Elevated Astrocytic NFAT5 of the hippocampus increases epilepsy susceptibility in hypoxic‐ischemic mice

海马结构 脑损伤 癫痫 星形胶质细胞 癫痫发生 神经保护 缺氧(环境) 纽恩 海马体 下调和上调 缺血 医学 内分泌学 生物 内科学 神经科学 中枢神经系统 化学 免疫组织化学 氧气 生物化学 有机化学 基因
作者
Xianglei Jia,Jian Xu,Yan Zhang,Shuo Kong,Xuelei Cheng,Na‐Qiong Wu,Song Han,Jun Yin,Wanhong Liu,Xiaohua He,Yuanteng Fan,Yumin Liu,Tao-Xiang Chen,Biwen Peng
出处
期刊:Epilepsia [Wiley]
标识
DOI:10.1111/epi.18235
摘要

Abstract Objective Hypoxic–ischemic brain damage (HIBD) is a leading cause of neonatal mortality, resulting in brain injury and persistent seizures that can last into the late neonatal period and beyond. Effective treatments and interventions for infants affected by hypoxia–ischemia remain lacking. Clinical investigations have indicated an elevation of nuclear factor of activated T cells 5 (NFAT5) in whole blood from umbilical cords of severely affected HIBD infants with epilepsy. Experimental research has demonstrated that NFAT5 has ambivalent effects on neuroprotection and neurologic damage. However, the mechanistic role of NFAT5 in HIBD remains unclear. This investigation aims to further clarify the role of NFAT5 in epilepsy following HIBD insult. Methods We created a neonatal HIBD mouse model through left common carotid artery occlusion. By specifically knocking down astrocytic NFAT5 and its downstream molecule, Nedd4‐2, using hippocampal delivery of adeno‐associated virus 5‐driven targeted shRNA, we investigated the role of astrocytic NFAT5 in epilepsy susceptibility in HIBD mice. This was assessed through electroencephalographic recordings, behavioral observations in vivo, and whole‐cell recordings of hippocampal neuronal activity. In vitro, we evaluated the effects of astrocytic NFAT5 alteration on Kir4.1 expression and I Kir4.1 in both brain slices from HIBD mice and cultured astrocytes treated with oxygen–glucose deprivation/reoxygenation. Results Hypoxia–ischemia‐induced upregulation of hippocampal NFAT5 occurs in astrocytes rather than in neurons. This upregulation leads to increased expression of the ubiquitin ligase Nedd4‐2, resulting in excessive degradation of Kir4.1 in astrocytes. Consequently, astrocytic function in buffering extracellular K + is impaired, causing depolarization of the resting potential and enhanced neuronal discharge. This disruption ultimately affects local neural network balance and increases susceptibility to epilepsy. In contrast, inhibiting or knocking down astrocytic NFAT5 almost completely reverses these effects. Significance Our findings suggest that manipulating the NFAT5–Nedd4‐2–Kir4.1 axis in astrocytes could provide a potential therapeutic strategy for the epileptic complications of HIBD.
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