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首页> 外文期刊>Antioxidants and redox signalling >The stress protein/chaperone Grp94 counteracts muscle disuse atrophy by stabilizing subsarcolemmal neuronal nitric oxide synthase
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The stress protein/chaperone Grp94 counteracts muscle disuse atrophy by stabilizing subsarcolemmal neuronal nitric oxide synthase

机译:应激蛋白/分子伴侣Grp94通过稳定肌膜下神经元一氧化氮合酶来抵消肌肉废用性萎缩

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Aims: Redox and growth-factor imbalance fosters muscle disuse atrophy. Since the endoplasmic-reticulum chaperone Grp94 is required for folding insulin-like growth factors (IGFs) and for antioxidant cytoprotection, we investigated its involvement in muscle mass loss due to inactivity. Results: Rat soleus muscles were transfected in vivo and analyzed after 7 days of hindlimb unloading, an experimental model of muscle disuse atrophy, or standard caging. Increased muscle protein carbonylation and decreased Grp94 protein levels (p<0.05) characterized atrophic unloaded solei. Recombinant Grp94 expression significantly reduced atrophy of transfected myofibers, compared with untransfected and empty-vector transfected ones (p<0.01), and decreased the percentage of carbonylated myofibers (p=0.001). Conversely, expression of two different N-terminal deleted Grp94 species did not attenuate myofiber atrophy. No change in myofiber trophism was detected in transfected ambulatory solei. The absence of effects on atrophic untransfected myofibers excluded a major role for IGFs folded by recombinant Grp94. Immunoprecipitation and confocal microscopy assays to investigate chaperone interaction with muscle atrophy regulators identified 160 kDa neuronal nitric oxide synthase (nNOS) as a new Grp94 partner. Unloading was demonstrated to untether nNOS from myofiber subsarcolemma; here, we show that such nNOS localization, revealed by means of NADPH-diaphorase histochemistry, appeared preserved in unloaded myofibers expressing recombinant Grp94, compared to those transfected with the empty vector or deleted Grp94 cDNA (p<0.02). Innovation: Grp94 interacts with nNOS and prevents its untethering from sarcolemma in unloaded myofibers. Conclusion: Maintenance of Grp94 expression is sufficient to counter unloading atrophy and oxidative stress by mechanistically stabilizing nNOS-multiprotein complex at the myofiber sarcolemma.
机译:目的:氧化还原和生长因子失衡促进肌肉废用性萎缩。由于内质网伴侣Grp94是折叠胰岛素样生长因子(IGFs)和抗氧化剂细胞保护所必需的,因此我们研究了其因无运动而参与肌肉质量损失的情况。结果:大鼠比目鱼肌在体内进行了转染,并在后肢卸载7天,肌肉废用性萎缩或标准笼养实验模型后进行了分析。肌肉蛋白羰基化的增加和Grp94蛋白水平的降低(p <0.05)表现为萎缩性肌腱萎缩。与未转染和空载体转染的相比,重组Grp94表达显着降低了转染的肌纤维的萎缩(p <0.01),并降低了羰基化肌纤维的百分比(p = 0.001)。相反,两个不同的N末端缺失的Grp94物种的表达不会减弱肌纤维萎缩。在转染的非固定肌中未检测到肌纤维营养的变化。对萎缩的未转染的肌纤维没有影响,排除了重组Grp94折叠的IGF的主要作用。免疫沉淀和共聚焦显微镜法研究了伴侣与肌肉萎缩调节剂的相互作用,确定了160 kDa神经元一氧化氮合酶(nNOS)作为新的Grp94伴侣。已证明卸载可解除肌纤维膜下皮膜炎中的nNOS。在这里,我们表明,与用空载体或缺失的Grp94 cDNA转染的那些相比,通过NADPH-心肌黄酶组织化学揭示的这种nNOS定位似乎保留在表达重组Grp94的未加载肌纤维中。创新:Grp94与nNOS相互作用,并防止其在卸载的肌纤维中脱离肌膜。结论:通过机械稳定肌纤维肉瘤处的nNOS-多蛋白复合物,维持Grp94的表达足以抵消卸载性萎缩和氧化应激。

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