酸感应离子通道 3:镇痛靶标。

Jasdip Singh Dulai, Ewan St John Smith, Taufiq Rahman
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摘要

酸感应离子通道 3(ASIC3)属于上皮钠通道/去蛋白(ENaC/DEG)超家族。共有 7 种不同的 ASIC 亚基,由 5 个不同的基因编码。大多数 ASIC 亚基形成三聚体离子通道,在细胞外质子的激活下介导瞬时内向电流,诱导细胞兴奋性。ASIC 亚基表现出不同的组织表达和生物物理特性,亚基形成同源和异源三聚体的能力进一步增加了测量电流及其药理特性的复杂性。ASIC3 尤其引人关注,这不仅是因为它在感觉神经元中的高表达量,还因为它在激活后不会完全失活:瞬时电流之后是持续电流,该电流在细胞外酸度期间持续存在,即 ASIC3 可将长时间酸中毒编码为痛觉信号。此外,某些介质会使 ASIC3 敏感,使较小的质子浓度也能激活它,而其他介质则能在中性 pH 值时直接激活该通道。此外,大量使用转基因小鼠模型和药理学方法的证据表明,ASIC3 是开发镇痛药的潜在靶点。本综述将侧重于目前对 ASIC3 功能的理解,概述 ASIC3 如何对生理学和病理生理学做出贡献,研究 ASIC3 的调节机制,并强调目前理解中的差距和未来的研究方向。
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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Acid-sensing ion channel 3: An analgesic target.

Acid-sensing ion channel 3 (ASIC3) belongs to the epithelial sodium channel/degenerin (ENaC/DEG) superfamily. There are 7 different ASIC subunits encoded by 5 different genes. Most ASIC subunits form trimeric ion channels that upon activation by extracellular protons mediate a transient inward current inducing cellular excitability. ASIC subunits exhibit differential tissue expression and biophysical properties, and the ability of subunits to form homo- and heteromeric trimers further increases the complexity of currents measured and their pharmacological properties. ASIC3 is of particular interest, not only because it exhibits high expression in sensory neurones, but also because upon activation it does not fully inactivate: a transient current is followed by a sustained current that persists during a period of extracellular acidity, i.e. ASIC3 can encode prolonged acidosis as a nociceptive signal. Furthermore, certain mediators sensitize ASIC3 enabling smaller proton concentrations to activate it and other mediators can directly activate the channel at neutral pH. Moreover, there is a plethora of evidence using transgenic mouse models and pharmacology, which supports ASIC3 as being a potential target for development of analgesics. This review will focus on current understanding of ASIC3 function to provide an overview of how ASIC3 contributes to physiology and pathophysiology, examining the mechanisms by which it can be modulated, and highlighting gaps in current understanding and future research directions.

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