The interaction of endorepellin and neurexin triggers neuroepithelial autophagy and maintains neural tube development

神经上皮细胞 神经管 自噬 神经鞘素 佩莱肯 神经发育 硫酸乙酰肝素 胚胎干细胞 血管生成 细胞生物学 生物 遗传学 基因 细胞外基质 蛋白多糖 神经干细胞 胚胎 突触后电位 细胞凋亡 细胞 干细胞 受体
作者
Lei Lu,Meizhu Bai,Yufang Zheng,Xiukun Wang,Zhongzhong Chen,Rui Peng,Richard H. Finnell,Tong‐Jin Zhao,Chengtao Li,Bo Wu,Yunping Lei,Jinsong Li,Hongyan Wang
出处
期刊:Science Bulletin [Elsevier]
卷期号:69 (14): 2260-2272 被引量:3
标识
DOI:10.1016/j.scib.2024.03.026
摘要

Heparan sulfate proteoglycan 2 (HSPG2) gene encodes the matrix protein Perlecan, and genetic inactivation of this gene creates mice that are embryonic lethal with severe neural tube defects (NTDs). We discovered rare genetic variants of HSPG2 in 10% cases compared to only 4% in controls among a cohort of 369 NTDs. Endorepellin, a peptide cleaved from the domain V of Perlecan, is known to promote angiogenesis and autophagy in endothelial cells. The roles of enderepellin in neurodevelopment remain unclear so far. Our study revealed that endorepellin can migrate to the neuroepithelial cells and then be recognized and bind with the neuroepithelia receptor neurexin in vivo. Through the endocytic pathway, the interaction of endorepellin and neurexin physiologically triggers autophagy and appropriately modulates the differentiation of neural stem cells into neurons as a blocker, which is necessary for normal neural tube closure. We created knock-in (KI) mouse models with human-derived HSPG2 variants, using sperm-like stem cells that had been genetically edited by CRISPR/Cas9. We realized that any HSPG2 variants that affected the function of endorepellin were considered pathogenic causal variants for human NTDs given that the severe NTD phenotypes exhibited by these KI embryos occurred in a significantly higher response frequency compared to wildtype embryos. Our study provides a paradigm for effectively confirming pathogenic mutations in other genetic diseases. Furthermore, we demonstrated that using autophagy inhibitors at a cellular level can repress neuronal differentiation. Therefore, autophagy agonists may prevent NTDs resulting from failed autophagy maintenance and neuronal over-differentiation caused by deleterious endorepellin variants.
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