The Role of HCN Channels on Membrane Excitability in the Nervous System.

Journal of signal transduction Pub Date : 2012-01-01 Epub Date: 2012-08-13 DOI:10.1155/2012/619747
Daisuke Kase, Keiji Imoto
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引用次数: 91

Abstract

Hyperpolarization-activated and cyclic nucleotide-gated (HCN) channels were first reported in heart cells and are recently known to be involved in a variety of neural functions in healthy and diseased brains. HCN channels generate inward currents when the membrane potential is hyperpolarized. Voltage dependence of HCN channels is regulated by intracellular signaling cascades, which contain cyclic AMP, PIP(2), and TRIP8b. In addition, voltage-gated potassium channels have a strong influence on HCN channel activity. Because of these funny features, HCN channel currents, previously called funny currents, can have a wide range of functions that are determined by a delicate balance of modulatory factors. These multifaceted features also make it difficult to predict and elucidate the functional role of HCN channels in actual neurons. In this paper, we focus on the impacts of HCN channels on neural activity. The functions of HCN channels reported previously will be summarized, and their mechanisms will be explained by using numerical simulation of simplified model neurons.

Abstract Image

Abstract Image

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HCN通道在神经系统膜兴奋性中的作用。
超极化激活和环核苷酸门控(HCN)通道首次在心脏细胞中被报道,最近被发现参与健康和患病大脑的多种神经功能。当膜电位超极化时,HCN通道产生向内电流。HCN通道的电压依赖性由细胞内信号级联调节,其中包含环状AMP、PIP(2)和TRIP8b。此外,电压门控钾通道对HCN通道活性有很强的影响。由于这些有趣的特征,HCN通道电流,以前被称为有趣电流,可以具有广泛的功能,这些功能由调节因素的微妙平衡决定。这些多方面的特征也使得预测和阐明HCN通道在实际神经元中的功能作用变得困难。本文主要研究HCN通道对神经活动的影响。本文将对之前报道的HCN通道的功能进行总结,并通过简化模型神经元的数值模拟来解释其机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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