生物分子凝聚物的力学生物学。

IF 2.9 Q2 BIOPHYSICS
Biophysics reviews Pub Date : 2025-03-25 eCollection Date: 2025-03-01 DOI:10.1063/5.0236610
Neus Sanfeliu-Cerdán, Michael Krieg
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引用次数: 0

摘要

机械生物学的核心目标是了解细胞器、细胞和组织的机械力和材料特性如何影响生物过程和功能。自从对生物分子凝聚物的第一次描述以来,人们假设它们获得了与细胞内功能相适应的材料特性。因此,它们代表了机械生物学的一个有趣的游乐场。生物分子凝聚物表现出多样性和适应性的材料特性,这一观点强调了了解不同物质状态如何响应外力以及这些反应是否与细胞内的生理作用有关的必要性。例如,液体可以缓冲和消散机械应力,而固体可以储存和传递机械应力,粘弹性材料的松弛时间可以作为机械频率过滤器。因此,力传递途径中冷凝物的液固转变可以决定机械信号如何在细胞内和细胞间转导,从而影响分化、神经网络动力学和对外部刺激的行为。在这里,我们首先回顾了我们目前对分子驱动因素的理解,以及刚性相变是如何在复杂的细胞环境中发生的。然后,我们将总结必要的技术进步,以获得对凝析物丰富而迷人的机械生物学的见解,最后,我们将重点介绍生理液固过渡及其与特定细胞功能的联系的最新例子。我们的目标是提供一个关于电池如何利用和调节冷凝力学来实现特定功能的综合总结。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The mechanobiology of biomolecular condensates.

The central goal of mechanobiology is to understand how the mechanical forces and material properties of organelles, cells, and tissues influence biological processes and functions. Since the first description of biomolecular condensates, it was hypothesized that they obtain material properties that are tuned to their functions inside cells. Thus, they represent an intriguing playground for mechanobiology. The idea that biomolecular condensates exhibit diverse and adaptive material properties highlights the need to understand how different material states respond to external forces and whether these responses are linked to their physiological roles within the cell. For example, liquids buffer and dissipate, while solids store and transmit mechanical stress, and the relaxation time of a viscoelastic material can act as a mechanical frequency filter. Hence, a liquid-solid transition of a condensate in the force transmission pathway can determine how mechanical signals are transduced within and in-between cells, affecting differentiation, neuronal network dynamics, and behavior to external stimuli. Here, we first review our current understanding of the molecular drivers and how rigidity phase transitions are set forth in the complex cellular environment. We will then summarize the technical advancements that were necessary to obtain insights into the rich and fascinating mechanobiology of condensates, and finally, we will highlight recent examples of physiological liquid-solid transitions and their connection to specific cellular functions. Our goal is to provide a comprehensive summary of the field on how cells harness and regulate condensate mechanics to achieve specific functions.

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CiteScore
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