神经可塑性
皮质酮
氯胺酮
神经科学
医学
小胶质细胞
内分泌系统
运动前神经元活动
下调和上调
机制(生物学)
麻醉
性二态性
内科学
内分泌学
即刻早期基因
海马结构
生物
中枢神经系统
信号转导
激素
战斗或逃跑反应
作者
Alessandro Venturino,MohammadAmin Alamalhoda,Thomas Negrello,Kelly Jin,Cindy T. J. van Velthoven,Ryan John Cubero,Jake Yeung,Peter Koppensteiner,Bosiljka Tasic,Sandra Siegert
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-07-31
卷期号:12 (31): eadz6517-eadz6517
标识
DOI:10.1126/sciadv.adz6517
摘要
Abstract Anesthesia recovery is critical for resuming normal physiological and neuronal functions; however, the mechanisms involved remain elusive. Here, we identify a female-selective corticosterone-mediated microglia-neuron interaction in vivo during ketamine anesthesia recovery, absent in males. This microglia-neuron interaction induces plastic and functional neuronal changes, as evidenced by increased spine density and mEPSC frequency, which is occluded upon microglia depletion. We show that this process is driven through upregulation of the stress-responsive co-chaperone Fkbp5 mRNA and its protein, FKBP51, in female microglia. Fkbp5 /FKBP51 is a key intermediary in a corticosteroid-induced stress response, and its involvement points towards a critical interface between endocrine signaling and microglia. Thus, to counteract the observed KXA-mediated corticosterone increase in the blood, we remove the primary source of corticosterone through adrenalectomy. Close microglia-neuron interaction was absent, but was reinstated after corticosterone injection. Our findings offer a new mechanism of microglia-mediated neuronal plasticity during anesthesia recovery, which is mediated through corticosterone, enhancing our understanding of sex differences in brain function.
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