髓鞘
信使核糖核酸
肌萎缩侧索硬化
细胞生物学
额颞叶变性
海马体
化学
生物
神经科学
免疫组织化学
分子生物学
髓鞘碱性蛋白
转录组
细胞质
基因剔除小鼠
中枢神经系统
转基因小鼠
下调和上调
神经营养素
基因表达
少突胶质细胞
神经系统
电生理学
髓鞘相关糖蛋白
作者
Jiayi Li,Yohei Iguchi,Kenji Yoshida,Daisuke Kato,Kunihiko Araki,Kenta Kobayashi,S. Yokoi,Rei Yoshimoto,Madoka Iida,Yoshinobu Amakusa,Yu Kawakami,Takashi Yoshimura,Ryo Chikuchi,Koyo Tsujikawa,Yuichi Riku,Yasushi Iwasaki,Yohei Okada,Nobuhiko Ohno,Hiroaki Wake,Masahisa Katsuno
标识
DOI:10.1073/pnas.2513642123
摘要
Amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration (FTLD) develop as spatial pathologies in which neurons and glial cells are interconnected. TAR DNA-binding protein 43 (TDP-43) is a major pathological protein that is inextricably associated with ALS and FTLD. In this study, we investigated the roles of neuronal TDP-43 in neuron–oligodendrocyte interactions using neuron-specific TDP-43 knockout (TDP-43cKO) mice. TDP-43 depletion in neurons induced hypomyelination, which was confirmed by immunohistochemistry and ultrastructural analysis. In addition, conduction disturbance was revealed by electrophysiological analysis. The hypomyelination of TDP-43cKO mouse was restored by cytoplasmic TDP-43 supplementation in neurons. Neuron-specific transcriptome analysis revealed that neurexin 1 (NRXN1) is the regulatory target of TDP-43, which promotes myelin formation. The hypomyelination of TDP-43cKO mice was also restored by NRXN1b supplementation in neurons. We further confirmed that TDP-43 stabilizes Nrxn1 mRNA by binding to the Nrxn1 3’untranslated region (3’UTR). Although TDP-43cKO exhibited impaired recognition memory, the supplementation of NRXN1 in the hippocampus recovered the memory disturbances. In conclusion, this study demonstrates the neuron–oligodendrocyte interaction mediated by neuronal TDP-43 via NRXN1 mRNA stabilization. These findings shed light on neuron–oligodendrocyte interaction in the disease mechanisms of ALS/FTLD.
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