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Satellite cell loss and impaired muscle regeneration in selenoprotein N deficiency.

机译:卫星蛋白损失和卫星蛋白N缺乏导致的肌肉再生受损。

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Selenoprotein N (SelN) deficiency causes a group of inherited neuromuscular disorders termed SEPN1-related myopathies (SEPN1-RM). Although the function of SelN remains unknown, recent data demonstrated that it is dispensable for mouse embryogenesis and suggested its involvement in the regulation of ryanodine receptors and/or cellular redox homeostasis. Here, we investigate the role of SelN in satellite cell (SC) function and muscle regeneration, using the Sepn1(-/-) mouse model. Following cardiotoxin-induced injury, SelN expression was strongly up-regulated in wild-type muscles and, for the first time, we detected its endogenous expression in a subset of mononucleated cells by immunohistochemistry. We show that SelN deficiency results in a reduced basal SC pool in adult skeletal muscles and in an imperfect muscle restoration following a single injury. A dramatic depletion of the SC pool was detected after the first round of degeneration and regeneration that totally prevented subsequent regeneration of Sepn1(-/-) muscles. We demonstrate that SelN deficiency affects SC dynamics on isolated single fibres and increases the proliferation of Sepn1(-/-) muscle precursors in vivo and in vitro. Most importantly, exhaustion of the SC population was specifically identified in muscle biopsies from patients with mutations in the SEPN1 gene. In conclusion, we describe for the first time a major physiological function of SelN in skeletal muscles, as a key regulator of SC function, which likely plays a central role in the pathophysiological mechanism leading to SEPN1-RM.
机译:硒蛋白N(SelN)缺乏会引起一组遗传性神经肌肉疾病,称为SEPN1相关性肌病(SEPN1-RM)。尽管SelN的功能仍是未知的,但最近的数据表明它对于小鼠胚胎发生是必不可少的,并暗示其参与了对ryanodine受体和/或细胞氧化还原稳态的调节。在这里,我们使用Sepn1(-/-)小鼠模型调查SelN在卫星细胞(SC)功能和肌肉再生中的作用。心脏毒素诱发的损伤后,SelN表达在野生型肌肉中强烈上调,并且首次通过免疫组织化学检测到其在单核细胞亚群中的内源性表达。我们显示,SelN缺乏会导致成年骨骼肌的基础SC池减少,并在单次损伤后导致肌肉恢复不完美。在第一轮变性和再生后,检测到SC池急剧消耗,这完全阻止了Sepn1(-/-)肌肉的后续再生。我们证明,SelN缺乏会影响孤立的单纤维上的SC动态,并增加Sepn1(-/-)肌肉前体的体内和体外增殖。最重要的是,在SEPN1基因突变的患者的肌肉活检中特别确定了SC种群的衰竭。总之,我们首次描述了SelN在骨骼肌中的主要生理功能,作为SC功能的关键调节因子,这很可能在导致SEPN1-RM的病理生理机制中起着核心作用。

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