具有拷贝数变异的自闭症ESC模型揭示了细胞类型特异性的翻译脆弱性。

IF 11.1 Q1 CELL BIOLOGY
Jun Nomura, Amila Zuko, Keiko Kishimoto, Hiroaki Mutsumine, Hiroko Maegawa, Kazumi Fukatsu, Yoshiko Nomura, Xiaoxi Liu, Nobuhiro Nakai, Eiki Takahashi, Tsukasa Kouno, Jay W Shin, Toru Takumi
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引用次数: 0

摘要

人类遗传学已经确定了许多与自闭症谱系障碍(asd)相关的拷贝数变异(CNVs)。然而,缺乏标准化的生物学资源阻碍了对ASD细胞类型特异性共同特征的理解。在此,我们建立了包括63个转基因小鼠胚胎干细胞(ESC)系在内的生物资源作为ASD的遗传模型。我们使用12个具有代表性的细胞系进行神经分化,并对其进行综合分析,包括单细胞RNA测序,揭示了细胞类型特异性易感通路。此外,我们发现谷氨酸能和gaba能神经元的一个共同表型是Upf3b的表达减少,Upf3b是翻译终止和无义介导的衰变(NMD)的核心成员。这一发现强调了发育中的神经元中翻译机制的功能障碍可能是ASD早期干预的一个可能目标。这个ESC模型库成为体外和体内研究ASD或其他神经精神疾病的宝贵资源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ESC models of autism with copy-number variations reveal cell-type-specific translational vulnerability.

Human genetics has identified numerous copy-number variations (CNVs) associated with autism spectrum disorders (ASDs). However, the lack of standardized biological resources impedes understanding of the cell-type-specific common features of ASD. Here, we establish a biological resource including 63 genetically modified mouse embryonic stem cell (ESC) lines as genetic models of ASD. We perform neural differentiation using 12 representative cell lines, and their comprehensive analyses, including single-cell RNA sequencing, uncover cell-type-specific susceptible pathways. Moreover, we find that a common phenotype in glutamatergic and GABAergic neurons is reduced expression of Upf3b, a core member of the translational termination and nonsense-mediated decay (NMD). This finding emphasizes that the dysfunction of translational machinery in the developing neurons can be a possible target of early intervention for ASD. This ESC model bank becomes an invaluable resource for studies in vitro and in vivo of ASD or other neuropsychiatric disorders.

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