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线粒体动态平衡通过调节代谢和自噬来维持肌肉干细胞的再生能力,贯穿成年生活。

Mitochondrial dynamics maintain muscle stem cell regenerative competence throughout adult life by regulating metabolism and mitophagy.

机构信息

Centro Nacional de Investigaciones Cardiovasculares (CNIC), 28029 Madrid, Spain.

Centro Nacional de Investigaciones Cardiovasculares (CNIC), 28029 Madrid, Spain; Department of Experimental and Health Sciences, Pompeu Fabra University (UPF), CIBERNED, 08003 Barcelona, Spain.

出版信息

Cell Stem Cell. 2022 Sep 1;29(9):1298-1314.e10. doi: 10.1016/j.stem.2022.07.009. Epub 2022 Aug 22.

Abstract

Skeletal muscle regeneration depends on the correct expansion of resident quiescent stem cells (satellite cells), a process that becomes less efficient with aging. Here, we show that mitochondrial dynamics are essential for the successful regenerative capacity of satellite cells. The loss of mitochondrial fission in satellite cells-due to aging or genetic impairment-deregulates the mitochondrial electron transport chain (ETC), leading to inefficient oxidative phosphorylation (OXPHOS) metabolism and mitophagy and increased oxidative stress. This state results in muscle regenerative failure, which is caused by the reduced proliferation and functional loss of satellite cells. Regenerative functions can be restored in fission-impaired or aged satellite cells by the re-establishment of mitochondrial dynamics (by activating fission or preventing fusion), OXPHOS, or mitophagy. Thus, mitochondrial shape and physical networking controls stem cell regenerative functions by regulating metabolism and proteostasis. As mitochondrial fission occurs less frequently in the satellite cells in older humans, our findings have implications for regeneration therapies in sarcopenia.

摘要

骨骼肌再生依赖于驻留静息干细胞(卫星细胞)的正确扩增,这一过程随着衰老而效率降低。在这里,我们表明线粒体动力学对于卫星细胞成功的再生能力至关重要。由于衰老或遗传损伤导致的卫星细胞中线粒体分裂的丧失,扰乱了线粒体电子传递链(ETC),导致氧化磷酸化(OXPHOS)代谢和自噬效率低下,以及氧化应激增加。这种状态导致肌肉再生失败,这是由于卫星细胞的增殖减少和功能丧失所致。通过重新建立线粒体动力学(通过激活分裂或防止融合)、OXPHOS 或自噬,可以恢复分裂受损或衰老的卫星细胞的再生功能。因此,线粒体形状和物理网络通过调节代谢和蛋白质稳态来控制干细胞的再生功能。由于老年人的卫星细胞中线粒体分裂发生的频率较低,我们的发现对于骨骼肌减少症的再生治疗具有重要意义。

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