稳态可塑性
神经科学
突触标度
轴突
突触可塑性
平衡
加巴能
可塑性
生物
神经可塑性
变质塑性
非突触性可塑性
抑制性突触后电位
细胞生物学
物理
受体
生物化学
热力学
作者
Rui Zhao,Baihui Ren,Yujie Xiao,Tian Jifeng,Yi Zou,Jiafan Wei,Yanqing Qi,Ankang Hu,Xiaoying Xie,Z. Josh Huang,Yousheng Shu,Miao He,Jiangteng Lu,Yilin Tai
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2024-08-02
卷期号:10 (31)
被引量:2
标识
DOI:10.1126/sciadv.adk4331
摘要
Homeostatic plasticity maintains the stability of functional brain networks. The axon initial segment (AIS), where action potentials start, undergoes dynamic adjustment to exert powerful control over neuronal firing properties in response to network activity changes. However, it is poorly understood whether this plasticity involves direct synaptic input to the AIS. Here, we show that changes of GABAergic synaptic input from chandelier cells (ChCs) drive homeostatic tuning of the AIS of principal neurons (PNs) in the prelimbic (PL) region, while those from parvalbumin-positive basket cells do not. This tuning is evident in AIS morphology, voltage-gated sodium channel expression, and PN excitability. Moreover, the impact of this homeostatic plasticity can be reflected in animal behavior. Social behavior, inversely linked to PL PN activity, shows time-dependent alterations tightly coupled to changes in AIS plasticity and PN excitability. Thus, AIS-originated homeostatic plasticity in PNs may counteract deficits elicited by imbalanced ChC presynaptic input at cellular and behavioral levels.
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