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ARTICLES

Different Expression of Calpains/Calpastatin in Rat Gastrocnemius Muscle after Repeated Exercise

, MD, , PhD, , MD & , MD
Pages 246-257 | Received 07 Feb 2007, Accepted 27 Jul 2007, Published online: 09 Sep 2009

REFERENCES

  • Pette D. Training effects on the contractile apparatus. Acta Physiol Scand 1998; 162: 367–376
  • Belcastro A N, MacLean I, Gilchrist J. Biochemical basis of muscular fatigue associated with repetitous contractions of skeletal muscle. Int J Biochem 1985; 17: 447–453
  • Belcastro A N, Shewchuk L D, Raj D A. Exercise-induced muscle injury: A calpain hypothesis. Mol Cell Biochem 1998; 179: 135–145
  • Baghdiguian S, Martin M, Richard I, Pons F, Astier C, Bourg N, et al. Calpain 3 deficiency is associated with myonuclear apoptosis and profound perturbation of the IκBα/NF-κ B pathway in limb-girdle muscular dystrophy type 2A. Nat Med 1999; 5: 503–511
  • Feasson L, Stockholm D, Freyssenet D, Richard I, Duguez S, Beckmann J S, et al. Molecular adaptations of neuromuscular disease-associated proteins in response to eccentric exercise in human skeletal muscle. J Physiol 2002; 543: 297–306
  • Elce J S, Hegadorn C, Arthur J S. Autolysis, Ca2+ requirement, and heterodimer stability in m-calpain. J Biol Chem 1997; 272: 11268–11275
  • Branca D, Gugliucci A, Bano D, Brini M, Carafoli E. Expression, partial purification and functional properties of the muscle-specific calpain isoform p94. Eur J Biochem 1999; 265: 839–846
  • Cottin P, Brustis J J, Poussard S, Elamrani N, Broncard S, Ducastaing A. Ca2+-dependent proteinases (calpains) and muscle cell differentiation. Biochim Biophys Acta 1994; 1223: 170–178
  • Delgado J, Saborido A, Moran M, Megias A. Chronic and acute exercise do not alter Ca2+ regulatory systems and ectonucleotidase activities in rat heart. J Appl Physiol 1999; 87: 152–160
  • Song K, Yu H, Sun Y. Guide to the Care and Use of Experimental Animals. Actom Press, Beijing 1993
  • Wang B, Li Y, Huang G, Zhang Y. Pathological Technology. People's Medical Publishing House, Beijing 2000
  • Liu X, Rainey J J, Harriman J F, Schnellmann R G. Calpains mediate acute renal cell death: role of autolysis and translocation. Am J Physiol Renal Physiol 2001; 281: F728–F738
  • Shephard R J. Tests of maximum oxygen intake: A critical review. Sports Med 1984; 2: 99–124
  • Armstrong R B, Ogilvie R W, Schwane J A. Eccentric exercise-induced injury to rat skeletal muscle. J Appl Physiol 1983; 54: 80–93
  • Warren G L, Hayes D A, Lowe D A, Prior B M, Armstrong R B. Materials fatigue initiates eccentric contraction induced injury in rat soleus muscle. J Physiol 1993; 464: 477–489
  • Gleeson M, Almey J, Brooks S, Cave R, Lewis A, Griffiths H. Haematological and acute-phase responses associated with delayed-onset muscle soreness in humans. Eur J Appl Physiol 1995; 71: 137–142
  • Furuno K, Goldberg A L. The activation of protein degradation in muscle by Ca2 + or muscle injury does not involve a lysosomal mechanism. Biochem J 1986; 237: 859–864
  • Goll D E, Thompson V F, Li H, Wei W, Cong J. The calpain system. Physiol Rev 2003; 83: 731–801
  • Ohno S, Minoshjma S, Kudoh J, Fukuyama R, Shimuzu Y, Ohmi-Imajoh S, et al. Four genes for the calpain family locate on four distinct human chromosomes. Cytogenet Cell Genet 1990; 33: 225–229
  • Nazarov I B, Baboshina O V, Rogozkin V A, Tsyplenkov P V. The effect of physical exertion on the activity of calpains and myeloperoxidase level in skeletal muscles of rats. Ukr Biokhim Zh 1990; 62: 101–105
  • Stupka N, Tarnopolsky M A, Yardley N J, Phillips S M. Cellular adaptation to repeated eccentric exercise-induced muscle damage. J Appl Physiol 2001; 91: 1669–1678
  • Kunimatsu M, Ma X J, Ozaki Y, Narita M, Mizokami M, Sasaki M. Neutrophil chemotactic N-acetyl peptides from the calpain small subunit are also chemotactic for immunocytes. Biochem Mol Biol Int 1995; 35: 247–254
  • Duan L, Li G, Li S. An experimental study of expression of desmin and vimentin in the pathological progress of exercise. Chin J Sports Med 2001; 20: 167–170
  • Wang K K, Yuen P W. Development and therapeutic potential of calpain inhibitors. Adv Pharmaco 1997; 37: 117–152
  • Kinbara K, Sorimachi H, Ishiura S, Suzuki K. Skeletal muscle-specific calpain, p94. Biochem Pharmacol 1998; 56: 415–420
  • Sorimachi H, Saido T C, Suzuki K. New era of calpain research. FEBS Lett 1994; 343: 1–5
  • Kinbara K, Sorimachi H, Ishiura S, Suzuki K. Muscle-specific calpain, p94, interacts with the extreme C-terminal region of connecting a unique region flanked by two immunoglobulin C2 motifs. Arch Biochem Biophys 1997; 342: 99–107
  • Sorimachi H, Kinbara K, Kimura S, Takahashi M, Ishiura S, Sasagawa N, et al. Muscle-specific calpain, p94, responsible for limb girdle muscular dystrophy type 2A, associates with connecting through IS2, a p94-specific sequence. J Biol Chem 1995; 270: 31158–31162
  • Teran-Garcia M, Rankinen T, Koza R A, Rao D C, Bouchard C. Endurance training-induced changes in insulin sensitivity and gene expression. Am J Physiol Endocrinol Metab 2005; 288: E1168–E1178
  • Guyon J R, Kudryashova E, Potts A, Dalkilic I, Brosius M A, Thompson T G, et al. Calpain 3 cleaves filamin C and regulates its ability to interact with gamma- and delta-sarcoglycans. Muscle Nerve 2003; 28: 472–483

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