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HCN 通道调制对 V 层锥体神经元兴奋性的兴奋和抑制作用。

Excitatory and inhibitory effects of HCN channel modulation on excitability of layer V pyramidal cells.

机构信息

Faculty of Medicine and Health Technology, Tampere University, Tampere, Finland.

Department of Biosciences, University of Oslo, Oslo, Norway.

出版信息

PLoS Comput Biol. 2022 Sep 13;18(9):e1010506. doi: 10.1371/journal.pcbi.1010506. eCollection 2022 Sep.

Abstract

Dendrites of cortical pyramidal cells are densely populated by hyperpolarization-activated cyclic nucleotide-gated (HCN) channels, a.k.a. Ih channels. Ih channels are targeted by multiple neuromodulatory pathways, and thus are one of the key ion-channel populations regulating the pyramidal cell activity. Previous observations and theories attribute opposing effects of the Ih channels on neuronal excitability due to their mildly hyperpolarized reversal potential. These effects are difficult to measure experimentally due to the fine spatiotemporal landscape of the Ih activity in the dendrites, but computational models provide an efficient tool for studying this question in a reduced but generalizable setting. In this work, we build upon existing biophysically detailed models of thick-tufted layer V pyramidal cells and model the effects of over- and under-expression of Ih channels as well as their neuromodulation. We show that Ih channels facilitate the action potentials of layer V pyramidal cells in response to proximal dendritic stimulus while they hinder the action potentials in response to distal dendritic stimulus at the apical dendrite. We also show that the inhibitory action of the Ih channels in layer V pyramidal cells is due to the interactions between Ih channels and a hot zone of low voltage-activated Ca2+ channels at the apical dendrite. Our simulations suggest that a combination of Ih-enhancing neuromodulation at the proximal part of the apical dendrite and Ih-inhibiting modulation at the distal part of the apical dendrite can increase the layer V pyramidal excitability more than either of the two alone. Our analyses uncover the effects of Ih-channel neuromodulation of layer V pyramidal cells at a single-cell level and shed light on how these neurons integrate information and enable higher-order functions of the brain.

摘要

皮质锥体神经元的树突被大量超极化激活的环核苷酸门控 (HCN) 通道(也称为 Ih 通道)所占据。Ih 通道受到多种神经调制途径的靶向作用,因此是调节锥体细胞活性的关键离子通道群体之一。先前的观察和理论归因于 Ih 通道由于其轻度超极化反转电位对神经元兴奋性产生相反的影响。由于 Ih 活性在树突中的精细时空景观,这些影响很难在实验中进行测量,但计算模型为在简化但可推广的环境中研究这个问题提供了有效的工具。在这项工作中,我们在现有的厚树突层 V 锥体细胞的生物物理详细模型的基础上进行构建,并对 Ih 通道的过表达和低表达及其神经调制的影响进行建模。我们表明,Ih 通道促进了层 V 锥体细胞对近端树突刺激的动作电位,而在树突顶的远端树突刺激下,它们阻碍了动作电位。我们还表明,Ih 通道在层 V 锥体细胞中的抑制作用是由于 Ih 通道与树突顶低电压激活 Ca2+通道的热点之间的相互作用所致。我们的模拟表明,在树突顶的近端部分进行 Ih 增强型神经调制,以及在树突顶的远端部分进行 Ih 抑制型调制的组合,可以比单独使用其中任何一种方式更有效地增加层 V 锥体细胞的兴奋性。我们的分析揭示了 Ih 通道对单个细胞水平的层 V 锥体细胞的神经调制的影响,并阐明了这些神经元如何整合信息并实现大脑的更高阶功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6cfd/9506642/0aa083350776/pcbi.1010506.g001.jpg

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