Functional coupling of Piezo1 channels and Ca2+-activated ion channels in the plasma membrane: fine-tunable interplay with wide-range signaling effects.

IF 5 2区 生物学 Q2 CELL BIOLOGY
Valeriia Y Vasileva, Anastasia V Sudarikova, Vladislav I Chubinskiy-Nadezhdin
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引用次数: 0

Abstract

Ca2+ is a universal second messenger in living cells, and its concentration should be precisely localized to provide the outstanding specificity of signal transduction. The conception of Ca2+ micro- and nanodomains in which Ca2+ ions could control the activity of various Ca2+-dependent molecules was postulated: the Ca2+-permeable ion channels in the plasma membrane provide a pathway for Ca2+ entry from the extracellular milieu into the cytosol regulating the activity of Ca2+-dependent molecules, that is, functionally colocalized Ca2+-activated ion channels. These channel complexes of different molecular compositions were observed in the cells of different origins; thus, the phenomenon of ion channel coupling is thought to be a universal property of living cells. Piezo1 is a mechanosensitive Ca2+-permeable ion channel that plays a pivotal role in cellular mechanotransduction and is integrated into various signaling cascades regulating the activity of Ca2+-dependent molecules. Here, we summarized recent experimental data on the presence and role of functional complexes of Piezo1 with Ca2+-activated channels of different origins and highlighted the complex molecular mechanisms that could control the channel coupling in the plasma membrane.

质膜中Piezo1通道和Ca2+激活离子通道的功能耦合:与大范围信号效应的微调相互作用。
Ca2+是活细胞中普遍存在的第二信使,其浓度应精确定位,以提供出色的信号转导特异性。假设Ca2+离子可以控制各种Ca2+依赖分子活性的Ca2+微域和纳米域的概念:质膜上的Ca2+渗透离子通道为Ca2+从细胞外环境进入调节Ca2+依赖分子活性的细胞质提供了途径,即功能上共定位的Ca2+激活离子通道。在不同来源的细胞中观察到不同分子组成的通道复合物;因此,离子通道耦合现象被认为是活细胞的普遍特性。Piezo1是一种机械敏感的Ca2+渗透离子通道,在细胞机械转导中起着关键作用,并被整合到调节Ca2+依赖分子活性的各种信号级联中。在这里,我们总结了最近关于Piezo1与不同来源的Ca2+激活通道的功能复合物的存在和作用的实验数据,并强调了可以控制质膜中通道耦合的复杂分子机制。
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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来源期刊
CiteScore
9.10
自引率
1.80%
发文量
252
审稿时长
1 months
期刊介绍: The American Journal of Physiology-Cell Physiology is dedicated to innovative approaches to the study of cell and molecular physiology. Contributions that use cellular and molecular approaches to shed light on mechanisms of physiological control at higher levels of organization also appear regularly. Manuscripts dealing with the structure and function of cell membranes, contractile systems, cellular organelles, and membrane channels, transporters, and pumps are encouraged. Studies dealing with integrated regulation of cellular function, including mechanisms of signal transduction, development, gene expression, cell-to-cell interactions, and the cell physiology of pathophysiological states, are also eagerly sought. Interdisciplinary studies that apply the approaches of biochemistry, biophysics, molecular biology, morphology, and immunology to the determination of new principles in cell physiology are especially welcome.
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