Dysregulation of mTOR signalling is a converging mechanism in lissencephaly

无意识 PI3K/AKT/mTOR通路 细胞生物学 神经科学 遗传学 生物 信号转导 基因
作者
Ce Zhang,Dan Liang,A. Gulhan Ercan‐Sencicek,A Bulut,Jason Cortés,Iris Q. Cheng,Octavian Henegariu,S. Nishimura,Xinyuan Wang,Ayse Buket Peksen,Yutaka Takeo,Caner Çağlar,TuKiet T. Lam,Merve Nur Köroğlu,Anand Narayanan,Francesc López‐Giráldez,Danielle Miyagishima,Ketu Mishra-Gorur,Tanyeri Barak,Katsuhito Yasuno
出处
期刊:Nature [Nature Portfolio]
标识
DOI:10.1038/s41586-024-08341-9
摘要

Cerebral cortex development in humans is a highly complex and orchestrated process that is under tight genetic regulation. Rare mutations that alter gene expression or function can disrupt the structure of the cerebral cortex, resulting in a range of neurological conditions1. Lissencephaly ('smooth brain') spectrum disorders comprise a group of rare, genetically heterogeneous congenital brain malformations commonly associated with epilepsy and intellectual disability2. However, the molecular mechanisms underlying disease pathogenesis remain unknown. Here we establish hypoactivity of the mTOR pathway as a clinically relevant molecular mechanism in lissencephaly spectrum disorders. We characterized two types of cerebral organoid derived from individuals with genetically distinct lissencephalies with a recessive mutation in p53-induced death domain protein 1 (PIDD1) or a heterozygous chromosome 17p13.3 microdeletion leading to Miller–Dieker lissencephaly syndrome (MDLS). PIDD1-mutant organoids and MDLS organoids recapitulated the thickened cortex typical of human lissencephaly and demonstrated dysregulation of protein translation, metabolism and the mTOR pathway. A brain-selective activator of mTOR complex 1 prevented and reversed cellular and molecular defects in the lissencephaly organoids. Our findings show that a converging molecular mechanism contributes to two genetically distinct lissencephaly spectrum disorders. Cellular, transcriptomic and proteomic analyses of organoids derived from human induced pluripotent stem cells show that mTOR pathway hypoactivation is involved in two genetically distinct lissencephaly spectrum disorders.
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