下托
神经科学
海马结构
丘脑
癫痫
爆裂
生物神经网络
内嗅皮质
海马体
兴奋性突触后电位
癫痫发生
神经元回路
生物
抑制性突触后电位
齿状回
作者
Fan Fei,Xia Wang,Cenglin Xu,Jiaying Shi,Yiwei Gong,Heming Cheng,Nanxi Lai,Yeping Ruan,Yao Ding,Shuang Wang,Zhong Chen,Yi Wang
标识
DOI:10.1038/s41467-022-32742-x
摘要
Abstract Epilepsy is considered a circuit-level dysfunction associated with imbalanced excitation-inhibition, it is therapeutically necessary to identify key brain regions and related circuits in epilepsy. The subiculum is an essential participant in epileptic seizures, but the circuit mechanism underlying its role remains largely elusive. Here we deconstruct the diversity of subicular circuits in a mouse model of epilepsy. We find that excitatory subicular pyramidal neurons heterogeneously control the generalization of hippocampal seizures by projecting to different downstream regions. Notably, anterior thalamus-projecting subicular neurons bidirectionally mediate seizures, while entorhinal cortex-projecting subicular neurons act oppositely in seizure modulation. These two subpopulations are structurally and functionally dissociable. An intrinsically enhanced hyperpolarization-activated current and robust bursting intensity in anterior thalamus-projecting neurons facilitate synaptic transmission, thus contributing to the generalization of hippocampal seizures. These results demonstrate that subicular circuits have diverse roles in epilepsy, suggesting the necessity to precisely target specific subicular circuits for effective treatment of epilepsy.
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