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类驱动蛋白运动蛋白KIF23维持发育中皮质的神经干细胞和祖细胞池。

Kinesin-like motor protein KIF23 maintains neural stem and progenitor cell pools in the developing cortex.

作者信息

Naher Sharmin, Iemura Kenji, Miyashita Satoshi, Hoshino Mikio, Tanaka Kozo, Niwa Shinsuke, Tsai Jin-Wu, Kikkawa Takako, Osumi Noriko

机构信息

Department of Developmental Neuroscience, Graduate School of Life Sciences, Tohoku University, 2-1-1 Katahira, Aoba-Ku, Sendai, Miyagi, 980-8577, Japan.

Department of Developmental Neuroscience, Tohoku University Graduate School of Medicine, 2-1, Seiryo-Machi, Aoba-ku, Sendai, Miyagi, 980-8575, Japan.

出版信息

EMBO J. 2025 Jan;44(2):331-355. doi: 10.1038/s44318-024-00327-7. Epub 2024 Dec 4.

Abstract

Accurate mitotic division of neural stem and progenitor cells (NSPCs) is crucial for the coordinated generation of progenitors and mature neurons, which determines cortical size and structure. While mutations in the kinesin-like motor protein KIF23 gene have been recently linked to microcephaly in humans, the underlying mechanisms remain elusive. Here, we explore the pivotal role of KIF23 in embryonic cortical development. We characterize the dynamic expression of KIF23 in the cortical NSPCs of mice, ferrets, and humans during embryonic neurogenesis. Knockdown of Kif23 in mice results in precocious neurogenesis and neuronal apoptosis, attributed to an accelerated cell cycle exit, likely resulting from disrupted mitotic spindle orientation and impaired cytokinesis. Additionally, KIF23 depletion perturbs the apical surface structure of NSPCs by affecting the localization of apical junction proteins. We further demonstrate that the phenotypes induced by Kif23 knockdown are rescued by introducing wild-type human KIF23, but not by a microcephaly-associated variant. Our findings unveil a previously unexplored role of KIF23 in neural stem and progenitor cell maintenance via regulating spindle orientation and apical structure in addition to cytokinesis, shedding light on microcephaly pathogenesis.

摘要

神经干细胞和祖细胞(NSPCs)的精确有丝分裂对于祖细胞和成熟神经元的协调生成至关重要,而这决定了皮质的大小和结构。虽然最近发现驱动蛋白样运动蛋白KIF23基因的突变与人类小头畸形有关,但其潜在机制仍不清楚。在此,我们探讨KIF23在胚胎皮质发育中的关键作用。我们表征了KIF23在小鼠、雪貂和人类胚胎神经发生过程中皮质NSPCs中的动态表达。在小鼠中敲低Kif23会导致过早的神经发生和神经元凋亡,这归因于细胞周期退出加速,可能是由于有丝分裂纺锤体方向紊乱和胞质分裂受损所致。此外,KIF23的缺失通过影响顶端连接蛋白的定位扰乱了NSPCs的顶端表面结构。我们进一步证明,通过引入野生型人类KIF23可以挽救Kif23敲低诱导的表型,但小头畸形相关变体则不能。我们的研究结果揭示了KIF23在神经干细胞和祖细胞维持中的一个以前未被探索的作用,即除了胞质分裂外,还通过调节纺锤体方向和顶端结构来发挥作用,这为小头畸形的发病机制提供了线索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/873a/11729872/0a7746d3822e/44318_2024_327_Fig1_HTML.jpg

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