催产素
扁桃形结构
压力(语言学)
神经肽
神经科学
电生理学
生物神经网络
化学
细胞外
战斗或逃跑反应
星形胶质细胞
细胞生物学
生物
感觉系统
光遗传学
神经科学家
神经元回路
细胞应激反应
调制(音乐)
系统神经科学
神经递质药
信号转导
综合应力响应
甘丙肽
唤醒
海马体
运动前神经元活动
中枢神经系统
钾通道
神经元
细胞信号
作者
Angel Baudon,Valentin Grelot,Kai-Yi Wang,Ferdinand Althammer,Clémence Denis,Pierre Riché-Piotaix,A. Alshatwi Ali,Yudong Yan,Fernando Castillo Díaz,Francesca Piacentini,Etienne Clauss Creusot,Volodya Hovhannisyan,Tim Schubert,Annabel C. Kleinwaechter,Eva M. Eisemann,Jabir Aliyu Muhammad,Jemima Helen,Tom Lakomy,Quirin Krabichler,Rachel Breton
标识
DOI:10.1038/s41467-025-68114-4
摘要
Anticipated reactions to stressful situations are vital for the survival and well-being of organisms, and abnormal reactions results in stress-related disorders. The neuropeptide oxytocin is a key modulator ensuring well-adapted stress responses. Oxytocin acts on both neurons and astrocytes, but the molecular and cellular mechanisms mediating stress response remain poorly understood. Here, we focus on the amygdala, a crucial hub that integrates and processes sensory information through oxytocin-dependent mechanisms. Using an acute stress paradigm in mice, genetic and pharmacological manipulations combined with proteomic, morphological, electrophysiological and behavioral approaches, we reveal that oxytocinergic modulation of the freezing response to stress is mediated by transient Gαi-dependent retraction of astrocytic processes, followed by enhanced neuronal sensitivity to extracellular potassium in the amygdala. Our findings elucidate a pivotal role for astrocytes morphology-dependent modulation of brain circuits that is required for proper anticipated behavioral response to stressful situations.
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