生物
中枢神经系统
损失函数
人类遗传学
功能(生物学)
分子医学
多发性神经病
神经科学
医学
遗传学
病理
表型
基因
细胞周期
作者
Ashfaque Ahmed,Meng Wang,Gaber Bergant,Reza Maroofian,Rongjuan Zhao,Majid Alfadhel,Marwan Nashabat,Muhammad Talal Alrifai,Wafaa Eyaid,Abdulrahman Alswaid,Christian Beetz,Qin Yan,Tengfei Zhu,Qi Tian,Lu Xia,Huidan Wu,Lu Shen,Shanshan Dong,Xinyi Yang,Cenying Liu
出处
期刊:Human Genetics
[Springer Science+Business Media]
日期:2020-10-13
卷期号:140 (4): 579-592
被引量:26
标识
DOI:10.1007/s00439-020-02226-3
摘要
We aimed to detect the causative gene in five unrelated families with recessive inheritance pattern neurological disorders involving the central nervous system, and the potential function of the NEMF gene in the central nervous system. Exome sequencing (ES) was applied to all families and linkage analysis was performed on family 1. A minigene assay was used to validate the splicing effect of the relevant discovered variants. Immunofluorescence (IF) experiment was performed to investigate the role of the causative gene in neuron development. The large consanguineous family confirms the phenotype-causative relationship with homozygous frameshift variant (NM_004713.6:c.2618del) as revealed by ES. Linkage analysis of the family showed a significant single-point LOD of 4.5 locus. Through collaboration in GeneMatcher, four additional unrelated families' likely pathogenic NEMF variants for a spectrum of central neurological disorders, two homozygous splice-site variants (NM_004713.6:c.574+1G>T and NM_004713.6:c.807-2A>C) and a homozygous frameshift variant (NM_004713.6: c.1234_1235insC) were subsequently identified and segregated with all affected individuals. We further revealed that knockdown (KD) of Nemf leads to impairment of axonal outgrowth and synapse development in cultured mouse primary cortical neurons. Our study demonstrates that disease-causing biallelic NEMF variants result in central nervous system impairment and other variable features. NEMF is an important player in mammalian neuron development.
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