Molecular Force Measurement with Tension Sensors.

IF 10.4 1区 生物学 Q1 BIOPHYSICS Annual Review of Biophysics Pub Date : 2021-05-06 Epub Date: 2021-03-12 DOI:10.1146/annurev-biophys-101920-064756
Lisa S Fischer, Srishti Rangarajan, Tanmay Sadhanasatish, Carsten Grashoff
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引用次数: 22

Abstract

The ability of cells to generate mechanical forces, but also to sense, adapt to, and respond to mechanical signals, is crucial for many developmental, postnatal homeostatic, and pathophysiological processes. However, the molecular mechanisms underlying cellular mechanotransduction have remained elusive for many decades, as techniques to visualize and quantify molecular forces across individual proteins in cells were missing. The development of genetically encoded molecular tension sensors now allows the quantification of piconewton-scale forces that act upon distinct molecules in living cells and even whole organisms. In this review, we discuss the physical principles, advantages, and limitations of this increasingly popular method. By highlighting current examples from the literature, we demonstrate how molecular tension sensors can be utilized to obtain access to previously unappreciated biophysical parameters that define the propagation of mechanical forces on molecular scales. We discuss how the methodology can be further developed and provide a perspective on how the technique could be applied to uncover entirely novel aspects of mechanobiology in the future.

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张力传感器分子力测量。
细胞产生机械力的能力,以及感知、适应和响应机械信号的能力,对许多发育、出生后体内平衡和病理生理过程至关重要。然而,几十年来,细胞机械转导的分子机制仍然难以捉摸,因为缺乏可视化和量化细胞中单个蛋白质的分子力的技术。基因编码分子张力传感器的发展现在可以量化皮牛顿级的力,这种力作用于活细胞甚至整个生物体中的不同分子。在这篇综述中,我们讨论了这种日益流行的方法的物理原理、优点和局限性。通过强调当前文献中的例子,我们展示了如何利用分子张力传感器来获取以前未被理解的生物物理参数,这些参数定义了机械力在分子尺度上的传播。我们讨论了该方法如何进一步发展,并提供了未来该技术如何应用于揭示机械生物学全新方面的观点。
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来源期刊
Annual Review of Biophysics
Annual Review of Biophysics 生物-生物物理
CiteScore
21.00
自引率
0.00%
发文量
25
期刊介绍: The Annual Review of Biophysics, in publication since 1972, covers significant developments in the field of biophysics, including macromolecular structure, function and dynamics, theoretical and computational biophysics, molecular biophysics of the cell, physical systems biology, membrane biophysics, biotechnology, nanotechnology, and emerging techniques.
期刊最新文献
Biophysical Principles Emerging from Experiments on Protein-Protein Association and Aggregation. Ancestral Reconstruction and the Evolution of Protein Energy Landscapes. The Effects of Codon Usage on Protein Structure and Folding. Translation Dynamics of Single mRNAs in Live Cells. Mitochondrial Dynamics at Different Levels: From Cristae Dynamics to Interorganellar Cross Talk.
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