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Down‐regulation of the mitochondrial i‐AAA protease Yme1L induces muscle atrophy via FoxO3a and myostatin activation

机译:线粒体i-AAA蛋白酶Yme1L的下调通过FoxO3a和肌生长抑制素激活诱导肌肉萎缩

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摘要

Muscle atrophy is closely associated with many diseases, including diabetes and cardiac failure. Growing evidence has shown that mitochondrial dysfunction is related to muscle atrophy; however, the underlying mechanisms are still unclear. To elucidate how mitochondrial dysfunction causes muscle atrophy, we used hindlimb‐immobilized mice. Mitochondrial function is optimized by balancing mitochondrial dynamics, and we observed that this balance shifted towards mitochondrial fission and that MuRF1 and atrogin‐1 expression levels were elevated in these mice. We also found that the expression of yeast mitochondrial escape 1‐like ATPase (Yme1L), a mitochondrial AAA protease was significantly reduced both in hindlimb‐immobilized mice and carbonyl cyanide m‐chlorophenylhydrazone (CCCP)‐treated C2C12 myotubes. When Yme1L was depleted in myotubes, the short form of optic atrophy 1 (Opa1) accumulated, leading to mitochondrial fragmentation. Moreover, a loss of Yme1L, but not of LonP1, activated AMPK and FoxO3a and concomitantly increased MuRF1 in C2C12 myotubes. Intriguingly, the expression of myostatin, a myokine responsible for muscle protein degradation, was significantly increased by the transient knock‐down of Yme1L. Taken together, our results suggest that a deficiency in Yme1L and the consequential imbalance in mitochondrial dynamics result in the activation of FoxO3a and myostatin, which contribute to the pathological state of muscle atrophy.
机译:肌肉萎缩与许多疾病密切相关,包括糖尿病和心力衰竭。越来越多的证据表明,线粒体功能障碍与肌肉萎缩有关。但是,其潜在机制仍不清楚。为了阐明线粒体功能障碍如何导致肌肉萎缩,我们使用了固定后肢的小鼠。通过平衡线粒体动力学来优化线粒体功能,我们观察到这种平衡向线粒体裂变转移,并且在这些小鼠中MuRF1和atrogin-1表达水平升高。我们还发现,在固定后肢的小鼠和经羰基氰化物间氯苯hydr(CCCP)处理的C2C12肌管中,酵母线粒体逃逸1样ATPase(Yme1L),线粒体AAA蛋白酶的表达均显着降低。当Yme1L在肌管中耗尽时,视神经萎缩1(Opa1)的短形式积累,导致线粒体破碎。此外,Yme1L而不是LonP1的缺失激活了AMPK和FoxO3a,并随之增加了C2C12肌管中的MuRF1。有趣的是,Yme1L的瞬时敲低显着增加了肌生长抑制素(一种引起肌肉蛋白降解的肌动蛋白)的表达。两者合计,我们的结果表明,Yme1L的缺乏和线粒体动力学的相应失衡会导致FoxO3a和肌生长抑制素的激活,这有助于肌肉萎缩的病理状态。

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