七氟醚
谷氨酸受体
谷氨酸的
神经科学
前额叶皮质
星形胶质细胞
生物
神经毒性
NMDA受体
星形胶质增生
去抑制
医学
运动前神经元活动
海马体
认知功能衰退
条件基因敲除
下调和上调
长时程增强
神经化学
细胞生物学
AMPA受体
化学
神经退行性变
莫里斯水上航行任务
内分泌学
表观遗传学
脱甲基酶
神经认知
兴奋毒性
基因剔除小鼠
内科学
突触裂
多巴胺
海马结构
树突棘
皮质扩散性抑郁症
前脑
N6-甲基腺苷
代谢型谷氨酸受体
药理学
作者
Junhua Li,Zhaoxia Liao,Kun Zhang,Yafang Liu,Hui Xu,Dong Cao,Jie Yang,Jiachong Han,Le Zeng,Zhiwen Shen,Yi Wu,Jinfeng Li
标识
DOI:10.1523/jneurosci.0586-26.2026
摘要
The pathogenesis of perioperative neurocognitive disorders (PND) involves a complex interplay of genetic vulnerability and environmental insults, with epigenetic regulation acting as a dynamic mediator. However, the cell-specific epitranscriptomic responses to perioperative stressors like sevoflurane anesthesia, and their functional consequences for cognitive decline, are not well defined. Here, we report that the m6A demethylase FTO is significantly upregulated in the medial prefrontal cortex (mPFC) of male mice exposed to sevoflurane anesthesia. Astrocytic FTO, but not neuronal or endothelial FTO, is highly sensitive to sevoflurane exposure. Conditional knockout of FTO in astrocytes attenuated sevoflurane-induced cognitive deficits, while astrocyte-specific FTO overexpression exacerbated sevoflurane-induced cognitive deficits. Mechanistically, astrocytic FTO mediated m6A demethylation of glutamate transporter-1 (GLT-1) mRNA, leading to enhanced GLT-1 protein expression and aberrant glutamatergic transmission. Sevoflurane exposure disrupted synaptic transmission, neuronal morphology, and calcium activity in the mPFC, which were rescued by astrocytic FTO deletion. Supplementation with the methyl donor S-adenosylmethionine (SAMe) normalized m6A levels and improved cognitive performance. This study demonstrates that astrocytic FTO is a critical epitranscriptomic modulator of sevoflurane-induced PND and a potential therapeutic target for PND. Significance Statement PND are a major clinical concern for which effective mechanism-based interventions are lacking. This study identifies astrocytic FTO as a cell-type-selective epitranscriptomic driver of sevoflurane-induced PND and establishes that its m6A-demethylase activity disrupts glutamate homeostasis by post-transcriptionally regulating the astrocytic glutamate transporter GLT-1. Astrocyte-restricted deletion of FTO preserves synaptic transmission, neuronal structure, and calcium dynamics, thereby preventing cognitive decline, while astrocytic FTO overexpression exacerbates deficits. Therapeutic restoration of m6A methylation with the methyl donor SAMe normalizes the epitranscriptomic landscape and rescues cognitive function. These findings reveal astrocytic m6A regulation as a previously unrecognized pathogenic mechanism and a druggable target for PND.
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