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皮质类器官通过调控CHCHD2揭示了METTL5在神经发育中的人类特异性作用。

Cortical organoids reveal human-specific roles of METTL5 in neurodevelopment via regulation of CHCHD2.

作者信息

Turkalj Elena M, Kuljanishvili Mariami, Kang Gugene, Liu Isabelle, Ghent Chloe, Waltier Soriano Carlo, Keyhanvar Neda, Brody Daniel, Oldham Michael, Vissers Caroline

出版信息

bioRxiv. 2025 Jul 13:2025.07.13.664555. doi: 10.1101/2025.07.13.664555.

DOI:10.1101/2025.07.13.664555
PMID:40672170
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12265671/
Abstract

METTL5 is a conserved methyltransferase responsible for catalyzing N6-methyladenosine (m A) modification on 18S ribosomal RNA. Human patients with mutations in show severe microcephaly and intellectual disability, which has not been fully recapitulated in animal models. Given its emerging role in neurodevelopment, we sought to investigate METTL5 function in a human-specific context using cortical forebrain organoids derived from human induced pluripotent stem cells. We generated knockout organoids and observed a marked delay in neural stem cell proliferation and the timing of neuronal differentiation, suggesting a critical role for METTL5 in the temporal regulation of neurogenesis. Though METTL5 methylates rRNA near the decoding center, the mechanism of this methylation remains highly contested. In our cortical organoids, broad translational changes mirror stress response rather than transcript-specific regulation of translation. Transcriptomic analysis further revealed a significant downregulation of , a nuclear-encoded mitochondrial gene linked to cellular energy metabolism and neurodevelopmental processes. Overexpression of CHCHD2 rescued proliferation defects of -KO neural progenitor cells, suggesting dysregulation of CHCHD2 is heavily involved in the phenotypes of mutant patient brains. These findings highlight a previously uncharacterized link between METTL5, ribosomal RNA modification, and cellular metabolism essential for proper human brain development.

摘要

METTL5是一种保守的甲基转移酶,负责催化18S核糖体RNA上的N6-甲基腺苷(m6A)修饰。患有METTL5突变的人类患者表现出严重的小头畸形和智力残疾,这在动物模型中尚未完全重现。鉴于其在神经发育中日益凸显的作用,我们试图利用源自人类诱导多能干细胞的皮质前脑类器官,在人类特有的背景下研究METTL5的功能。我们构建了METTL5基因敲除类器官,并观察到神经干细胞增殖和神经元分化时间出现明显延迟,这表明METTL5在神经发生的时间调控中起关键作用。尽管METTL5使解码中心附近的rRNA甲基化,但其甲基化机制仍备受争议。在我们的皮质类器官中,广泛的翻译变化反映的是应激反应,而非转录本特异性的翻译调控。转录组分析进一步揭示,CHCHD2(一种与细胞能量代谢和神经发育过程相关的核编码线粒体基因)显著下调。CHCHD2的过表达挽救了METTL5基因敲除神经祖细胞的增殖缺陷,这表明CHCHD2的失调在METTL5突变患者大脑的表型中起重要作用。这些发现凸显了METTL5、核糖体RNA修饰与人类大脑正常发育所必需的细胞代谢之间此前未被认识的联系。