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Phosphorylation of ULK1 by AMPK is essential for mouse embryonic stem cell self-renewal and pluripotency

机译:AMPK使ULK1磷酸化对于小鼠胚胎干细胞的自我更新和多能性至关重要

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Autophagy is a catabolic process to degrade both damaged organelles and aggregated proteins in somatic cells. We have recently identified that autophagy is an executor for mitochondrial homeostasis in embryonic stem cell (ESC), and thus contribute to stemness regulation. However, the regulatory and functional mechanisms of autophagy in ESC are still largely unknown. Here we have shown that activation of ULK1 by AMPK is essential for ESC self-renewal and pluripotency. Dysfunction of Ulk1 decreases the autophagic flux in ESC, leading to compromised self-renewal and pluripotency. These defects can be rescued by reacquisition of wild-type ULK1 and ULK1(S757A) mutant, but not ULK1(S317A, S555A and S777A) and kinase dead ULK1(K46I) mutant. These data indicate that phosphorylation of ULK1 by AMPK, but not mTOR, is essential for stemness regulation in ESC. The findings highlight a critical role for AMPK-dependent phosphorylation of ULK1 pathway to maintain ESC self-renewal and pluripotency.
机译:自噬是分解体细胞中受损细胞器和聚集蛋白的分解代谢过程。我们最近发现自噬是胚胎干细胞(ESC)中线粒体稳态的执行者,因此有助于干度调节。然而,自噬在ESC中的调节和功能机制仍是未知之数。在这里我们已经表明,AMPK激活ULK1对于ESC自我更新和多能性至关重要。 Ulk1的功能障碍会降低ESC中的自噬通量,从而导致自我更新和多能性受损。这些缺陷可以通过重新获得野生型ULK1和ULK1(S757A)突变体来挽救,但不能获得ULK1(S317A,S555A和S777A)和激酶死亡的ULK1(K46I)突变体。这些数据表明,AMPK使ULK1磷酸化而不是mTOR磷酸化对于ESC的干性调节至关重要。这些发现突出了ULK1通路的AMPK依赖性磷酸化维持ESC自我更新和多能性的关键作用。

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