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Visualizar Tese - Instituto de Biociências - Unesp

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Andreo Fernando Aguiar<strong>de</strong> adaptação ao exercício/treinamento físico, possibilitando uma maior eficácia naprescrição do treinamento.II – OBJETIVOSAvaliar os efeitos do treinamento resistido a longo prazo sobre as adaptaçõesmorfológicas e expressão gênica dos fatores <strong>de</strong> regulação miogênica (MRFs) e do fator<strong>de</strong> crescimento semelhante à insulina (IGF-I) no músculo esquelético <strong>de</strong> ratos.III - REFERÊNCIAS BIBLIOGRÁFICAS1. Adams GR, Hather BM, Baldwin KM, and Dudley GA. Skeletal muscle myosinheavy chain composition and resistance training. J Appl Physiol 74: 911-915, 1993.2. Adams GR. Role of insulin-like growth factor-I in the regulation of skeletal muscleadaptation to increased loading. Exerc Sport Sci Rev 26: 31-60, 1998.3. Adams GR, Mccue SA, Zeng M, and Baldwin KM. Time course of myosin heavychain transitions in neonatal rats: importance of innervation and thyroid state. Am JPhysiol 276: 954-961, 1999.4. Aguiar AF, Aguiar DH, Felisberto AD, Carani FR, Milanezi RC, Padovani CR,and Dal-Pai-Silva M. Effects of creatine supplementation during resistance trainingon myosin heavy chain (MHC) expression in rat skeletal muscle fibers. J StrengthCond Res 24: 88-96, 2010.5. Allen DL, Monke SR, Talmadge RJ, Roy RR, and Edgerton VR. Plasticity ofmyonuclear number in hypertrophied and atrophied mammalian skeletal musclefibers. J Appl Physiol 78: 1969–1976, 19956. Allen DL and Leinwand LA. Intracellular calcium and myosin isoform transitions.Calcineurin and calcium-calmodulin kinase pathways regulate preferential activationof the IIa myosin heavy chain promoter. J Biol Chem 277: 45323-45330, 2002.7. An<strong>de</strong>rsen JL, Klitgaard H, and Saltin B. Myosin heavy chain isoforms in singlefibres from m. vastus lateralis of sprinters: influence of training. Acta Physiol Scand151: 135-142, 1994.27

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