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发育中的新皮层锥体神经元微柱隙连接网络中的慢动力学。

Slow Dynamics in Microcolumnar Gap Junction Network of Developing Neocortical Pyramidal Neurons.

机构信息

RIKEN Center for Brain Science, Wako, Saitama 351-0198, Japan.

出版信息

Neuroscience. 2019 May 15;406:554-562. doi: 10.1016/j.neuroscience.2019.02.013. Epub 2019 Feb 20.

Abstract

Gap junctions mediate electrical coupling between neurons and modulate their firing activity. In mouse neocortical layer 5, the major types of pyramidal neurons organize into cell type-specific microcolumns that exhibit modular neuronal activity. During cortical development, microcolumn neurons are electrically coupled in a cell type-specific manner at the stage of synaptogenesis, forming a dense network of gap junctions. However, modulation of neuronal activity by the gap junction network has not been examined. Here, we show that the electrical coupling induces amplification and slow synchronization of action potentials. This slow synchronization is mediated by electrical transmission that is an order of magnitude slower than that of gap junction-coupled neurons of other types. Theoretical and structural analyses suggested that apical dendrites are a major site of electrical coupling, providing slow electrical transmission. These results suggest that the gap junction network organizes neuronal activity of developing cortical circuit modules with unique slow dynamics.

摘要

缝隙连接介导神经元之间的电耦合并调节它们的放电活动。在小鼠新皮层第 5 层中,主要类型的锥体神经元组织成具有特定模块神经元活动的细胞类型特异性微柱。在皮层发育过程中,微柱神经元在突触发生阶段以细胞类型特异性的方式电耦合并形成缝隙连接的密集网络。然而,缝隙连接网络对神经元活动的调节尚未被研究。在这里,我们表明电耦接诱导动作电位的放大和缓慢同步。这种缓慢同步是由电传递介导的,其速度比其他类型的缝隙连接耦合神经元慢一个数量级。理论和结构分析表明,树突是电耦接的主要部位,提供缓慢的电传递。这些结果表明,缝隙连接网络以独特的缓慢动力学组织发育中的皮质电路模块的神经元活动。

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