):871-6.<br />19.Lungu E, Michaud J, Bureau NJ. US Assessment of Sports-related Hip Injuries. Radiographics. 2018;38(3):867-89.<br />20.Schilders E, Bharam S, Golan E, Dimitrakopoulou A, Mitchell A, Spaepen M, et al. The pyramidalis-anterior pubic ligament-adductor longus complex (PLAC) and its role with adductor injuries: a new anatomical concept. Knee Surg Sports Traumatol Arthrosc. 2017;25(12):3969-77.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/40115248</guid><pubDate>Sun, 02 Aug 2020 20:12:47 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/40115248/athletic_pubalgia_part_i_terminology_osseous_and_ligamentous_anatomy.mp3" length="1119213" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.&#13;
2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.&#13;
3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury...</itunes:subtitle><itunes:summary><![CDATA[1.Balconi G. US in pubalgia. J Ultrasound. 2011;14(3):157-66.<br />2.Agten CA, Sutter R, Buck FM, Pfirrmann CW. Hip Imaging in Athletes: Sports Imaging Series. Radiology. 2016;280(2):351-69.<br />3.Madani H, Robinson P. Top-Ten Tips for Imaging Groin Injury in Athletes. Semin Musculoskelet Radiol. 2019;23(4):361-75.<br />4.Hopkins JN, Brown W, Lee CA. Sports Hernia: Definition, Evaluation, and Treatment. JBJS Rev. 2017;5(9):e6.<br />5.Lee SC, Endo Y, Potter HG. Imaging of Groin Pain: Magnetic Resonance and Ultrasound Imaging Features. Sports Health. 2017;9(5):428-35.<br />6.Omar IM, Zoga AC, Kavanagh EC, Koulouris G, Bergin D, Gopez AG, et al. Athletic pubalgia and "sports hernia": optimal MR imaging technique and findings. Radiographics. 2008;28(5):1415-38.<br />7.Valent A, Frizziero A, Bressan S, Zanella E, Giannotti E, Masiero S. Insertional tendinopathy of the adductors and rectus abdominis in athletes: a review. Muscles Ligaments Tendons J. 2012;2(2):142-8.<br />8.Chopra A, Robinson P. Imaging Athletic Groin Pain. Radiol Clin North Am. 2016;54(5):865-73.<br />9.Becker I, Woodley SJ, Stringer MD. The adult human pubic symphysis: a systematic review. J Anat. 2010;217(5):475-87.<br />10.Brandon CJ, Jacobson JA, Fessell D, Dong Q, Morag Y, Girish G, et al. Groin pain beyond the hip: how anatomy predisposes to injury as visualized by musculoskeletal ultrasound and MRI. AJR Am J Roentgenol. 2011;197(5):1190-7.<br />11.Robinson P, Salehi F, Grainger A, Clemence M, Schilders E, O'Connor P, et al. Cadaveric and MRI study of the musculotendinous contributions to the capsule of the symphysis pubis. AJR Am J Roentgenol. 2007;188(5):W440-5.<br />12.Pesquer L, Reboul G, Silvestre A, Poussange N, Meyer P, Dallaudiere B. Imaging of adductor-related groin pain. Diagn Interv Imaging. 2015;96(9):861-9.<br />13.Robertson BA, Barker PJ, Fahrer M, Schache AG. The anatomy of the pubic region revisited: implications for the pathogenesis and clinical management of chronic groin pain in athletes. Sports Med. 2009;39(3):225-34.<br />14.De Maeseneer M, Forsyth R, Provyn S, Milants A, Lenchik L, De Smet A, et al. MR imaging-anatomical-histological evaluation of the abdominal muscles, aponeurosis, and adductor tendon insertions on the pubic symphysis: a cadaver study. Eur J Radiol. 2019;118:107-13.<br />15.Hegazi TM, Belair JA, McCarthy EJ, Roedl JB, Morrison WB. Sports Injuries about the Hip: What the Radiologist Should Know. Radiographics. 2016;36(6):1717-45.<br />16.Murphy G, Foran P, Murphy D, Tobin O, Moynagh M, Eustace S. "Superior cleft sign" as a marker of rectus abdominus/adductor longus tear in patients with suspected sportsman's hernia. Skeletal Radiol. 2013;42(6):819-25.<br />17.Morley N, Grant T, Blount K, Omar I. Sonographic evaluation of athletic pubalgia. Skeletal Radiol. 2016;45(5):689-99.<br />18.Davis JA, Stringer MD, Woodley SJ. New insights into the proximal tendons of adductor longus, adductor brevis and gracilis. Br J Sports Med. 2012;46(12):871-6.<br />19.Lungu E, Michaud J, Bureau NJ. US Assessment of Sports-related Hip Injuries. Radiographics. 2018;38(3):867-89.<br />20.Schilders E, Bharam S, Golan E, Dimitrakopoulou A, Mitchell A, Spaepen M, et al. The pyramidalis-anterior pubic ligament-adductor longus complex (PLAC) and its role with adductor injuries: a new anatomical concept. Knee Surg Sports Traumatol Arthrosc. 2017;25(12):3969-77.]]></itunes:summary><itunes:duration>187</itunes:duration><itunes:keywords>groin,pubalgia,sport</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Osteoarthritis. What the Radiologist Should Know. Part III</title><link>https://www.spreaker.com/episode/osteoarthritis-what-the-radiologist-should-know-part-iii--39911609</link><description><![CDATA[Osteoarthritis of the hands;<br />Whole joint disease;<br />Benjamin concepts' about osteoarthritis;<br /><br /><br />References:<br />1.Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019;23(5):569-78.<br />2.Hunter DJ, Bierma-Zeinstra S. Osteoarthritis. Lancet. 2019;393(10182):1745-59.<br />3.Roemer FW, Crema MD, Trattnig S, Guermazi A. Advances in imaging of osteoarthritis and cartilage. Radiology. 2011;260(2):332-54.<br />4.Sophia Fox AJ, Bedi A, Rodeo SA. The basic science of articular cartilage: structure, composition, and function. Sports Health. 2009;1(6):461-8.<br />5.Pathria MN, Chung CB, Resnick DL. Acute and Stress-related Injuries of Bone and Cartilage: Pertinent Anatomy, Basic Biomechanics, and Imaging Perspective. Radiology. 2016;280(1):21-38.<br />6.Huber M, Trattnig S, Lintner F. Anatomy, biochemistry, and physiology of articular cartilage. Invest Radiol. 2000;35(10):573-80.<br />7.Martinez-Moreno D, Jimenez G, Galvez-Martin P, Rus G, Marchal JA. Cartilage biomechanics: A key factor for osteoarthritis regenerative medicine. Biochim Biophys Acta Mol Basis Dis. 2019;1865(6):1067-75.<br />8.Amin S, LaValley MP, Guermazi A, Grigoryan M, Hunter DJ, Clancy M, et al. The relationship between cartilage loss on magnetic resonance imaging and radiographic progression in men and women with knee osteoarthritis. Arthritis Rheum. 2005;52(10):3152-9.<br />9.Braun HJ, Gold GE. Diagnosis of osteoarthritis: imaging. Bone. 2012;51(2):278-88.<br />10.Guermazi A, Burstein D, Conaghan P, Eckstein F, Hellio Le Graverand-Gastineau MP, Keen H, et al. Imaging in osteoarthritis. Rheum Dis Clin North Am. 2008;34(3):645-87.<br />11.Argentieri EC, Burge AJ, Potter HG. Magnetic Resonance Imaging of Articular Cartilage within the Knee. J Knee Surg. 2018;31(2):155-65.<br />12.Zhang Y, Niu J, Kelly-Hayes M, Chaisson CE, Aliabadi P, Felson DT. Prevalence of symptomatic hand osteoarthritis and its impact on functional status among the elderly: The Framingham Study. Am J Epidemiol. 2002;156(11):1021-7.<br />13.N S. Hand Osteoarthritis — Clinical Presentation, Phenotypes and Management. 2015.<br />14.Tan AL, Grainger AJ, Tanner SF, Shelley DM, Pease C, Emery P, et al. High-resolution magnetic resonance imaging for the assessment of hand osteoarthritis. Arthritis Rheum. 2005;52(8):2355-65.<br />15.Mathiessen A, Slatkowsky-Christensen B, Kvien TK, Hammer HB, Haugen IK. Ultrasound-detected inflammation predicts radiographic progression in hand osteoarthritis after 5 years. Ann Rheum Dis. 2016;75(5):825-30.<br />16.Okano T, Mamoto K, Di Carlo M, Salaffi F. Clinical utility and potential of ultrasound in osteoarthritis. Radiol Med. 2019;124(11):1101-11.<br />17.Hammer HB, Iagnocco A, Mathiessen A, Filippucci E, Gandjbakhch F, Kortekaas MC, et al. Global ultrasound assessment of structural lesions in osteoarthritis: a reliability study by the OMERACT ultrasonography group on scoring cartilage and osteophytes in finger joints. Ann Rheum Dis. 2016;75(2):402-7.<br />18.Benjamin M, McGonagle D. The anatomical basis for disease localisation in seronegative spondyloarthropathy at entheses and related sites. J Anat. 2001;199(Pt 5):503-26.<br />19.McGonagle D, Tan AL, Carey J, Benjamin M. The anatomical basis for a novel classification of osteoarthritis and allied disorders. J Anat. 2010;216(3):279-91.<br />20.McGonagle D, Hermann KG, Tan AL. Differentiation between osteoarthritis and psoriatic arthritis: implications for pathogenesis and treatment in the biologic therapy era. Rheumatology (Oxford). 2015;54(1):29-38.<br />21.Grainger AJ, Farrant JM, O'Connor PJ, Tan AL, Tanner S, Emery P, et al. MR imaging of erosions in interphalangeal joint osteoarthritis: is all osteoarthritis erosive? Skeletal Radiol. 2007;36(8):737-45.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/39911609</guid><pubDate>Thu, 23 Jul 2020 02:58:49 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/39911609/osteoarthritis_part_iii.mp3" length="1852506" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Osteoarthritis of the hands;&#13;
Whole joint disease;&#13;
Benjamin concepts' about osteoarthritis;&#13;
&#13;
&#13;
References:&#13;
1.Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019;23(5):569-78.&#13;
2.Hunter...</itunes:subtitle><itunes:summary><![CDATA[Osteoarthritis of the hands;<br />Whole joint disease;<br />Benjamin concepts' about osteoarthritis;<br /><br /><br />References:<br />1.Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019;23(5):569-78.<br />2.Hunter DJ, Bierma-Zeinstra S. Osteoarthritis. Lancet. 2019;393(10182):1745-59.<br />3.Roemer FW, Crema MD, Trattnig S, Guermazi A. Advances in imaging of osteoarthritis and cartilage. Radiology. 2011;260(2):332-54.<br />4.Sophia Fox AJ, Bedi A, Rodeo SA. The basic science of articular cartilage: structure, composition, and function. Sports Health. 2009;1(6):461-8.<br />5.Pathria MN, Chung CB, Resnick DL. Acute and Stress-related Injuries of Bone and Cartilage: Pertinent Anatomy, Basic Biomechanics, and Imaging Perspective. Radiology. 2016;280(1):21-38.<br />6.Huber M, Trattnig S, Lintner F. Anatomy, biochemistry, and physiology of articular cartilage. Invest Radiol. 2000;35(10):573-80.<br />7.Martinez-Moreno D, Jimenez G, Galvez-Martin P, Rus G, Marchal JA. Cartilage biomechanics: A key factor for osteoarthritis regenerative medicine. Biochim Biophys Acta Mol Basis Dis. 2019;1865(6):1067-75.<br />8.Amin S, LaValley MP, Guermazi A, Grigoryan M, Hunter DJ, Clancy M, et al. The relationship between cartilage loss on magnetic resonance imaging and radiographic progression in men and women with knee osteoarthritis. Arthritis Rheum. 2005;52(10):3152-9.<br />9.Braun HJ, Gold GE. Diagnosis of osteoarthritis: imaging. Bone. 2012;51(2):278-88.<br />10.Guermazi A, Burstein D, Conaghan P, Eckstein F, Hellio Le Graverand-Gastineau MP, Keen H, et al. Imaging in osteoarthritis. Rheum Dis Clin North Am. 2008;34(3):645-87.<br />11.Argentieri EC, Burge AJ, Potter HG. Magnetic Resonance Imaging of Articular Cartilage within the Knee. J Knee Surg. 2018;31(2):155-65.<br />12.Zhang Y, Niu J, Kelly-Hayes M, Chaisson CE, Aliabadi P, Felson DT. Prevalence of symptomatic hand osteoarthritis and its impact on functional status among the elderly: The Framingham Study. Am J Epidemiol. 2002;156(11):1021-7.<br />13.N S. Hand Osteoarthritis — Clinical Presentation, Phenotypes and Management. 2015.<br />14.Tan AL, Grainger AJ, Tanner SF, Shelley DM, Pease C, Emery P, et al. High-resolution magnetic resonance imaging for the assessment of hand osteoarthritis. Arthritis Rheum. 2005;52(8):2355-65.<br />15.Mathiessen A, Slatkowsky-Christensen B, Kvien TK, Hammer HB, Haugen IK. Ultrasound-detected inflammation predicts radiographic progression in hand osteoarthritis after 5 years. Ann Rheum Dis. 2016;75(5):825-30.<br />16.Okano T, Mamoto K, Di Carlo M, Salaffi F. Clinical utility and potential of ultrasound in osteoarthritis. Radiol Med. 2019;124(11):1101-11.<br />17.Hammer HB, Iagnocco A, Mathiessen A, Filippucci E, Gandjbakhch F, Kortekaas MC, et al. Global ultrasound assessment of structural lesions in osteoarthritis: a reliability study by the OMERACT ultrasonography group on scoring cartilage and osteophytes in finger joints. Ann Rheum Dis. 2016;75(2):402-7.<br />18.Benjamin M, McGonagle D. The anatomical basis for disease localisation in seronegative spondyloarthropathy at entheses and related sites. J Anat. 2001;199(Pt 5):503-26.<br />19.McGonagle D, Tan AL, Carey J, Benjamin M. The anatomical basis for a novel classification of osteoarthritis and allied disorders. J Anat. 2010;216(3):279-91.<br />20.McGonagle D, Hermann KG, Tan AL. Differentiation between osteoarthritis and psoriatic arthritis: implications for pathogenesis and treatment in the biologic therapy era. Rheumatology (Oxford). 2015;54(1):29-38.<br />21.Grainger AJ, Farrant JM, O'Connor PJ, Tan AL, Tanner S, Emery P, et al. MR imaging of erosions in interphalangeal joint osteoarthritis: is all osteoarthritis erosive? Skeletal Radiol. 2007;36(8):737-45.]]></itunes:summary><itunes:duration>309</itunes:duration><itunes:keywords>osteoarthritis</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Osteoarthritis. What the Radiologist Should Know. PART II</title><link>https://www.spreaker.com/episode/osteoarthritis-what-the-radiologist-should-know-part-ii--39883190</link><guid isPermaLink="false">https://api.spreaker.com/episode/39883190</guid><pubDate>Tue, 21 Jul 2020 15:37:05 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/39883190/imported_b505742e_b2fb_4e75_90b1_8987ea43006b.mp3" length="4737985" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>297</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>OSTEOARTRITE PARTE I</title><link>https://www.spreaker.com/episode/osteoartrite-parte-i--39875664</link><guid isPermaLink="false">https://api.spreaker.com/episode/39875664</guid><pubDate>Tue, 21 Jul 2020 02:29:18 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/39875664/imported_c61837e4_a67b_41a8_9c46_6ebba6715718.mp3" length="5584352" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>350</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Osteoarthritis. What the Radiologist Should Know. PART I</title><link>https://www.spreaker.com/episode/osteoarthritis-what-the-radiologist-should-know-part-i--39873753</link><description><![CDATA[REFERENCES<br />1. ​Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019;23(5):569-78.<br />2. ​Hunter DJ, Bierma-Zeinstra S. Osteoarthritis. Lancet. 2019;393(10182):1745-59.<br />3. ​Roemer FW, Crema MD, Trattnig S, Guermazi A. Advances in imaging of osteoarthritis and cartilage. Radiology. 2011;260(2):332-54.<br />4. ​Sophia Fox AJ, Bedi A, Rodeo SA. The basic science of articular cartilage: structure, composition, and function. Sports Health. 2009;1(6):461-8.<br />5. ​Pathria MN, Chung CB, Resnick DL. Acute and Stress-related Injuries of Bone and Cartilage: Pertinent Anatomy, Basic Biomechanics, and Imaging Perspective. Radiology. 2016;280(1):21-38.<br />6. ​Huber M, Trattnig S, Lintner F. Anatomy, biochemistry, and physiology of articular cartilage. Invest Radiol. 2000;35(10):573-80.<br />7. ​Martinez-Moreno D, Jimenez G, Galvez-Martin P, Rus G, Marchal JA. Cartilage biomechanics: A key factor for osteoarthritis regenerative medicine. Biochim Biophys Acta Mol Basis Dis. 2019;1865(6):1067-75.<br />8. ​Amin S, LaValley MP, Guermazi A, Grigoryan M, Hunter DJ, Clancy M, et al. The relationship between cartilage loss on magnetic resonance imaging and radiographic progression in men and women with knee osteoarthritis. Arthritis Rheum. 2005;52(10):3152-9.<br />9. ​Braun HJ, Gold GE. Diagnosis of osteoarthritis: imaging. Bone. 2012;51(2):278-88.<br />10. ​Guermazi A, Burstein D, Conaghan P, Eckstein F, Hellio Le Graverand-Gastineau MP, Keen H, et al. Imaging in osteoarthritis. Rheum Dis Clin North Am. 2008;34(3):645-87.<br />11. ​Argentieri EC, Burge AJ, Potter HG. Magnetic Resonance Imaging of Articular Cartilage within the Knee. J Knee Surg. 2018;31(2):155-65.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/39873753</guid><pubDate>Tue, 21 Jul 2020 00:24:13 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/39873753/imported_0712c680_9842_44c9_8079_47453a0e030f.mp3" length="4347193" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>REFERENCES
1. ​Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019;23(5):569-78.
2. ​Hunter DJ, Bierma-Zeinstra S. Osteoarthritis. Lancet. 2019;393(10182):1745-59.
3. ​Roemer FW, Crema MD,...</itunes:subtitle><itunes:summary><![CDATA[REFERENCES<br />1. ​Alizai H, Walter W, Khodarahmi I, Burke CJ. Cartilage Imaging in Osteoarthritis. Semin Musculoskelet Radiol. 2019;23(5):569-78.<br />2. ​Hunter DJ, Bierma-Zeinstra S. Osteoarthritis. Lancet. 2019;393(10182):1745-59.<br />3. ​Roemer FW, Crema MD, Trattnig S, Guermazi A. Advances in imaging of osteoarthritis and cartilage. Radiology. 2011;260(2):332-54.<br />4. ​Sophia Fox AJ, Bedi A, Rodeo SA. The basic science of articular cartilage: structure, composition, and function. Sports Health. 2009;1(6):461-8.<br />5. ​Pathria MN, Chung CB, Resnick DL. Acute and Stress-related Injuries of Bone and Cartilage: Pertinent Anatomy, Basic Biomechanics, and Imaging Perspective. Radiology. 2016;280(1):21-38.<br />6. ​Huber M, Trattnig S, Lintner F. Anatomy, biochemistry, and physiology of articular cartilage. Invest Radiol. 2000;35(10):573-80.<br />7. ​Martinez-Moreno D, Jimenez G, Galvez-Martin P, Rus G, Marchal JA. Cartilage biomechanics: A key factor for osteoarthritis regenerative medicine. Biochim Biophys Acta Mol Basis Dis. 2019;1865(6):1067-75.<br />8. ​Amin S, LaValley MP, Guermazi A, Grigoryan M, Hunter DJ, Clancy M, et al. The relationship between cartilage loss on magnetic resonance imaging and radiographic progression in men and women with knee osteoarthritis. Arthritis Rheum. 2005;52(10):3152-9.<br />9. ​Braun HJ, Gold GE. Diagnosis of osteoarthritis: imaging. Bone. 2012;51(2):278-88.<br />10. ​Guermazi A, Burstein D, Conaghan P, Eckstein F, Hellio Le Graverand-Gastineau MP, Keen H, et al. Imaging in osteoarthritis. Rheum Dis Clin North Am. 2008;34(3):645-87.<br />11. ​Argentieri EC, Burge AJ, Potter HG. Magnetic Resonance Imaging of Articular Cartilage within the Knee. J Knee Surg. 2018;31(2):155-65.]]></itunes:summary><itunes:duration>272</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>OSTEOMIELITES AGUDAS</title><link>https://www.spreaker.com/episode/osteomielites-agudas--36468273</link><guid isPermaLink="false">https://api.spreaker.com/episode/36468273</guid><pubDate>Mon, 06 Jul 2020 21:51:36 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/36468273/imported_d49d4e79_965d_4f01_8131_77cf36356291.mp3" length="4310831" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>270</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ANATOMIA E LESÕES DO RETO FEMORAL</title><link>https://www.spreaker.com/episode/anatomia-e-lesoes-do-reto-femoral--36428259</link><guid isPermaLink="false">https://api.spreaker.com/episode/36428259</guid><pubDate>Mon, 06 Jul 2020 19:25:47 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/36428259/imported_46646c5a_7283_4bb4_8be4_b06bd841e0e8.mp3" length="4758047" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:duration>298</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Padrão de Acometimento Espondiloartropático na F. Chikungunya - o Retorno às Ideias de Benjamim. Parte I - Anatomia das Enteses</title><link>https://www.spreaker.com/episode/padrao-de-acometimento-espondiloartropatico-na-f-chikungunya-o-retorno-as-ideias-de-benjamim-parte-i-anatomia-das-enteses--25318379</link><description><![CDATA[PADRÃO DE ACOMETIMENTO ESPONDILOARTROPÁTICO NA F. CHIKUNGUNYA: O RETORNO ÀS IDEIAS DE BENJAMIM E MACGONAGLE. PARTE I: ANATOMIA DAS ENTESES<br /><br />Este podcast e o webinar sobre o tema que vai acontecer na próxima sexta, 17/04/2020, estão intrinsicamente ligados. Esta parte I do podcast discute conceitos básicos, modernos  e importantes sobre as enteses. Sem isso, não se entende o que F. Chikungunya tem a ver com o tema.<br />Referências Bibliográficas:<br />1- Benjamin M, McGonagle D. The anatomical basis for disease localisation in seronegative spondyloarthropathy at entheses and related sites. J Anat 2001; 199(Pt 5): 503–526<br />2- Shaw HM, Benjamin M. Structure-function relationships of entheses in relation to mechanical load and exercise. Scand J Med Sci Sports 2007; 17(4): 303–315<br />3- Benjamin M, Moriggl B, Brenner E, Emery P, McGonagle D, Redman S. The "enthesis organ" concept: why enthesopathies may not present as focal insertional disorders. Arthritis Rheum 2004; 50(10): 3306–3313<br />4- McGonagle D, Marzo-Ortega H, Benjamin M, Emery P. Report on the Second international Enthesitis Workshop. Arthritis Rheum 2003; 48(4): 896–905<br />5- Eshed I, Bollow M, McGonagle DG, et al. MRI of enthesitis of the appendicular skeleton in spondyloarthritis. Ann Rheum Dis 2007; 66(12): 1553–1559<br />6- Kaeley GS, Eder L, Aydin SZ et al. Enthesitis: A hallmark of psoriatic arthritis. Semin Arthritis Rheum 2018; 48(1): 35–43. <br />7- Watad A, Eshed I, McGonagle D. Lessons Learned from Imaging on Enthesitis in Psoriatic Arthritis. Isr Med Assoc J 2017; 19(11): 708–711<br />8- McGonagle D, Lories RJ, Tan AL, Benjamin M. The concept of a "synovio-entheseal complex" and its implications for understanding joint inflammation and damage in psoriatic arthritis and beyond. Arthritis Rheum 2007; 56(8): 2482–2491<br />9- Benjamin M, McGonagle D. Histopathologic changes at "synovio-entheseal complexes" suggesting a novel mechanism for synovitis in osteoarthritis and spondylarthritis. Arthritis Rheum 2007; 56(11): 3601–3609<br />10- Benjamin M, Qin S, Ralphs JR. Fibrocartilage associated with human tendons and their pulleys. J Anat 1995; 187 ( Pt 3)(Pt 3): 625–633<br />11- Tan AL, Fukuba E, Halliday NA, Tanner SF, Emery P, McGonagle D. High-resolution MRI assessment of dactylitis in psoriatic arthritis shows flexor tendon pulley and sheath-related enthesitis. Ann Rheum Dis 2015; 74(1): 185–189]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/25318379</guid><pubDate>Sun, 12 Apr 2020 01:06:53 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/25318379/imported_864762ce_465b_40a7_b0ab_d605e0438612.mp3" length="6011924" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>PADRÃO DE ACOMETIMENTO ESPONDILOARTROPÁTICO NA F. CHIKUNGUNYA: O RETORNO ÀS IDEIAS DE BENJAMIM E MACGONAGLE. PARTE I: ANATOMIA DAS ENTESES

Este podcast e o webinar sobre o tema que vai acontecer na próxima sexta, 17/04/2020, estão intrinsicamente...</itunes:subtitle><itunes:summary><![CDATA[PADRÃO DE ACOMETIMENTO ESPONDILOARTROPÁTICO NA F. CHIKUNGUNYA: O RETORNO ÀS IDEIAS DE BENJAMIM E MACGONAGLE. PARTE I: ANATOMIA DAS ENTESES<br /><br />Este podcast e o webinar sobre o tema que vai acontecer na próxima sexta, 17/04/2020, estão intrinsicamente ligados. Esta parte I do podcast discute conceitos básicos, modernos  e importantes sobre as enteses. Sem isso, não se entende o que F. Chikungunya tem a ver com o tema.<br />Referências Bibliográficas:<br />1- Benjamin M, McGonagle D. The anatomical basis for disease localisation in seronegative spondyloarthropathy at entheses and related sites. J Anat 2001; 199(Pt 5): 503–526<br />2- Shaw HM, Benjamin M. Structure-function relationships of entheses in relation to mechanical load and exercise. Scand J Med Sci Sports 2007; 17(4): 303–315<br />3- Benjamin M, Moriggl B, Brenner E, Emery P, McGonagle D, Redman S. The "enthesis organ" concept: why enthesopathies may not present as focal insertional disorders. Arthritis Rheum 2004; 50(10): 3306–3313<br />4- McGonagle D, Marzo-Ortega H, Benjamin M, Emery P. Report on the Second international Enthesitis Workshop. Arthritis Rheum 2003; 48(4): 896–905<br />5- Eshed I, Bollow M, McGonagle DG, et al. MRI of enthesitis of the appendicular skeleton in spondyloarthritis. Ann Rheum Dis 2007; 66(12): 1553–1559<br />6- Kaeley GS, Eder L, Aydin SZ et al. Enthesitis: A hallmark of psoriatic arthritis. Semin Arthritis Rheum 2018; 48(1): 35–43. <br />7- Watad A, Eshed I, McGonagle D. Lessons Learned from Imaging on Enthesitis in Psoriatic Arthritis. Isr Med Assoc J 2017; 19(11): 708–711<br />8- McGonagle D, Lories RJ, Tan AL, Benjamin M. The concept of a "synovio-entheseal complex" and its implications for understanding joint inflammation and damage in psoriatic arthritis and beyond. Arthritis Rheum 2007; 56(8): 2482–2491<br />9- Benjamin M, McGonagle D. Histopathologic changes at "synovio-entheseal complexes" suggesting a novel mechanism for synovitis in osteoarthritis and spondylarthritis. Arthritis Rheum 2007; 56(11): 3601–3609<br />10- Benjamin M, Qin S, Ralphs JR. Fibrocartilage associated with human tendons and their pulleys. J Anat 1995; 187 ( Pt 3)(Pt 3): 625–633<br />11- Tan AL, Fukuba E, Halliday NA, Tanner SF, Emery P, McGonagle D. High-resolution MRI assessment of dactylitis in psoriatic arthritis shows flexor tendon pulley and sheath-related enthesitis. Ann Rheum Dis 2015; 74(1): 185–189]]></itunes:summary><itunes:duration>376</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>MICOBACTERIOSES NÃO TUBERCULOSAS</title><link>https://www.spreaker.com/episode/micobacterioses-nao-tuberculosas--24952206</link><description><![CDATA[Micobacterioses não tuberculosas <br /><br />Referências Bibliográficas:<br />1- Mogami R, Goldenberg T, de Marca PG, et al. Pulmonary infection caused by Mycobacterium kansasii: findings on computed tomography of the chest. Radiol Bras 2016; 49: 209–213<br />2- DE MARCA PGC, GOLDENBERG T, MELLO FCQ, CARVALHO ARS, GUIMARÃES ARM, MOGAMI R, LOPES AJ. Pulmonary Densitovolumetry Using Computed Tomography in Patients with Nontuberculous Mycobacteria: Correlation with Pulmonary Function Tests. Pulmonary Medicine , v. 2019, p. 1-9, 2019.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/24952206</guid><pubDate>Wed, 08 Apr 2020 02:10:04 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/24952206/imported_3ab2266c_201a_4986_9978_5861effdd9eb.mp3" length="5142151" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Micobacterioses não tuberculosas 

Referências Bibliográficas:
1- Mogami R, Goldenberg T, de Marca PG, et al. Pulmonary infection caused by Mycobacterium kansasii: findings on computed tomography of the chest. Radiol Bras 2016; 49: 209–213
2- DE...</itunes:subtitle><itunes:summary><![CDATA[Micobacterioses não tuberculosas <br /><br />Referências Bibliográficas:<br />1- Mogami R, Goldenberg T, de Marca PG, et al. Pulmonary infection caused by Mycobacterium kansasii: findings on computed tomography of the chest. Radiol Bras 2016; 49: 209–213<br />2- DE MARCA PGC, GOLDENBERG T, MELLO FCQ, CARVALHO ARS, GUIMARÃES ARM, MOGAMI R, LOPES AJ. Pulmonary Densitovolumetry Using Computed Tomography in Patients with Nontuberculous Mycobacteria: Correlation with Pulmonary Function Tests. Pulmonary Medicine , v. 2019, p. 1-9, 2019.]]></itunes:summary><itunes:duration>322</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ANATOMIA RADIOLÓGICA DO RETROPERITONIO</title><link>https://www.spreaker.com/episode/anatomia-radiologica-do-retroperitonio--24906648</link><description><![CDATA[Anatomia Radiológica do Retroperitônio<br /><br />REFERÊNCIA BIBLIOGRÁFICAS:<br />1- Scialpi M, Scaglione M, Angelelli G et al. Emergencies in the retroperitoneum: assessment of spread of disease by helical CT. Eur J Radiol 2004; 50(1): 74–83<br />2- Mindell HJ, Mastromatteo JF, Dickey KW et al. Anatomic communications between the three retroperitoneal spaces: determination by CT-guided injections of contrast material in cadavers. AJR Am J Roentgenol 1995; 164(5): 1173–1178. <br />3- Craig WD, Fanburg-Smith JC, Henry LR et al. Fat-containing lesions of the retroperitoneum: radiologic-pathologic correlation. Radiographics 2009; 29(1): 261–290.<br />4- Kunin M. Bridging septa of the perinephric space: anatomic, pathologic, and diagnostic considerations. Radiology 1986; 158(2): 361–365<br />5- Molmenti EP, Balfe DM, Kanterman RY et al. Anatomy of the retroperitoneum: observations of the distribution of pathologic fluid collections. Radiology 1996; 200(1): 95–103<br />6- Haddad MC, Hawary MM, Khoury NJ, Abi-Fakher FS et al. Radiology of perinephric fluid collections. Clin Radiol 2002; 57(5): 339–346<br />7- Scali EP, Chandler TM, Heffernan EJ et al. Primary retroperitoneal masses: what is the differential diagnosis? Abdom Imaging 2015; 40(6): 1887–1903. <br />8- Osman S, Lehnert BE, Elojeimy S et al. A comprehensive review of the retroperitoneal anatomy, neoplasms, and pattern of disease spread. Curr Probl Diagn Radiol 2013; 42(5): 191–208<br />9- Quaia E. Normal Radiological Anatomy of the Retroperitoneum. Medical Radiology, DOI: 10.1007/978-3-540-87597-0_3<br />10- Aizenstein RI, Wilbur AC, O'Neil HK. Interfascial and perinephric pathways in the spread of retroperitoneal disease: refined concepts based on CT observations. Am J Roentgenol 1997;168(3):639–643<br />11- Gore RM, Balfe DM, Aizenstein RI et al. The great escape: interfascial decompression planes of the retroperitoneum. Am J Roentgenol 2000; 175(2): 363–370<br />12- Anatomy of the Retroperitoneum. <a href="https://doi.org/10.1259/img.12.1.120010" rel="noopener">https://doi.org/10.1259/img.12.1.120010</a><br />13- Coffin A, Boulay-Coletta I, Sebbag-Sfez D, Zins M. Radioanatomy of the retroperitoneal space. Diagn Interv Imaging 2015; 96(2): 171–186<br />14- Ishikawa K, Nakao S, Murakami G et al. Preliminary embryological study of the radiological concept of retroperitoneal interfascial planes: what are the interfascial planes?. Surg Radiol Anat 2014; 36(10): 1079–1087<br />15- Lee SL, Ku YM, Rha SE. Comprehensive reviews of the interfascial plane of the retroperitoneum: normal anatomy and pathologic entities. Emerg Radiol 2010; 17(1): 3–11<br />16- Ishikawa K, Nakao S, Nakamuro M, Huang TP et al. The retroperitoneal interfascial planes: current overview and future perspectives. Acute Med Surg 2016; 3(3): 219–229<br />17- Tirkes T, Sandrasegaran K, Patel AA et al. Peritoneal and retroperitoneal anatomy and its relevance for cross-sectional imaging [published correction appears in Radiographics. 2019 May-Jun;39(3):912]. Radiographics 2012; 32(2): 437–451]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/24906648</guid><pubDate>Tue, 07 Apr 2020 01:47:38 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/24906648/imported_623e76cd_71ba_41d6_a4b9_358a77a89114.mp3" length="5041423" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Anatomia Radiológica do Retroperitônio

REFERÊNCIA BIBLIOGRÁFICAS:&#13;
1- Scialpi M, Scaglione M, Angelelli G et al. Emergencies in the retroperitoneum: assessment of spread of disease by helical CT. Eur J Radiol 2004; 50(1): 74–83&#13;
2- Mindell HJ,...</itunes:subtitle><itunes:summary><![CDATA[Anatomia Radiológica do Retroperitônio<br /><br />REFERÊNCIA BIBLIOGRÁFICAS:<br />1- Scialpi M, Scaglione M, Angelelli G et al. Emergencies in the retroperitoneum: assessment of spread of disease by helical CT. Eur J Radiol 2004; 50(1): 74–83<br />2- Mindell HJ, Mastromatteo JF, Dickey KW et al. Anatomic communications between the three retroperitoneal spaces: determination by CT-guided injections of contrast material in cadavers. AJR Am J Roentgenol 1995; 164(5): 1173–1178. <br />3- Craig WD, Fanburg-Smith JC, Henry LR et al. Fat-containing lesions of the retroperitoneum: radiologic-pathologic correlation. Radiographics 2009; 29(1): 261–290.<br />4- Kunin M. Bridging septa of the perinephric space: anatomic, pathologic, and diagnostic considerations. Radiology 1986; 158(2): 361–365<br />5- Molmenti EP, Balfe DM, Kanterman RY et al. Anatomy of the retroperitoneum: observations of the distribution of pathologic fluid collections. Radiology 1996; 200(1): 95–103<br />6- Haddad MC, Hawary MM, Khoury NJ, Abi-Fakher FS et al. Radiology of perinephric fluid collections. Clin Radiol 2002; 57(5): 339–346<br />7- Scali EP, Chandler TM, Heffernan EJ et al. Primary retroperitoneal masses: what is the differential diagnosis? Abdom Imaging 2015; 40(6): 1887–1903. <br />8- Osman S, Lehnert BE, Elojeimy S et al. A comprehensive review of the retroperitoneal anatomy, neoplasms, and pattern of disease spread. Curr Probl Diagn Radiol 2013; 42(5): 191–208<br />9- Quaia E. Normal Radiological Anatomy of the Retroperitoneum. Medical Radiology, DOI: 10.1007/978-3-540-87597-0_3<br />10- Aizenstein RI, Wilbur AC, O'Neil HK. Interfascial and perinephric pathways in the spread of retroperitoneal disease: refined concepts based on CT observations. Am J Roentgenol 1997;168(3):639–643<br />11- Gore RM, Balfe DM, Aizenstein RI et al. The great escape: interfascial decompression planes of the retroperitoneum. Am J Roentgenol 2000; 175(2): 363–370<br />12- Anatomy of the Retroperitoneum. <a href="https://doi.org/10.1259/img.12.1.120010" rel="noopener">https://doi.org/10.1259/img.12.1.120010</a><br />13- Coffin A, Boulay-Coletta I, Sebbag-Sfez D, Zins M. Radioanatomy of the retroperitoneal space. Diagn Interv Imaging 2015; 96(2): 171–186<br />14- Ishikawa K, Nakao S, Murakami G et al. Preliminary embryological study of the radiological concept of retroperitoneal interfascial planes: what are the interfascial planes?. Surg Radiol Anat 2014; 36(10): 1079–1087<br />15- Lee SL, Ku YM, Rha SE. Comprehensive reviews of the interfascial plane of the retroperitoneum: normal anatomy and pathologic entities. Emerg Radiol 2010; 17(1): 3–11<br />16- Ishikawa K, Nakao S, Nakamuro M, Huang TP et al. The retroperitoneal interfascial planes: current overview and future perspectives. Acute Med Surg 2016; 3(3): 219–229<br />17- Tirkes T, Sandrasegaran K, Patel AA et al. Peritoneal and retroperitoneal anatomy and its relevance for cross-sectional imaging [published correction appears in Radiographics. 2019 May-Jun;39(3):912]. Radiographics 2012; 32(2): 437–451]]></itunes:summary><itunes:duration>316</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Infecções por coronavírus nas crianças</title><link>https://www.spreaker.com/episode/infeccoes-por-coronavirus-nas-criancas--24794653</link><description><![CDATA[Aspectos clínico-radiológicos da infecção em crianças.<br /><br />Referências Bibliográficas:<br />1- Xia W, Shao J, Guo Y, et al. Clinical and CT features in pediatric patients with COVID-19 infection: Different points from adults [published online ahead of print, 2020 Mar 5]. Pediatr Pulmonol 2020; 10.1002/ppul.24718<br />2- Liu W, Zhang Q, Chen J, et al. Detection of Covid-19 in Children in Early January 2020 in Wuhan, China. N Engl J Med 2020; 382(14): 1370–1371<br />3- Lee PI, Hu YL, Chen PY et al. Are children less susceptible to COVID-19? [published online ahead of print, 2020 Feb 25]. J Microbiol Immunol Infect. 2020<br />4- Li W, Cui H, Li K, Fang Y et al. Chest computed tomography in children with COVID-19 respiratory infection [published online ahead of print, 2020 Mar 11]. Pediatr Radiol 2020; 10.1007/s00247-020-04656-7<br />5- Qiu H, Wu J, Hong L et al. Clinical and epidemiological features of 36 children with coronavirus disease 2019 (COVID-19) in Zhejiang, China: an observational cohort study [published online ahead of print, 2020 Mar 25]. Lancet Infect Dis 2020; S1473-3099(20)30198-5<br />6- Cai J, Xu J, Lin D, et al. A Case Series of children with 2019 novel coronavirus infection: clinical and epidemiological features [published online ahead of print, 2020 Feb 28]. Clin Infect Dis 2020;ciaa198<br />7- Ji LN, Chao S, Wang YJ, et al. Clinical features of pediatric patients with COVID-19: a report of two family cluster cases [published online ahead of print, 2020 Mar 16]. World J Pediatr 2020; 10.1007/s12519-020-00356-2<br />8- Hong H, Wang Y, Chung HT et al. Clinical characteristics of novel coronavirus disease 2019 (COVID-19) in newborns, infants and children [published online ahead of print, 2020 Mar 10]. Pediatr Neonatol 2020; S1875-9572(20)30026-7.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/24794653</guid><pubDate>Fri, 03 Apr 2020 23:06:05 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/24794653/imported_10748852_a9b2_46a0_9f6d_4a0804058074.mp3" length="5084473" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Aspectos clínico-radiológicos da infecção em crianças.

Referências Bibliográficas:
1- Xia W, Shao J, Guo Y, et al. Clinical and CT features in pediatric patients with COVID-19 infection: Different points from adults [published online ahead of print,...</itunes:subtitle><itunes:summary><![CDATA[Aspectos clínico-radiológicos da infecção em crianças.<br /><br />Referências Bibliográficas:<br />1- Xia W, Shao J, Guo Y, et al. Clinical and CT features in pediatric patients with COVID-19 infection: Different points from adults [published online ahead of print, 2020 Mar 5]. Pediatr Pulmonol 2020; 10.1002/ppul.24718<br />2- Liu W, Zhang Q, Chen J, et al. Detection of Covid-19 in Children in Early January 2020 in Wuhan, China. N Engl J Med 2020; 382(14): 1370–1371<br />3- Lee PI, Hu YL, Chen PY et al. Are children less susceptible to COVID-19? [published online ahead of print, 2020 Feb 25]. J Microbiol Immunol Infect. 2020<br />4- Li W, Cui H, Li K, Fang Y et al. Chest computed tomography in children with COVID-19 respiratory infection [published online ahead of print, 2020 Mar 11]. Pediatr Radiol 2020; 10.1007/s00247-020-04656-7<br />5- Qiu H, Wu J, Hong L et al. Clinical and epidemiological features of 36 children with coronavirus disease 2019 (COVID-19) in Zhejiang, China: an observational cohort study [published online ahead of print, 2020 Mar 25]. Lancet Infect Dis 2020; S1473-3099(20)30198-5<br />6- Cai J, Xu J, Lin D, et al. A Case Series of children with 2019 novel coronavirus infection: clinical and epidemiological features [published online ahead of print, 2020 Feb 28]. Clin Infect Dis 2020;ciaa198<br />7- Ji LN, Chao S, Wang YJ, et al. Clinical features of pediatric patients with COVID-19: a report of two family cluster cases [published online ahead of print, 2020 Mar 16]. World J Pediatr 2020; 10.1007/s12519-020-00356-2<br />8- Hong H, Wang Y, Chung HT et al. Clinical characteristics of novel coronavirus disease 2019 (COVID-19) in newborns, infants and children [published online ahead of print, 2020 Mar 10]. Pediatr Neonatol 2020; S1875-9572(20)30026-7.]]></itunes:summary><itunes:duration>318</itunes:duration><itunes:keywords>es</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Aspectos Radiológicos da Gota</title><link>https://www.spreaker.com/episode/aspectos-radiologicos-da-gota--24611562</link><description><![CDATA[Comentários sobre sítios de localização e sinais radiológicos <br /><br />Referências Bibliográficas:<br />1- Davies J, Riede P, van Langevelde K, Teh J. Recent Developments in Advanced Imaging in Gout. Ther Adv Musculoskelet Dis 2019; 11:1759720X19844429<br />2- Williams M, Temperley D, Murali R. Radiology of the Hand. Orthop Trauma 2019; 33 (1): 45-52.<br />3- Omoumi P, Zufferey P, Malghem J, So A. Imaging in Gout and Other Crystal-Related Arthropathies. Rheum Dis Clin North Am 2016; 42(4): 621-644<br />4- Jacques T, Michelin P, Badr S, Nasuto M et al. Conventional radiology in crystal arthritis: Gout, Calcium Pyrophosphate Deposition, and Basic Calcium Phosphate Crystals. Radiol Clin North Am 2017; 55(5): 967-984<br />5- De Avila Fernandes E, Bergamaschi SB, Rodrigues TC, et al. Relevant aspects of imaging in the diagnosis and management of gout. Rev Bras Reumatol 2017; 57(1): 64–72.<br />6- Teh J, McQueen F, Eshed I et al. Advanced Imaging in the Diagnosis of Gout and Other Crystal Arthropathies. Semin Musculoskelet Radiol 2018; 22(2): 225-236<br />7- Pattamapaspong N, Vuthiwong W, Kanthawang T et al. Value of ultrasonography in the diagnosis of gout in patients presenting with acute arthritis. Skeletal Radiol 2017; 46(6): 759-767]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/24611562</guid><pubDate>Mon, 30 Mar 2020 03:22:51 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/24611562/imported_5bcc92f5_cd0c_44a4_8d5b_6fb427fa09ac.mp3" length="6589544" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Comentários sobre sítios de localização e sinais radiológicos 

Referências Bibliográficas:&#13;
1- Davies J, Riede P, van Langevelde K, Teh J. Recent Developments in Advanced Imaging in Gout. Ther Adv Musculoskelet Dis 2019; 11:1759720X19844429&#13;
2-...</itunes:subtitle><itunes:summary><![CDATA[Comentários sobre sítios de localização e sinais radiológicos <br /><br />Referências Bibliográficas:<br />1- Davies J, Riede P, van Langevelde K, Teh J. Recent Developments in Advanced Imaging in Gout. Ther Adv Musculoskelet Dis 2019; 11:1759720X19844429<br />2- Williams M, Temperley D, Murali R. Radiology of the Hand. Orthop Trauma 2019; 33 (1): 45-52.<br />3- Omoumi P, Zufferey P, Malghem J, So A. Imaging in Gout and Other Crystal-Related Arthropathies. Rheum Dis Clin North Am 2016; 42(4): 621-644<br />4- Jacques T, Michelin P, Badr S, Nasuto M et al. Conventional radiology in crystal arthritis: Gout, Calcium Pyrophosphate Deposition, and Basic Calcium Phosphate Crystals. Radiol Clin North Am 2017; 55(5): 967-984<br />5- De Avila Fernandes E, Bergamaschi SB, Rodrigues TC, et al. Relevant aspects of imaging in the diagnosis and management of gout. Rev Bras Reumatol 2017; 57(1): 64–72.<br />6- Teh J, McQueen F, Eshed I et al. Advanced Imaging in the Diagnosis of Gout and Other Crystal Arthropathies. Semin Musculoskelet Radiol 2018; 22(2): 225-236<br />7- Pattamapaspong N, Vuthiwong W, Kanthawang T et al. Value of ultrasonography in the diagnosis of gout in patients presenting with acute arthritis. Skeletal Radiol 2017; 46(6): 759-767]]></itunes:summary><itunes:duration>412</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Fibrose Pulmonar Idiopática</title><link>https://www.spreaker.com/episode/fibrose-pulmonar-idiopatica--24530134</link><description><![CDATA[Importância da tomografia para definição e caracterização da fibrose pulmonar idiopática]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/24530134</guid><pubDate>Sun, 29 Mar 2020 01:54:33 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/24530134/imported_b976bd59_51e2_4943_8347_175fedd25316.mp3" length="7524937" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Importância da tomografia para definição e caracterização da fibrose pulmonar idiopática</itunes:subtitle><itunes:summary><![CDATA[Importância da tomografia para definição e caracterização da fibrose pulmonar idiopática]]></itunes:summary><itunes:duration>471</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Coronavírus Parte V: Manifestações Gastrointestinais da COVID-19</title><link>https://www.spreaker.com/episode/coronavirus-parte-v-manifestacoes-gastrointestinais-da-covid-19--24186679</link><description><![CDATA[Estudo do eixo imunológico pulmonar-intestinal, importância dos receptores da enzima conversora de angiotensina e quadro clínico gastrointestinal.<br /><br />Referências Bibliográficas:<br />1- He Y, Wen Q, Yao F et al. Gut-Lung Axis: The Microbial Contributions and Clinical Implications. Crit Rev Microbiol. 2017 Feb;43(1):81-95.<br />2- Chan MC, Lee N, Chan PK et al. Fecal Detection of Influenza A Virus in Patients with Concurrent Respiratory and Gastrointestinal Symptoms. J Clin Virol. 2009 Jul; 45(3): 208-11<br />3- Gao QY, Chen YX, Fang JY. 2019 Novel Coronavirus Infection and Gastrointestinal Tract. J Dig Dis. 2020 Feb 25<br />4- Hamming I, Timens W, Bulthuis MLC et al. Tissue Distribution of ACE2 Protein, the Functional Receptor for SARS Coronavirus. A First Step in Understanding SARS Pathogenesis. J Pathol 2004; 203: 631-637.<br />5- Pan L, Mu M, Ren HG et al. Clinical Characteristics of COVID-19 Patients with Digestive Symptoms in Hubei, China: a Descriptive, Cross-sectional, Multicenter Study. 6- Ungaro RC, Sullivan T, Colombel J et al. What Should Gastroenterologists and Patients Know about COVID-19? Clin Gastroenterol Hepatol. 2020 Mar 17. pii: S1542- 3565(20)30330-X.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/24186679</guid><pubDate>Sun, 22 Mar 2020 23:04:29 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/24186679/imported_981f07b8_77fc_4f5b_bd0e_dc7fe238eee4.mp3" length="4712489" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Estudo do eixo imunológico pulmonar-intestinal, importância dos receptores da enzima conversora de angiotensina e quadro clínico gastrointestinal.

Referências Bibliográficas:
1- He Y, Wen Q, Yao F et al. Gut-Lung Axis: The Microbial Contributions...</itunes:subtitle><itunes:summary><![CDATA[Estudo do eixo imunológico pulmonar-intestinal, importância dos receptores da enzima conversora de angiotensina e quadro clínico gastrointestinal.<br /><br />Referências Bibliográficas:<br />1- He Y, Wen Q, Yao F et al. Gut-Lung Axis: The Microbial Contributions and Clinical Implications. Crit Rev Microbiol. 2017 Feb;43(1):81-95.<br />2- Chan MC, Lee N, Chan PK et al. Fecal Detection of Influenza A Virus in Patients with Concurrent Respiratory and Gastrointestinal Symptoms. J Clin Virol. 2009 Jul; 45(3): 208-11<br />3- Gao QY, Chen YX, Fang JY. 2019 Novel Coronavirus Infection and Gastrointestinal Tract. J Dig Dis. 2020 Feb 25<br />4- Hamming I, Timens W, Bulthuis MLC et al. Tissue Distribution of ACE2 Protein, the Functional Receptor for SARS Coronavirus. A First Step in Understanding SARS Pathogenesis. J Pathol 2004; 203: 631-637.<br />5- Pan L, Mu M, Ren HG et al. Clinical Characteristics of COVID-19 Patients with Digestive Symptoms in Hubei, China: a Descriptive, Cross-sectional, Multicenter Study. 6- Ungaro RC, Sullivan T, Colombel J et al. What Should Gastroenterologists and Patients Know about COVID-19? Clin Gastroenterol Hepatol. 2020 Mar 17. pii: S1542- 3565(20)30330-X.]]></itunes:summary><itunes:duration>295</itunes:duration><itunes:keywords>es</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Hiperplasia Prostática Benigna</title><link>https://www.spreaker.com/episode/hiperplasia-prostatica-benigna--24155378</link><description><![CDATA[Anatomia, patologia e avaliação ultrassonográfica]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/24155378</guid><pubDate>Sun, 22 Mar 2020 03:19:49 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/24155378/imported_5c7a3794_88f7_4f96_a45c_f6c9786bcc20.mp3" length="5914122" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Anatomia, patologia e avaliação ultrassonográfica</itunes:subtitle><itunes:summary><![CDATA[Anatomia, patologia e avaliação ultrassonográfica]]></itunes:summary><itunes:duration>370</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Coronavírus parte IV</title><link>https://www.spreaker.com/episode/coronavirus-parte-iv--24062613</link><description><![CDATA[PODCAST CORONAVÍRUS PARTE IV – SEMELHANÇAS E DIFERENÇAS ENTRE ESTA EPIDEMIA E AQUELAS CAUSADAS POR OUTROS CORONAVÍRUS E VÍRUS INFLUENZA H1N1<br /><br />Referências Bibliográficas:<br />1- Zhong N, Zeng G. What we have learnt from SARS epidemics in China. BMJ. 2006; 333(7564): 389–391.<br />2- Lee PI, Hsueh PR. Emerging threats from zoonotic coronaviruses-from SARS and MERS to 2019-nCoV. J Microbiol Immunol Infect. 2020; S1684-1182(20)30011-6.<br />3- Li R, Pei S, Chen B et al. Substantial undocumented infection facilitates the rapid dissemination of novel coronavirus (SARS-CoV2). Science 2020: eabb3221<br />DOI: 10.1126/science.abb3221<br />4- Ashour, H.M.; Elkhatib, W.F.; Rahman, M.M.; Elshabrawy, H.A. Insights into the Recent 2019 Novel Coronavirus (SARS-CoV-2) in Light of Past Human Coronavirus Outbreaks. Pathogens 2020, 9, 186.<br />5- Franco-Paredes C, Hernandez-Ramos I, Del Rio C et al. H1N1 Influenza Pandemics: Comparing the Events of 2009 in Mexico with those of 1976 and 1918–1919. Arch Med Res. 2009; 40(8): 669-72.<br />6- As China Virus Cases Near Zero, Experts Warn of Second Wave. Bloomberg News. 18 de março de 2020.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/24062613</guid><pubDate>Thu, 19 Mar 2020 16:41:56 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/24062613/imported_54c8d0a6_f4b9_4c2d_9fee_833fa280de03.mp3" length="4730880" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>PODCAST CORONAVÍRUS PARTE IV – SEMELHANÇAS E DIFERENÇAS ENTRE ESTA EPIDEMIA E AQUELAS CAUSADAS POR OUTROS CORONAVÍRUS E VÍRUS INFLUENZA H1N1

Referências Bibliográficas:
1- Zhong N, Zeng G. What we have learnt from SARS epidemics in China. BMJ. 2006;...</itunes:subtitle><itunes:summary><![CDATA[PODCAST CORONAVÍRUS PARTE IV – SEMELHANÇAS E DIFERENÇAS ENTRE ESTA EPIDEMIA E AQUELAS CAUSADAS POR OUTROS CORONAVÍRUS E VÍRUS INFLUENZA H1N1<br /><br />Referências Bibliográficas:<br />1- Zhong N, Zeng G. What we have learnt from SARS epidemics in China. BMJ. 2006; 333(7564): 389–391.<br />2- Lee PI, Hsueh PR. Emerging threats from zoonotic coronaviruses-from SARS and MERS to 2019-nCoV. J Microbiol Immunol Infect. 2020; S1684-1182(20)30011-6.<br />3- Li R, Pei S, Chen B et al. Substantial undocumented infection facilitates the rapid dissemination of novel coronavirus (SARS-CoV2). Science 2020: eabb3221<br />DOI: 10.1126/science.abb3221<br />4- Ashour, H.M.; Elkhatib, W.F.; Rahman, M.M.; Elshabrawy, H.A. Insights into the Recent 2019 Novel Coronavirus (SARS-CoV-2) in Light of Past Human Coronavirus Outbreaks. Pathogens 2020, 9, 186.<br />5- Franco-Paredes C, Hernandez-Ramos I, Del Rio C et al. H1N1 Influenza Pandemics: Comparing the Events of 2009 in Mexico with those of 1976 and 1918–1919. Arch Med Res. 2009; 40(8): 669-72.<br />6- As China Virus Cases Near Zero, Experts Warn of Second Wave. Bloomberg News. 18 de março de 2020.]]></itunes:summary><itunes:duration>296</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>WEBINAR CORONAVÍRUS</title><link>https://www.spreaker.com/episode/webinar-coronavirus--23782783</link><description><![CDATA[10 perguntas formuladas aos alunos de graduação com as respostas comentadas por Roberto Mogami]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23782783</guid><pubDate>Thu, 12 Mar 2020 08:38:15 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23782783/imported_b4c6fa7e_f33c_4111_aace_7101fb27e8f7.mp3" length="6465828" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>10 perguntas formuladas aos alunos de graduação com as respostas comentadas por Roberto Mogami</itunes:subtitle><itunes:summary><![CDATA[10 perguntas formuladas aos alunos de graduação com as respostas comentadas por Roberto Mogami]]></itunes:summary><itunes:duration>405</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>CORONAVÍRUS PARTE III - PATOLOGIA DAS ALTERAÇÕES E COMPARAÇÃO COM A TC</title><link>https://www.spreaker.com/episode/coronavirus-parte-iii-patologia-das-alteracoes-e-comparacao-com-a-tc--23374881</link><description><![CDATA[São discutidos os achados recentes de necropsia em doentes que tiveram infecção pelo COVID-19, à luz da síndrome do desconforto respiratório agudo. O autor do podcast compara os achados de necropsia com as alterações descritas na TC.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23374881</guid><pubDate>Mon, 02 Mar 2020 03:10:55 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23374881/podcast_1583117618.mp3" length="6411075" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>São discutidos os achados recentes de necropsia em doentes que tiveram infecção pelo COVID-19, à luz da síndrome do desconforto respiratório agudo. O autor do podcast compara os achados de necropsia com as alterações descritas na TC.</itunes:subtitle><itunes:summary><![CDATA[São discutidos os achados recentes de necropsia em doentes que tiveram infecção pelo COVID-19, à luz da síndrome do desconforto respiratório agudo. O autor do podcast compara os achados de necropsia com as alterações descritas na TC.]]></itunes:summary><itunes:duration>401</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Coronavírus parte II - diagnóstico diferencial com outras pneumonias virais comunitárias</title><link>https://www.spreaker.com/episode/coronavirus-parte-ii-diagnostico-diferencial-com-outras-pneumonias-virais-comunitarias--23226575</link><description><![CDATA[Comentários sobre outras pneumonias virais comunitárias que se assemelham ao coronavírus]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23226575</guid><pubDate>Wed, 26 Feb 2020 23:17:06 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23226575/imported_59b4397f_12a8_4ec0_b30f_21c582e11d88.mp3" length="7114501" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Comentários sobre outras pneumonias virais comunitárias que se assemelham ao coronavírus</itunes:subtitle><itunes:summary><![CDATA[Comentários sobre outras pneumonias virais comunitárias que se assemelham ao coronavírus]]></itunes:summary><itunes:duration>445</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Coronavirus pneumonia, what the radiologist and clinician should know</title><link>https://www.spreaker.com/episode/coronavirus-pneumonia-what-the-radiologist-and-clinician-should-know--23192978</link><description><![CDATA[The radiological patterns of disease]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23192978</guid><pubDate>Wed, 26 Feb 2020 02:11:23 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23192978/podcast_1582681946.mp3" length="5463144" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>The radiological patterns of disease</itunes:subtitle><itunes:summary><![CDATA[The radiological patterns of disease]]></itunes:summary><itunes:duration>342</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Coronavírus</title><link>https://www.spreaker.com/episode/coronavirus--23189570</link><description><![CDATA[O que o clínico e radiologista precisam saber sobre a infecção pelo coronavírus]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23189570</guid><pubDate>Tue, 25 Feb 2020 23:37:54 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23189570/imported_aadb094d_463d_4b71_8d93_26adee58541e.mp3" length="5076532" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>O que o clínico e radiologista precisam saber sobre a infecção pelo coronavírus</itunes:subtitle><itunes:summary><![CDATA[O que o clínico e radiologista precisam saber sobre a infecção pelo coronavírus]]></itunes:summary><itunes:duration>318</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Coronavírus</title><link>https://www.spreaker.com/episode/coronavirus--23188803</link><description><![CDATA[O que o clínico e radiologista precisam sobre a pneumonia pelo 2019 novel coronavírus]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23188803</guid><pubDate>Tue, 25 Feb 2020 23:30:41 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23188803/imported_aadb094d_463d_4b71_8d93_26adee58541e.mp3" length="5076532" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>O que o clínico e radiologista precisam sobre a pneumonia pelo 2019 novel coronavírus</itunes:subtitle><itunes:summary><![CDATA[O que o clínico e radiologista precisam sobre a pneumonia pelo 2019 novel coronavírus]]></itunes:summary><itunes:duration>318</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Ressonância Magnética de Corpo Inteiro - Fundamentos sobre Medula Óssea</title><link>https://www.spreaker.com/episode/ressonancia-magnetica-de-corpo-inteiro-fundamentos-sobre-medula-ossea--23171974</link><description><![CDATA[Noções básicas sobre medula óssea]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23171974</guid><pubDate>Tue, 25 Feb 2020 13:35:35 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23171974/imported_61bedb3d_af18_448d_8a9b_ecac01e78d3e.mp3" length="3334478" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Noções básicas sobre medula óssea</itunes:subtitle><itunes:summary><![CDATA[Noções básicas sobre medula óssea]]></itunes:summary><itunes:duration>209</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Lesões hepáticas focais - parte II</title><link>https://www.spreaker.com/episode/lesoes-hepaticas-focais-parte-ii--23151547</link><description><![CDATA[Caracterização das principais lesões focais na US, TC e RM]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23151547</guid><pubDate>Mon, 24 Feb 2020 23:26:57 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23151547/imported_b7a8cfb6_f45a_40e3_a816_2b7d4f429a66.mp3" length="5589786" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Caracterização das principais lesões focais na US, TC e RM</itunes:subtitle><itunes:summary><![CDATA[Caracterização das principais lesões focais na US, TC e RM]]></itunes:summary><itunes:duration>350</itunes:duration><itunes:keywords>es</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Lesões hepáticas focais - introdução</title><link>https://www.spreaker.com/episode/lesoes-hepaticas-focais-introducao--23131535</link><description><![CDATA[Descrição das fases do estudo dinâmico do fígado e protocolos de ressonância magnética]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23131535</guid><pubDate>Mon, 24 Feb 2020 11:06:36 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23131535/imported_70c15c23_6a46_4b45_993f_f9ef35c54099.mp3" length="4911020" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Descrição das fases do estudo dinâmico do fígado e protocolos de ressonância magnética</itunes:subtitle><itunes:summary><![CDATA[Descrição das fases do estudo dinâmico do fígado e protocolos de ressonância magnética]]></itunes:summary><itunes:duration>307</itunes:duration><itunes:keywords>es</itunes:keywords><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Tomografia computadorizada na urolitíase</title><link>https://www.spreaker.com/episode/tomografia-computadorizada-na-urolitiase--23089547</link><description><![CDATA[Análise de vários aspectos importantes do papel da TC na avaliação dos cálculos urinários]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23089547</guid><pubDate>Sun, 23 Feb 2020 05:14:16 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23089547/podcast_1582433307.mp3" length="11316244" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Análise de vários aspectos importantes do papel da TC na avaliação dos cálculos urinários</itunes:subtitle><itunes:summary><![CDATA[Análise de vários aspectos importantes do papel da TC na avaliação dos cálculos urinários]]></itunes:summary><itunes:duration>708</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>ESTEATOSE HEPÁTICA</title><link>https://www.spreaker.com/episode/esteatose-hepatica--23063774</link><description><![CDATA[Aquilo que vc gostaria de saber resumidamente sobre esteatose hepática]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23063774</guid><pubDate>Sat, 22 Feb 2020 10:25:46 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23063774/podcast_1582366371.mp3" length="5450605" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Aquilo que vc gostaria de saber resumidamente sobre esteatose hepática</itunes:subtitle><itunes:summary><![CDATA[Aquilo que vc gostaria de saber resumidamente sobre esteatose hepática]]></itunes:summary><itunes:duration>341</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Ultrasound evaluation of painful fingers</title><link>https://www.spreaker.com/episode/ultrasound-evaluation-of-painful-fingers--23011904</link><description><![CDATA[English version of the podcast about painful fingers. Several times there are limitations for the physical examination to define the nature of pain. Ultrasound may help to clarify if it is intra-articular, entheseal or related to the tendon sheath.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/23011904</guid><pubDate>Fri, 21 Feb 2020 01:20:39 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/23011904/podcast_1582245309.mp3" length="2539520" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>English version of the podcast about painful fingers. Several times there are limitations for the physical examination to define the nature of pain. Ultrasound may help to clarify if it is intra-articular, entheseal or related to the tendon sheath.</itunes:subtitle><itunes:summary><![CDATA[English version of the podcast about painful fingers. Several times there are limitations for the physical examination to define the nature of pain. Ultrasound may help to clarify if it is intra-articular, entheseal or related to the tendon sheath.]]></itunes:summary><itunes:duration>159</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Avaliação ultrassonográfica de quadros dolorosos de quirodáctilos</title><link>https://www.spreaker.com/episode/avaliacao-ultrassonografica-de-quadros-dolorosos-de-quirodactilos--22998737</link><description><![CDATA[Roberto Mogami discute o diagnóstico diferencial dos quadros dolorosos de dedos das mãos]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/22998737</guid><pubDate>Thu, 20 Feb 2020 16:58:38 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/22998737/podcast_1582217514.mp3" length="2432104" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Roberto Mogami discute o diagnóstico diferencial dos quadros dolorosos de dedos das mãos</itunes:subtitle><itunes:summary><![CDATA[Roberto Mogami discute o diagnóstico diferencial dos quadros dolorosos de dedos das mãos]]></itunes:summary><itunes:duration>153</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item><item><title>Padrão de acometimento espondiloartropático na Febre Chikungunya</title><link>https://www.spreaker.com/episode/padrao-de-acometimento-espondiloartropatico-na-febre-chikungunya--22745190</link><description><![CDATA[Comentários acerca da experiência do pesquisador Roberto Mogami na observação das complicações musculoesqueléticas da chikungunya.]]></description><guid isPermaLink="false">https://api.spreaker.com/episode/22745190</guid><pubDate>Thu, 13 Feb 2020 21:43:07 +0000</pubDate><enclosure url="https://api.spreaker.com/download/episode/22745190/podcast_1581629176.mp3" length="5804199" type="audio/mpeg"/><itunes:author>Roberto Mogami</itunes:author><itunes:subtitle>Comentários acerca da experiência do pesquisador Roberto Mogami na observação das complicações musculoesqueléticas da chikungunya.</itunes:subtitle><itunes:summary><![CDATA[Comentários acerca da experiência do pesquisador Roberto Mogami na observação das complicações musculoesqueléticas da chikungunya.]]></itunes:summary><itunes:duration>363</itunes:duration><itunes:explicit>false</itunes:explicit><itunes:image href="https://d3wo5wojvuv7l.cloudfront.net/t_rss_itunes_square_1400/images.spreaker.com/original/b67643ce15d6709687e75409d4217d0a.jpg"/><itunes:episodeType>full</itunes:episodeType></item></channel></rss>
