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国际基础和临床药理学联合会. XCI. 酸敏离子通道和上皮钠通道的结构、功能和药理学。

International Union of Basic and Clinical Pharmacology. XCI. structure, function, and pharmacology of acid-sensing ion channels and the epithelial Na+ channel.

机构信息

Département de Pharmacologie et de Toxicologie, Université de Lausanne, Lausanne, Switzerland

Département de Pharmacologie et de Toxicologie, Université de Lausanne, Lausanne, Switzerland.

出版信息

Pharmacol Rev. 2015;67(1):1-35. doi: 10.1124/pr.114.009225.

Abstract

The epithelial Na(+) channel (ENaC) and the acid-sensing ion channels (ASICs) form subfamilies within the ENaC/degenerin family of Na(+) channels. ENaC mediates transepithelial Na(+) transport, thereby contributing to Na(+) homeostasis and the maintenance of blood pressure and the airway surface liquid level. ASICs are H(+)-activated channels found in central and peripheral neurons, where their activation induces neuronal depolarization. ASICs are involved in pain sensation, the expression of fear, and neurodegeneration after ischemia, making them potentially interesting drug targets. This review summarizes the biophysical properties, cellular functions, and physiologic and pathologic roles of the ASIC and ENaC subfamilies. The analysis of the homologies between ENaC and ASICs and the relation between functional and structural information shows many parallels between these channels, suggesting that some mechanisms that control channel activity are shared between ASICs and ENaC. The available crystal structures and the discovery of animal toxins acting on ASICs provide a unique opportunity to address the molecular mechanisms of ENaC and ASIC function to identify novel strategies for the modulation of these channels by pharmacologic ligands.

摘要

上皮钠离子通道 (ENaC) 和酸感应离子通道 (ASICs) 在 ENaC/退行离子通道家族的钠离子通道中形成亚家族。ENaC 介导跨上皮钠离子转运,从而有助于钠离子稳态和血压以及气道表面液水平的维持。ASICs 是中枢和外周神经元中发现的 H(+)-激活通道,其激活诱导神经元去极化。ASICs 参与疼痛感觉、恐惧表达和缺血后的神经退行性变,使它们成为潜在有趣的药物靶点。本综述总结了 ASIC 和 ENaC 亚家族的生物物理特性、细胞功能以及生理和病理作用。对 ENaC 和 ASIC 之间的同源性以及功能和结构信息之间的关系进行分析表明,这些通道之间有许多相似之处,这表明一些控制通道活性的机制在 ASIC 和 ENaC 之间是共享的。可用的晶体结构和作用于 ASIC 的动物毒素的发现为解决 ENaC 和 ASIC 功能的分子机制提供了独特的机会,以确定通过药理学配体调节这些通道的新策略。

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