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Rack1 通过防止神经干细胞中 p21 依赖性衰老对皮质发生至关重要。

Rack1 is essential for corticogenesis by preventing p21-dependent senescence in neural stem cells.

机构信息

Department of Neurobiology, Beijing Institute of Basic Medical Sciences, 100850 Beijing, China.

Department of Neurobiology, Beijing Institute of Basic Medical Sciences, 100850 Beijing, China; Institute of Neuroscience, Hengyang Medical College, University of South China, Hengyang 421001, Hunan Province, China.

出版信息

Cell Rep. 2021 Aug 31;36(9):109639. doi: 10.1016/j.celrep.2021.109639.

Abstract

Normal neurodevelopment relies on intricate signaling pathways that balance neural stem cell (NSC) self-renewal, maturation, and survival. Disruptions lead to neurodevelopmental disorders, including microcephaly. Here, we implicate the inhibition of NSC senescence as a mechanism underlying neurogenesis and corticogenesis. We report that the receptor for activated C kinase (Rack1), a family member of WD40-repeat (WDR) proteins, is highly enriched in NSCs. Deletion of Rack1 in developing cortical progenitors leads to a microcephaly phenotype. Strikingly, the absence of Rack1 decreases neurogenesis and promotes a cellular senescence phenotype in NSCs. Mechanistically, the senescence-related p21 signaling pathway is dramatically activated in Rack1 null NSCs, and removal of p21 significantly rescues the Rack1-knockout phenotype in vivo. Finally, Rack1 directly interacts with Smad3 to suppress the activation of transforming growth factor (TGF)-β/Smad signaling pathway, which plays a critical role in p21-mediated senescence. Our data implicate Rack1-driven inhibition of p21-induced NSC senescence as a critical mechanism behind normal cortical development.

摘要

正常的神经发育依赖于精细的信号通路,这些通路平衡神经干细胞(NSC)的自我更新、成熟和存活。这些通路的破坏会导致神经发育障碍,包括小头畸形。在这里,我们表明抑制 NSC 衰老可作为神经发生和皮质发生的一种机制。我们报告说,激活蛋白激酶 C(Rack1)的受体,一种 WD40 重复(WDR)蛋白家族的成员,在 NSCs 中高度富集。在发育中的皮质祖细胞中敲除 Rack1 会导致小头畸形表型。引人注目的是,Rack1 的缺失会减少神经发生,并促进 NSCs 中的细胞衰老表型。在机制上,Rack1 缺失的 NSCs 中衰老相关的 p21 信号通路被显著激活,并且去除 p21 可显著挽救体内的 Rack1 敲除表型。最后,Rack1 直接与 Smad3 相互作用,抑制转化生长因子(TGF)-β/Smad 信号通路的激活,该信号通路在 p21 介导的衰老中起着关键作用。我们的数据表明,Rack1 驱动的抑制 p21 诱导的 NSC 衰老,是正常皮质发育背后的关键机制。

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