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首页> 外文期刊>Journal of Muscle Research and Cell Motility >Intracellular localization and isoform expression of the voltage-dependent anion channel (VDAC) in normal and dystrophic skeletal muscle.
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Intracellular localization and isoform expression of the voltage-dependent anion channel (VDAC) in normal and dystrophic skeletal muscle.

机译:正常和营养不良性骨骼肌中电压依赖性阴离子通道(VDAC)的细胞内定位和同工型表达。

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摘要

Voltage-dependent anion channels (VDACs) are a family of pore-forming proteins encoded by different genes, with at least three protein products expressed in mammalian tissues. The major recognized functional role of VDACs is to permit the almost free permeability of the outer mitochondrial membrane (OMM). Although VDAC1 is the best known among VDAC isoforms, its exclusively mitochondrial location is still debated. Therefore, we have measured its co-localization with markers of cellular organelles or compartments in skeletal muscle fibers by single or double immunofluorescence and traditional as well as confocal microscopy. Our results show that VDAC1 immunoreactivity corresponds to mitochondria and sarcoplasmic reticulum, while sarcolemmal reactivity, previously reported, was not observed. Since VDAC1 has been suggested to be involved in the control of oxidative phosphorylation, we sought for possible gene regulation of VDAC1, VDAC2 and VDAC3 in skeletal muscle of the dystrophin-deficient mdx mouse, which suffers of an impaired control of energy metabolism. Our results show that, while VDAC1 mRNA and protein and VDAC2 mRNA are normally expressed. VDAC3 mRNA is markedly down-regulated in mdx mouse muscle at different ages (before, during and after the outburst of myofiber necrosis). This finding suggests a possible involvement of VDAC3 expression in the early pathogenic events of the mdx muscular dystrophy.
机译:电压依赖性阴离子通道(VDAC)是由不同基因编码的成孔蛋白家族,在哺乳动物组织中表达了至少三种蛋白产物。 VDAC的主要功能作用是允许线粒体外膜(OMM)几乎具有自由渗透性。尽管VDAC1是VDAC同工型中最著名的,但其唯一的线粒体位置仍在争论中。因此,我们通过单次或两次免疫荧光以及传统的和共聚焦显微镜测量了其与骨骼肌纤维中细胞器或细胞器标记的共定位。我们的结果表明,VDAC1免疫反应性对应于线粒体和肌质网,而先前未观察到肌膜反应性。由于已建议VDAC1参与氧化磷酸化的控制,我们寻求在肌营养不良蛋白缺陷型mdx小鼠骨骼肌中可能存在的VDAC1,VDAC2和VDAC3的基因调控,这会损害能量代谢的控制。我们的结果表明,虽然VDAC1 mRNA和蛋白质以及VDAC2 mRNA正常表达。在不同年龄(在肌纤维坏死爆发之前,期间和之后),mdx小鼠肌肉中的VDAC3 mRNA明显下调。该发现表明VDAC3表达可能参与mdx肌营养不良的早期致病事件。

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