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高自噬通量通过 FOXO1 协调自噬机制基因程序来保护 ESC 身份。

High autophagic flux guards ESC identity through coordinating autophagy machinery gene program by FOXO1.

机构信息

State Key Laboratory of Stem Cell and Reproductive Biology, Institute of Zoology, Chinese Academy of Sciences, Beijing 100101, China.

Graduate University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Cell Death Differ. 2017 Oct;24(10):1672-1680. doi: 10.1038/cdd.2017.90. Epub 2017 Jun 16.

DOI:10.1038/cdd.2017.90
PMID:28622295
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5596427/
Abstract

Although much is known about transcriptional networks that control embryonic stem cell (ESC) self-renewal and differentiation, the metabolic regulation of ESC is less clear. Autophagy is a catabolic process that is activated under both stress and normal conditions to degrade damaged organelles and aggregated proteins, and thus plays pivotal roles in somatic and adult stem cell function. However, if and how ESCs harness autophagy to regulate stemness remains largely unknown. Recently, we have defined that autophagy is essential for mitochondrial homeostasis regulation in pluripotency acquirement and maintenance. Here we identified high autophagic flux as an essential mechanism to maintain ESC identity. We show that mouse ESCs exhibit a high autophagic flux that is maintained by coordinating expression of autophagy core molecular machinery genes through FOXO1, a forkhead family transcription factor. Tapering autophagic flux by manipulating either Atg3 or Foxo1 expression compromised ESC self-renewal, pluripotency, and differentiation that could be restored by gain of wild-type but not function-deficient Atg3 or Foxo1 mutants, respectively. Our results define a newly recognized role of autophagic flux in mouse ESC identity maintenance that links cellular catabolism to ESC fate regulation.

摘要

虽然人们对控制胚胎干细胞 (ESC) 自我更新和分化的转录网络了解很多,但 ESC 的代谢调控却知之甚少。自噬是一种分解代谢过程,在应激和正常条件下都会被激活,以降解受损的细胞器和聚集的蛋白质,因此在体干细胞和成人干细胞功能中发挥着关键作用。然而,胚胎干细胞是否以及如何利用自噬来调节干性仍然知之甚少。最近,我们已经确定自噬对于多能性获得和维持中的线粒体动态平衡调节是必不可少的。在这里,我们发现高自噬通量是维持 ESC 特性的一种必要机制。我们表明,鼠 ESC 表现出高自噬通量,这是通过 FOXO1(叉头框转录因子家族的一员)协调自噬核心分子机制基因的表达来维持的。通过操纵 Atg3 或 Foxo1 的表达来减缓自噬通量,会损害 ESC 的自我更新、多能性和分化,而通过获得野生型但不是功能缺失的 Atg3 或 Foxo1 突变体,可以分别恢复 ESC 的自我更新、多能性和分化。我们的研究结果定义了自噬通量在维持鼠 ESC 特性中的新作用,将细胞内分解代谢与 ESC 命运调节联系起来。

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本文引用的文献

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ATG3-dependent autophagy mediates mitochondrial homeostasis in pluripotency acquirement and maintenance.ATG3 依赖性自噬在多能性获得和维持过程中介导线粒体稳态。
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