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Increasing autophagy does not affect neurogenic muscle atrophy

机译:自噬增加不会影响神经源性肌肉萎缩

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Physiological autophagy plays a crucial role in the regulation of muscle mass and metabolism, while the excessive induction or the inhibition of the autophagic flux contributes to the progression of several diseases. Autophagy can be activated by different stimuli, including cancer, exercise, caloric restriction and denervation. The latter leads to muscle atrophy through the activation of catabolic pathways, i.e. the ubiquitin-proteasome system and autophagy. However, the kinetics of autophagy activation and the upstream molecular pathways in denervated skeletal muscle have not been reported yet. In this study, we characterized the kinetics of autophagic induction, quickly triggered by denervation, and report the Akt/mTOR axis activation. Besides, with the aim to assess the relative contribution of autophagy in neurogenic muscle atrophy, we triggered autophagy with different stimuli along with denervation, and observed that four week-long autophagic induction, by either intermitted fasting or rapamycin treatment, did not significantly affect muscle mass loss. We conclude that i) autophagy does not play a major role in inducing muscle loss following denervation; ii) nonetheless, autophagy may have a regulatory role in denervation induced muscle atrophy, since it is significantly upregulated as early as eight hours after denervation; iii) Akt/mTOR axis, AMPK and FoxO3a are activated consistently with the progression of muscle atrophy, further highlighting the complexity of the signaling response to the atrophying stimulus deriving from denervation.
机译:生理自噬在调节肌肉质量和新陈代谢中起着至关重要的作用,而自噬通量的过度诱导或抑制会导致多种疾病的进展。自噬可以被不同的刺激激活,包括癌症,运动,热量限制和神经支配。后者通过分解代谢途径(即遍在蛋白-蛋白酶体系统和自噬)的激活导致肌肉萎缩。但是,尚未报道失神经骨骼肌中自噬激活的动力学和上游分子途径。在这项研究中,我们表征了自噬诱导的动力学,由去神经支配迅速触发,并报告了Akt / mTOR轴激活。此外,为了评估自噬在神经源性肌肉萎缩中的相对贡献,我们通过神经支配触发了具有不同刺激的自噬,并观察到禁食或雷帕霉素间歇治疗四周的自噬诱导对肌肉无明显影响质量损失。我们得出以下结论:i)自噬在神经支配后引起的肌肉丢失中不发挥主要作用; ii)尽管如此,自噬可能在失神经引起的肌肉萎缩中起调节作用,因为它早在失神经后八小时就被显着上调; iii)随着肌肉萎缩的进展,Akt / mTOR轴,AMPK和FoxO3a始终被激活,这进一步凸显了对因去神经支配的萎缩刺激的信号响应的复杂性。

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