ABC | Volume 114, Nº1, January 2019

Original Article Brianezi et al. Effects of physical training on the myocardium Arq Bras Cardiol. 2020; 114(1):100-105 This is an open-access article distributed under the terms of the Creative Commons Attribution License 18. Tampelini FS. Efeito do exercício físico aeróbio sobre os componentes fibroelástico e colágeno da aorta de ratos normotensos e hipertensos, sedentários e treinados aorta de ratos normotensos e hipertensos. [Internet]. [Citado em 2018 jan 12]. Disponível em: http://www.teses. usp.br/teses/disponiveis/42/42131/tde-30052008-120037/pt-br.php 10.11606/D.42.2008.tde-30052008-120037 19. Silva DCT, Lima-Leopoldo AP, Leopoldo AS, Campos DHS, Nascimento AF, Oliveira JSA et al. Influencia do tempo de exposiço a obesidade induzida por dieta hiperlipidica sobre os colagenos Tipo I e III miocardico. Arq Bras Cardiol. 2014;102(2):157-64. 20. Yu Y, Yin G, Bao S, Guo Z. Kinetic alterations of collagen and elastic fibres and their association with cardiac function in acute myocardial infarction. Mol Med Rep. 2018;17(3):3519-26. 21. Camelliti P, Borg TK, Kohl P. Structural and functional characterization of cardiac fibroblasts. Cardiovasc Res. 2005;65(1):40–51. 22. Masson S, Latinim R, SaliomM, Fiordaliso F. Cardiac fibrosis and aging. In: RazzaqueMS. Fibrogenesis: Cellular andMolecular Basis. NewYork:Kluwer Academic Publishers;2005.p.97-103. 23. Thomas DP,McCormick RJ, Zimmerman SD, Vadlamudi RK,Gosselin LE. Aging- and training-induced alterations in collagen characteristics of rat left ventricle and papillary muscle. Am J Physiol. 1992;263(3 Pt 2):H778-83. 24. Maifrino LBM, Araújo RC, Faccini CC, Liberti EA, Gama EF, Ribeiro AACMet al.Efeitodotreinamento físicoemalterações induzidaspeloenvelhecimento no musculo papilar do rato. Arq Bras Cardiol. 2009;92(5):387-92. 25. Polyakova V, Loeffler I, Hein S, Miyagawa S, Piotrowska I, Dammer S, et al. Fibrosis in endstage human heart failure: Severe changes in collagens metabolismo and MMP/TIMP profiles, Int J Cardiol, 2011;151(1):18-33. 26. Nagase H, Visse R, Murphy G. Structure and function of matrix metalloproteinases and TIMPs. Cardiol Res. 2006; 69:562-73 27. Geurts N, Opdenakker G, Van Den Steen P. Matrix Metalloproteinases as therapeutic targets in protozoan parasitic infections. Pharmacol Ther. 2012; 133(3):257-79. 28. Kupai K, Szucs G, Cseh S, Hajdu I, Csonka C, Csont T, Ferdinandy P. Matrix metalloproteinase activity assays: Importance of zimography. J Pharmacol Toxicol Methods. 2010;61(2):205-9. 29. Viegas KAS. Ação da angiotensina II no remodelamento da matriz extracelular perivascular em camundongos. Tese. São Paulo:Instituto de Ciências Biomédicas.Universidade de São Paulo; 2012. 30. Wu SY, Yu YR, Cai Y , Jia LX, Wang X, Xiao CS, et al. Endogenous aldosterone is involved in vascular calcification in rat. Exp Biol Med. 2012; 237(1): 31–7. 31. Parks WC, Mecham RP. Extracellular matrix degradation. New York: Springer; 2011. 32. Nascimento DC, Durigan RCM, Tibana RA, Durigan JLQ, Navalta JW, Prestes J. The Response of Matrix Metalloproteinase-9 and -2 to Exercise. Sports Med. 2015; 45(2):269-78. 33. Basalyga DM, Simionescu DT , Xiong W , Baxter BT , Starcher BC, Vyavahare NR. Elastindegradationandcalcification inanabdominalaorta injurymodel: Role of matrix metalloproteinases. Circulation. 2004;110(22): 3480–7. 34. Hsu T, Kuo K, Hung S, Huang PH, Chen JW , Tarng DC . Progression of kidney disease in non-diabetic patients with coronary artery disease: predictive role of circulatingmatrixmetalloproteinase-2,-3,and-9.PLoSOne.2013;8(7):e70132. 35. Dantas AP, Tostes RC, Forbes ZB, Costa SG, Nigro D, Carvalho MH. In vivo evidence for antioxidant potential of estrogen in microvessels of female spontaneously hypertensive rats. Hypertension. 2002;39(2 Pt 2):405-11. 105

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