Reciprocal amplification of ROS and Ca2+ signals in stressed mdx dystrophic skeletal muscle fibers

被引:0
作者
Vyacheslav M. Shkryl
Adriano S. Martins
Nina D. Ullrich
Martha C. Nowycky
Ernst Niggli
Natalia Shirokova
机构
[1] University of Medicine and Dentistry of New Jersey,Department of Pharmacology and Physiology
[2] University of Bern,Department of Physiology
[3] Rush University,Department of Molecular Biophysics and Physiology
来源
Pflügers Archiv - European Journal of Physiology | 2009年 / 458卷
关键词
Ca; sparks; Skeletal muscle; mice; ROS; Confocal microscopy;
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学科分类号
摘要
Muscular dystrophies are among the most severe inherited muscle diseases. The genetic defect is a mutation in the gene for dystrophin, a cytoskeletal protein which protects muscle cells from mechanical damage. Mechanical stress, applied as osmotic shock, elicits an abnormal surge of Ca2+ spark-like events in skeletal muscle fibers from dystrophin deficient (mdx) mice. Previous studies suggested a link between changes in the intracellular redox environment and appearance of Ca2+ sparks in normal mammalian skeletal muscle. Here, we tested whether the exaggerated Ca2+ responses in mdx fibers are related to oxidative stress. Localized intracellular and mitochondrial Ca2+ transients, as well as ROS production, were assessed with confocal microscopy. The rate of basal cellular but not mitochondrial ROS generation was significantly higher in mdx cells. This difference was abolished by pre-incubation of mdx fibers with an inhibitor of NAD(P)H oxidase. In addition, immunoblotting showed a significantly stronger expression of NAD(P)H oxidase in mdx muscle, suggesting a major contribution of this enzyme to oxidative stress in mdx fibers. Osmotic shock produced an abnormal and persistent Ca2+ spark activity, which was suppressed by ROS-reducing agents and by inhibitors of NAD(P)H oxidase. These Ca2+ signals resulted in mitochondrial Ca2+ accumulation in mdx fibers and an additional boost in cellular and mitochondrial ROS production. Taken together, our results indicate that the excessive ROS production and the simultaneous activation of abnormal Ca2+ signals amplify each other, finally culminating in a vicious cycle of damaging events, which may contribute to the abnormal stress sensitivity in dystrophic skeletal muscle.
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页码:915 / 928
页数:13
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共 279 条
[1]  
Abramov AY(2005)Expression and modulation of an NADPH oxidase in mammalian astrocytes J Neurosci 25 9176-9184
[2]  
Jacobson J(2005)Mechanisms of stretch-induced muscle damage in normal and dystrophic muscle: role of ionic changes J Physiol 567 723-735
[3]  
Wientjes F(2005)Effects of Antioxid Redox Signal 7 870-881
[4]  
Hothersall J(1992)-glutathionylation and Neuromuscul Disord 2 27-33
[5]  
Canevari L(2001)-nitrosylation on calmodulin binding to triads and FKBP12 binding to type 1 calcium release channels J Biol Chem 276 37594-37601
[6]  
Duchen MR(2007)Potential oxyradical damage and energy status in individual muscle fibres from degenerating muscle diseases Physiol Rev 87 245-313
[7]  
Allen DG(2009)A Ca Nat Med 15 325-330
[8]  
Whitehead NP(2004)-activated NADPH oxidase in testis, spleen, and lymph nodes Am J Physiol Cell Physiol 287 C817-C833
[9]  
Yeung EW(2002)The NOX family of ROS-generating NADPH oxidases: physiology and pathophysiology Am J Clin Nutr 75 749-753
[10]  
Aracena P(2006)Hypernitrosylated ryanodine receptor calcium release channels are leaky in dystrophic muscle Antioxid Redox Signal 8 691-728