Silencing of miR ‐132‐3p protects against neuronal injury following status epilepticus by inhibiting IL ‐1β‐induced reactive astrocyte ( A1 ) polarization

星形胶质细胞 癫痫持续状态 癫痫 神经炎症 下调和上调 神经科学 癫痫发生 生物 细胞生物学 化学 中枢神经系统 免疫学 炎症 生物化学 基因
作者
Wen Zhang,Fanghua Ye,Juan Xiong,Fang He,Yang Li,Fei Yin,Jing Peng,Xiaole Wang
出处
期刊:The FASEB Journal [Wiley]
卷期号:36 (10) 被引量:5
标识
DOI:10.1096/fj.202200110rr
摘要

Mesial temporal lobe epilepsy (MTLE) is one of the most common refractory epilepsies and is usually accompanied by a range of brain pathological changes, such as neuronal injury and astrocytosis. Naïve astrocytes are readily converted to cytotoxic reactive astrocytes (A1) in response to inflammatory stimulation, suppressing the polarization of A1 protects against neuronal death in early central nervous system injury. Our previous study found that pro-inflammatory cytokines and miR-132-3p (hereinafter referred to as "miR-132") expression were upregulated, but how miR-132 affected reactive astrocyte polarization and neuronal damage during epilepsy is not fully understood. Here, we aimed to explore the effect and mechanism of miR-132 on A1 polarization. Our results confirmed that A1 markers were significantly elevated in the hippocampus of MTLE rats and IL-1β-treated primary astrocytes. In vivo, knockdown of miR-132 by lateral ventricular injection reduced A1 astrocytes, neuronal loss, mossy fiber sprouting, and remitted the severity of status epilepticus and the recurrence of spontaneous recurrent seizures. In vitro, the neuronal cell viability and axon length were reduced by additional treatment with A1 astrocyte conditioned media (ACM), and downregulation of astrocyte miR-132 rescued the inhibition of cell activity by A1 ACM, while the length of axons was further inhibited. The regulation of miR-132 on A1 astrocytes may be related to its target gene expression. Our results show that interfering with astrocyte polarization may be a breakthrough in the treatment of refractory epilepsy, which may extend to the research of other astrocyte polarization-mediated brain injuries.
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