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首页> 外文期刊>Human Molecular Genetics >Gamma-sarcoglycan is required for the response of archvillin to mechanical stimulation in skeletal muscle
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Gamma-sarcoglycan is required for the response of archvillin to mechanical stimulation in skeletal muscle

机译:γ-糖蛋白是阿奇维林对骨骼肌机械刺激反应的必需物质

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摘要

Loss of gamma-sarcoglycan (gamma-SG) induces muscle degeneration and signaling defects in response to mechanical load, and its absence is common to both Duchenne and limb girdle muscular dystrophies. Growing evidence suggests that aberrant signaling contributes to the disease pathology; however, the mechanisms of gamma-SG-mediated mechanical signaling are poorly understood. To uncover gamma-SG signaling pathway components, we performed yeast two-hybrid screens and identified the muscle-specific protein archvillin as a gamma-SG and dystrophin interacting protein. Archvillin protein and message levels were significantly upregulated at the sarcolemma of murine gamma-SG-null (gsg(-/-)) muscle but delocalized in dystrophin-deficient mdx muscle. Similar elevation of archvillin protein was observed in human quadriceps muscle lacking gamma-SG. Reintroduction of gamma-SG in gsg(-/-) muscle by rAAV injection restored archvillin levels to that of control C57 muscle. In situ eccentric contraction of tibialis anterior (TA) muscles from C57 mice caused ERK1/2 phosphorylation, nuclear activation of P-ERK1/2 and stimulus-dependent archvillin association with P-ERK1/2. In contrast, TA muscles from gsg(-/-) and mdx mice exhibited heightened P-ERK1/2 and increased nuclear P-ERK1/2 localization following eccentric contractions, but the archvillin-P-ERK1/2 association was completely ablated. These results position archvillin as a mechanically sensitive component of the dystrophin complex and demonstrate that signaling defects caused by loss of gamma-SG occur both at the sarcolemma and in the nucleus.
机译:γ-肌糖聚糖(gamma-SG)的丢失会引起肌肉变性并响应机械负荷而发出信号缺陷,而这种缺失在杜兴氏和四肢腰肌营养不良中很常见。越来越多的证据表明异常的信号转导有助于疾病的病理学。然而,对γ-SG介导的机械信号转导的机制了解甚少。为了发现γ-SG信号通路的组成部分,我们进行了酵母双杂交筛选,并将肌肉特异性蛋白质阿奇维林鉴定为γ-SG和肌营养不良蛋白相互作用蛋白。在鼠γ-SG-null(gsg(-/-))肌肉的肌膜处,Archvillin蛋白和信息水平显着上调,但在肌营养不良蛋白缺陷的mdx肌肉中离域化。在缺乏γ-SG的人股四头肌中观察到类似的阿奇维林蛋白升高。通过rAAV注射在gsg(-/-)肌肉中重新引入gamma-SG,将阿奇维林水平恢复为对照C57肌肉水平。来自C57小鼠的胫前肌(TA)肌肉的原位偏心收缩引起ERK1 / 2磷酸化,P-ERK1 / 2的核活化以及与P-ERK1 / 2刺激相关的阿奇维林。相比之下,gsg(-/-)和mdx小鼠的TA肌肉在偏心收缩后表现出P-ERK1 / 2升高和核P-ERK1 / 2局部增加的现象,但archvillin-P-ERK1 / 2的结合被完全消除。这些结果将阿奇维林定位为肌营养不良蛋白复合物的机械敏感成分,并证明由γ-SG缺失引起的信号缺陷在肌膜和细胞核中均发生。

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