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The fine tuning of metabolism, autophagy and differentiation during in vitro myogenesis

机译:体外成肌过程中代谢,自噬和分化的微调

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Although the mechanisms controlling skeletal muscle homeostasis have been identified, there is a lack of knowledge of the integrated dynamic processes occurring during myogenesis and their regulation. Here, metabolism, autophagy and differentiation were concomitantly analyzed in mouse muscle satellite cell (MSC)-derived myoblasts and their cross-talk addressed by drug and genetic manipulation. We show that increased mitochondrial biogenesis and activation of mammalian target of rapamycin complex 1 inactivation-independent basal autophagy characterize the conversion of myoblasts into myotubes. Notably, inhibition of autophagic flux halts cell fusion in the latest stages of differentiation and, conversely, when the fusion step of myocytes is impaired the biogenesis of autophagosomes is also impaired. By using myoblasts derived from p53 null mice, we show that in the absence of p53 glycolysis prevails and mitochondrial biogenesis is strongly impaired. P53 null myoblasts show defective terminal differentiation and attenuated basal autophagy when switched into differentiating culture conditions. In conclusion, we demonstrate that basal autophagy contributes to a correct execution of myogenesis and that physiological p53 activity is required for muscle homeostasis by regulating metabolism and by affecting autophagy and differentiation.
机译:尽管已经确定了控制骨骼肌动态平衡的机制,但对在肌发生及其调节过程中发生的整合动态过程缺乏了解。在这里,代谢,自噬和分化同时在小鼠肌肉卫星细胞(MSC)衍生的成肌细胞中进行了分析,并通过药物和基因操作解决了它们的串扰。我们显示增加线粒体的生物发生和雷帕霉素复合物1哺乳动物目标的失活独立的基础自噬的活化表征成肌细胞到成肌细胞的转化。值得注意的是,自噬通量的抑制在分化的最新阶段中止了细胞融合,相反,当心肌细胞的融合步骤受损时,自噬体的生物发生也受到了损害。通过使用衍生自p53无效小鼠的成肌细胞,我们显示在不存在p53的情况下,糖酵解盛行,线粒体的生物发生受到严重损害。 P53无效的成肌细胞显示出有缺陷的终末分化,并且当切换到不同的培养条件时,基础自噬减弱。总之,我们证明了基础自噬有助于正确执行肌发生,并且通过调节新陈代谢并影响自噬和分化,肌肉稳态需要生理性p53活性。

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