Mechanosensitive Ion Channels: The Unending Riddle of Mechanotransduction.

IF 1.6 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Bioelectricity Pub Date : 2025-03-18 eCollection Date: 2025-03-01 DOI:10.1089/bioe.2024.0028
Nuhan Purali
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引用次数: 0

Abstract

Sensation begins at the periphery, where distinct transducer proteins, activated by specific physical stimuli, initiate biological events to convert the stimulus into electrical activity. These evoked pulse trains encode various properties of the stimulus and travel to higher centers, enabling perception of the physical environment. Transduction is an essential process in all of the five senses described by Aristotle. A substantial amount of information is already available on how G-protein coupled receptor proteins transduce exposure to light, odors, and tastants. Functional studies have revealed the presence of mechanosensitive (MS) ion channels, which act as force transducers, in a wide range of organisms from archaea to mammals. However, the molecular basis of mechanosensitivity is incompletely understood. Recently, the structure of a few MS channels and the molecular mechanisms linking mechanical force to channel gating have been partially revealed. This article reviews recent developments focusing on the molecular basis of mechanosensitivity and emerging methods to investigate MS channels.

机械敏感离子通道:机械转导的无穷之谜。
感觉开始于外围,在那里不同的换能器蛋白被特定的物理刺激激活,启动生物事件将刺激转化为电活动。这些诱发的脉冲序列编码刺激的各种特性,并传递到更高的中心,使物理环境的感知成为可能。转导是亚里斯多德所描述的所有五种感官的基本过程。关于g蛋白偶联受体蛋白如何转导暴露于光、气味和味道,已经有了大量的信息。功能研究表明,在从古细菌到哺乳动物的广泛生物中,存在机械敏感(MS)离子通道,作为力传感器。然而,机械敏感性的分子基础尚不完全清楚。近年来,一些质谱通道的结构和机械力与通道门控的分子机制得到了部分揭示。本文综述了最近的研究进展,重点是机械敏感性的分子基础和研究质谱通道的新方法。
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
Bioelectricity
Bioelectricity Multiple-
CiteScore
3.40
自引率
4.30%
发文量
33
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