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瞬时受体电位(TRP)通道作为化学信号到电信号的转换器。

The TRP channels serving as chemical-to-electrical signal converter.

作者信息

Tian Yuhua, Zheng Jie

机构信息

Department of Pharmacology, School of Pharmacy, Qingdao University, Qingdao, China.

Department of Physiology and Membrane Biology, School of Medicine, University of California, Davis, California, United States.

出版信息

Physiol Rev. 2025 Jul 1;105(3):1033-1074. doi: 10.1152/physrev.00012.2024. Epub 2025 Jan 15.

Abstract

Biology uses many signaling mechanisms. Among them, calcium and membrane potential are two prominent mediators for cellular signaling. Transient receptor potential (TRP) melastatin 4 and 5 (TRPM4 and TRPM5), two calcium-activated monovalent cation-selective ion channels, offer a direct linkage between these two signals. Their activities convert a rise in the intracellular calcium level, a chemical signal, into depolarization of membrane potential, an electrical signal. Interestingly, membrane depolarization can in turn alter the electrical driving force or membrane permeability for calcium entry; hence, it offers feedback mechanisms for regulating calcium signaling. By converging two powerful cellular signals, TRPM4 and TRPM5 can contribute to many fundamental biological processes including cardiovascular biology, immunology, insulin release, chemosensation, and others. Numerous mutations in TRPM4 are linked to human hereditary cardiac and skin diseases, whereas knocking out TRPM5 in mice abolishes the perception of sweet, umami, and bitter tastes. This review summarizes what is currently known about the signaling roles of these unique TRP channels and what remains mysterious.

摘要

生物学运用多种信号传导机制。其中,钙和膜电位是细胞信号传导的两种主要介质。瞬时受体电位(TRP)褪黑素4和5(TRPM4和TRPM5)这两种钙激活单价阳离子选择性离子通道,在这两种信号之间提供了直接联系。它们的活动将细胞内钙水平的升高(一种化学信号)转化为膜电位的去极化(一种电信号)。有趣的是,膜去极化反过来又可以改变钙内流的电驱动力或膜通透性;因此,它为调节钙信号传导提供了反馈机制。通过汇聚两种强大的细胞信号,TRPM4和TRPM5可参与许多基本生物学过程,包括心血管生物学、免疫学、胰岛素释放、化学感觉等。TRPM4中的众多突变与人类遗传性心脏和皮肤疾病有关,而在小鼠中敲除TRPM5则会消除对甜味、鲜味和苦味的感知。本综述总结了目前已知的这些独特TRP通道的信号传导作用以及仍有待探索的奥秘。

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