泛素连接酶
齿状回
泛素
细胞生物学
神经科学
内吞作用
化学
信号转导衔接蛋白
钠通道
海马结构
生物
信号转导
生物化学
受体
钠
基因
有机化学
作者
Yifan Wang,Hui Yang,Na Li,Lili Wang,Chang Guo,Weining Ma,Lei Zhu,Chao Peng,Jiexin Chen,Huifang Song,Hedan Chen,Xinyue Ma,Jingyun Yi,Jingjing Lian,Weikaixin Kong,Jie Dong,Xinyu Tu,Mala M. Shah,Xin Tian,Zhuo Huang
标识
DOI:10.1002/advs.202400560
摘要
Abstract Intrinsic plasticity, a fundamental process enabling neurons to modify their intrinsic properties, plays a crucial role in shaping neuronal input‐output function and is implicated in various neurological and psychiatric disorders. Despite its importance, the underlying molecular mechanisms of intrinsic plasticity remain poorly understood. In this study, a new ubiquitin ligase adaptor, protein tyrosine phosphatase receptor type N (PTPRN), is identified as a regulator of intrinsic neuronal excitability in the context of temporal lobe epilepsy. PTPRN recruits the NEDD4 Like E3 Ubiquitin Protein Ligase (NEDD4L) to Na V 1.2 sodium channels, facilitating NEDD4L‐mediated ubiquitination, and endocytosis of Na V 1.2. Knockout of PTPRN in hippocampal granule cells leads to augmented Na V 1.2‐mediated sodium currents and higher intrinsic excitability, resulting in increased seizure susceptibility in transgenic mice. Conversely, adeno‐associated virus‐mediated delivery of PTPRN in the dentate gyrus region decreases intrinsic excitability and reduces seizure susceptibility. Moreover, the present findings indicate that PTPRN exerts a selective modulation effect on voltage‐gated sodium channels. Collectively, PTPRN plays a significant role in regulating intrinsic excitability and seizure susceptibility, suggesting a potential strategy for precise modulation of Na V 1.2 channels' function.
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