神经科学
新皮层
锥体细胞
中间神经元
抑制性突触后电位
枝晶(数学)
生物神经网络
神经网络
顶端树突
生物
光遗传学
大脑皮层
海马体
几何学
数学
作者
Xiaolong Jiang,Guangfu Wang,Alice J. Lee,Ruth L. Stornetta,Jie Zhu
摘要
Using simultaneous quadruple-to-octuple whole-cell recordings in rat sensorimotor cortex and testing over 14,000 putative synaptic connections between over 8,000 cells, Jiang and colleagues identify two new multi-layer disynaptic interneuronal circuits. Functionally, these two circuits either inhibit or disinhibit the initiation of complex spikes in the apical dendrite of layer 5 pyramidal cells. Deciphering the interneuronal circuitry is central to understanding brain functions, yet it remains a challenging task in neurobiology. Using simultaneous quadruple-octuple in vitro and dual in vivo whole-cell recordings, we found two previously unknown interneuronal circuits that link cortical layer 1–3 (L1–3) interneurons and L5 pyramidal neurons in the rat neocortex. L1 single-bouquet cells (SBCs) preferentially formed unidirectional inhibitory connections on L2/3 interneurons that inhibited the entire dendritic-somato-axonal axis of ∼1% of L5 pyramidal neurons located in the same column. In contrast, L1 elongated neurogliaform cells (ENGCs) frequently formed mutual inhibitory and electric connections with L2/3 interneurons, and these L1-3 interneurons inhibited the distal apical dendrite of >60% of L5 pyramidal neurons across multiple columns. Functionally, SBC→L2/3 interneuron→L5 pyramidal neuronal circuits disinhibited and ENGC↔L2/3 interneuron→L5 pyramidal neuronal circuits inhibited the initiation of dendritic complex spikes in L5 pyramidal neurons. As dendritic complex spikes can serve coincidence detection, these cortical interneuronal circuits may be essential for salience selection.
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