Differential susceptibility of human skeletal muscle proteins to free radical induced oxidative damage: A histochemical, immunocytochemical and electron microscopical study in vitro

被引:66
作者
Haycock, JW
Jones, P
Harris, JB
Mantle, D
机构
[1] NEWCASTLE GEN HOSP,REG NEUROSCI CTR,DEPT NEUROCHEM,NEWCASTLE TYNE NE4 6BE,TYNE & WEAR,ENGLAND
[2] NEWCASTLE GEN HOSP,REG NEUROSCI CTR,MUSCULAR DYSTROPHY GRP,RES LABS,NEWCASTLE TYNE NE4 6BE,TYNE & WEAR,ENGLAND
[3] UNIV NEWCASTLE UPON TYNE,SCH CHEM,NEWCASTLE TYNE NE1 7RU,TYNE & WEAR,ENGLAND
关键词
oxygen free radicals; proteins; skeletal muscle; mitochondria;
D O I
10.1007/s004010050527
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
In this study we describe a novel experimental approach to quantify the relative susceptibility of (membrane-associated, contractile and mitochondrial) proteins in normal human muscle tissue sections to oxidative damage by the reactive oxygen species (ROS), hydroxyl (OH .) or superoxide (O-2 .(-)) radicals. The latter species were generated under controlled experimental conditions in vitro using a Co-6O gamma radiation source, with subsequent analysis of damage to target proteins (dystrophin, beta-dystroglycan, beta-spectrin, fast and slow myosin heavy chain, NADH tetrazolium reductase, succinate dehydrogenase and cytochrome oxidase) via standard histochemistry, immunocytochemistry and electron microscopy of muscle tissue sections. In general terms, each of the proteins listed above was more susceptible to oxidative damage by OH . compared to O-2 .(-). Different proteins (differing in structure, function or intracellular localisation) showed different susceptibility to oxidative damage, with certain mitochondrial proteins (succinate dehydrogenase, cytochrome oxidase) showing particular susceptibility. In addition, the use of monoclonal antibodies to four different regions of dystrophin showed the latter to contain both resistant and susceptible regions to ROS induced oxidative damage. At the ultrastructural level of subcellular organelle damage, mitochondria were identified as being particularly susceptible to ROS induced oxidative damage. We therefore speculate that oxidative damage to mitochondria and/or mitochondrial proteins may represent the principal initial route of free radical-induced damage within skeletal muscle tissue.
引用
收藏
页码:331 / 340
页数:10
相关论文
共 47 条
  • [1] SIMPLIFIED CONTROL EXPERIMENTS IN HISTOCHEMICAL STUDY OF COENZYME-LINKED DEHYDROGENASES
    ANDERSEN, H
    HOYER, PE
    [J]. HISTOCHEMISTRY, 1974, 38 (01) : 71 - 83
  • [2] AUSTIN L, 1990, PATHOGENESIS AND THERAPY OF DUCHENNE AND BECKER MUSCULAR DYSTROPHY, P69
  • [3] THE PATHOLOGICAL DAMAGE IN DUCHENNE MUSCULAR-DYSTROPHY MAY BE DUE TO INCREASED INTRACELLULAR OXY-RADICAL GENERATION CAUSED BY THE ABSENCE OF DYSTROPHIN AND SUBSEQUENT ALTERATIONS IN CA-2+ METABOLISM
    BAKER, MS
    AUSTIN, L
    [J]. MEDICAL HYPOTHESES, 1989, 29 (03) : 187 - 193
  • [4] DIFFERENT DISTRIBUTIONS OF DYSTROPHIN AND RELATED PROTEINS AT NERVE MUSCLE JUNCTIONS
    BEWICK, GS
    NICHOLSON, LVB
    YOUNG, C
    ODONNELL, E
    SLATER, CR
    [J]. NEUROREPORT, 1992, 3 (10) : 857 - 860
  • [5] DUCHENNE MUSCULAR-DYSTROPHY - DEFICIENCY OF DYSTROPHIN AT THE MUSCLE-CELL SURFACE
    BONILLA, E
    SAMITT, CE
    MIRANDA, AF
    HAYS, AP
    SALVIATI, G
    DIMAURO, S
    KUNKEL, LM
    HOFFMAN, EP
    ROWLAND, LP
    [J]. CELL, 1988, 54 (04) : 447 - 452
  • [6] Bradley R., 1980, DISORDERS VOLUNTARY, P824
  • [7] THE PECKING ORDER OF FREE-RADICALS AND ANTIOXIDANTS - LIPID-PEROXIDATION, ALPHA-TOCOPHEROL, AND ASCORBATE
    BUETTNER, GR
    [J]. ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1993, 300 (02) : 535 - 543
  • [8] HYDROPEROXIDE METABOLISM IN MAMMALIAN ORGANS
    CHANCE, B
    SIES, H
    BOVERIS, A
    [J]. PHYSIOLOGICAL REVIEWS, 1979, 59 (03) : 527 - 605
  • [9] AN INTRODUCTION TO FREE-RADICAL BIOCHEMISTRY
    CHEESEMAN, KH
    SLATER, TF
    [J]. BRITISH MEDICAL BULLETIN, 1993, 49 (03) : 481 - 493
  • [10] MORPHOLOGICAL-CHANGES IN DYSTROPHIC MUSCLE
    CULLEN, MJ
    MASTAGLIA, FL
    [J]. BRITISH MEDICAL BULLETIN, 1980, 36 (02) : 145 - &