人红细胞的机械转导机制:基本生理学和临床意义。

IF 3.2
Channels (Austin, Tex.) Pub Date : 2025-12-01 Epub Date: 2025-09-10 DOI:10.1080/19336950.2025.2556105
Lennart Kuck, Lars Kaestner, Stéphane Egée, Virgilio L Lew, Michael J Simmonds
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引用次数: 0

摘要

机械敏感离子通道的特征已经在各种细胞系中观察了半个世纪,尽管它们的机制和分子特性直到最近才为人所知。真正的哺乳动物机械感觉压电通道的鉴定导致了探索机械信号转化为生化信号和动态细胞形态反应的研究的爆炸式增长。压电异构体之一- Piezo1 -在红细胞(红细胞;RBC)膜中是不可或缺的。红细胞的特殊灵活性和细胞内细胞器的缺失提供了一个独特的机械和生化环境,决定了特定的piezo1功能。红细胞在循环系统的连续穿越过程中感知作用在它们身上的机械力的piezo1赋予的能力已经巩固了我们对健康和疾病中红细胞生物学的基本理解的酝酿变化;也就是说,红细胞不是生物惰性的,而是能够进行复杂的动态细胞信号传导。尽管一些研究已经揭示了RBC-Piezo1激活信号通路的各种调节机制,但这些独立的研究尚未综合成一个有凝聚力的画面。本综述的目的是总结在阐明Piezo1如何在红细胞独特的细胞环境中发挥作用方面的进展,挑战这种去核细胞的经典观点,并为未来的工作带来发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mechanotransduction mechanisms in human erythrocytes: Fundamental physiology and clinical significance.

Mechanotransduction mechanisms in human erythrocytes: Fundamental physiology and clinical significance.

Mechanotransduction mechanisms in human erythrocytes: Fundamental physiology and clinical significance.

Mechanotransduction mechanisms in human erythrocytes: Fundamental physiology and clinical significance.

The hallmarks of mechanosensitive ion channels have been observed for half a century in various cell lines, although their mechanisms and molecular identities remained unknown until recently. Identification of the bona fide mammalian mechanosensory Piezo channels resulted in an explosion of research exploring the translation of mechanical cues into biochemical signals and dynamic cell morphology responses. One of the Piezo isoforms - Piezo1 - is integral in the erythrocyte (red blood cell; RBC) membrane. The exceptional flexibility of RBCs and the absence of intracellular organelles provides a unique mechanical and biochemical environment dictating specific Piezo1-functionality. The Piezo1-endowed capacity of RBCs to sense the mechanical forces acting upon them during their continuous traversal of the circulatory system has solidified a brewing step-change in our fundamental understanding of RBC biology in health and disease; that is, RBCs are not biologically inert but rather capable of complex dynamic cellular signaling. Although several lines of investigation have unearthed various regulatory mechanisms of signaling pathway activation by RBC-Piezo1, these independent studies have not yet been synthesized into a cohesive picture. The aim of the present review is to thus summarize the progress in elucidating how Piezo1 functions in the unique cellular environment of RBCs, challenge classical views of this enucleated cell, and provoke developments for future work.

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