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mtDNA leakage promotes neuron–glia crosstalk to induce epilepsy by cGAS–STING-driven neuroinflammation and serine metabolic reprogramming

串扰 神经炎症 细胞生物学 兴奋毒性 生物 神经科学 小胶质细胞 线粒体 下调和上调 癫痫 重编程 细胞外 糖酵解 炎症 谷氨酸受体 代谢途径 星形胶质细胞 厌氧糖酵解 激酶 缺氧(环境) 信号转导 运动前神经元活动 胞浆 NMDA受体 化学 蛋白激酶A 阻抑素 神经胶质
作者
Jie Jiang,Meiling Zuo,Kehan Zhao,Zhihao Ling,Zhida Wu,Dongfang Xue,Shouyong Mo,Yuanhui Liu,Yongjun Chen,Jie Wang,Bin Lu,Chuanzhou Li,Yaqi Duan,He He,Zhiyin Song
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (9): e2522313123-e2522313123 被引量:4
标识
DOI:10.1073/pnas.2522313123
摘要

Epilepsy is increasingly recognized as a disorder involving metabolic dysregulation beyond neural hyperexcitability, yet the underlying metabolic mechanisms remain poorly defined. Here, we identify a mitochondrion-immunity-metabolism axis that drives spontaneous chronic epilepsy. Brain-specific deletion of Mic19 impairs mitochondrial cristae structure and mitochondrial integrity in neurons, leading to activation of the Z-mitochondrial DNA (mtDNA)-ZBP1-RIPK3-mixed lineage kinase domain-like protein (MLKL) axis and p-MLKL-mediated pore formation on the mitochondrial membrane. This process results in cytosolic and extracellular leakage of mtDNA, which is subsequently taken up by microglia and triggers cyclic GMP-AMP synthase (cGAS)-STING-dependent inflammatory signaling. The resulting neuroinflammation promotes sustained activation of astrocytes. Critically, reactive astrocytes undergo profound metabolic reprogramming, marked by upregulated glycolysis and enhanced L-serine biosynthesis. Astrocyte-derived L-serine is subsequently transferred to neurons and converted into D-serine, a key NMDA receptor coagonist that enhances neuronal excitability. This metabolic shift in astrocytes exacerbates excitotoxicity and sustains epileptic activity. Importantly, pharmacologic inhibition of STING with H-151 treatment markedly suppresses seizures, reinforcing the therapeutic potential of targeting immunometabolic crosstalk in epilepsy. Our findings reveal that mtDNA-mediated cGAS-STING activation and D-serine act as important drivers of epilepsy initiation, offering mechanistic insights into neuron-microglia-astrocyte crosstalk and highlighting immunometabolic modulation as a promising therapeutic strategy for epilepsy.
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