Single-molecule magnetic tweezers to unravel protein folding dynamics under force.

IF 4.9 Q1 BIOPHYSICS
Biophysical reviews Pub Date : 2025-02-08 eCollection Date: 2025-02-01 DOI:10.1007/s12551-025-01274-1
Rafael Tapia-Rojo
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引用次数: 0

Abstract

Single-molecule magnetic tweezers have recently emerged as a powerful technique for measuring the equilibrium dynamics of individual proteins under force. In magnetic tweezers, a single protein is tethered between a glass coverslip and a superparamagnetic bead, and by applying and controlling a magnetic field, the protein is mechanically stretched while force-induced conformational changes are measured by tracking the vertical position of the bead. The soft trap created by the magnetic field provides intrinsic force-clamp conditions, which makes magnetic tweezers particularly well-suited to measure protein conformational dynamics. Traditionally employed to study DNA due to their initially low spatial and temporal resolutions, magnetic tweezers instrumentation has experienced significant progress in recent years. The development of high-speed cameras, stronger illumination sources, advanced image analysis algorithms, and dedicated chemical functionalization strategies, now allow for high-resolution and ultra-stable experiments. Together with their ability to apply and control low forces, magnetic tweezers can capture long-term equilibrium protein folding dynamics, not possible with any other technique. These capabilities have proven particularly valuable in the study of force-sensing protein systems, which often exhibit low mechanical stabilities that are challenging to measure with other techniques. In this review, we will discuss the current status of magnetic tweezers instrumentation for studying protein folding dynamics, focusing on both the instrumental aspects and methodologies to interpret nanomechanical experiments.

单分子磁性镊子揭开蛋白质在外力作用下的折叠动力学。
单分子磁镊子最近作为一种强大的技术出现,用于测量单个蛋白质在受力下的平衡动力学。在磁镊子中,单个蛋白质被拴在玻璃盖和超顺磁珠之间,通过施加和控制磁场,蛋白质被机械拉伸,同时通过跟踪磁珠的垂直位置来测量力引起的构象变化。磁场产生的软陷阱提供了固有的力夹条件,这使得磁镊子特别适合于测量蛋白质构象动力学。由于磁性镊子仪器最初的空间和时间分辨率较低,传统上用于研究DNA,近年来取得了重大进展。高速摄像机的发展,更强的照明光源,先进的图像分析算法,和专用的化学功能化策略,现在允许高分辨率和超稳定的实验。再加上它们应用和控制低力的能力,磁性镊子可以捕获长期平衡的蛋白质折叠动力学,这是任何其他技术都无法做到的。这些能力在力传感蛋白质系统的研究中被证明是特别有价值的,这些系统通常表现出较低的机械稳定性,这是用其他技术测量的挑战。在这篇综述中,我们将讨论用于研究蛋白质折叠动力学的磁镊子仪器的现状,重点是仪器方面和方法来解释纳米力学实验。
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
Biophysical reviews
Biophysical reviews Biochemistry, Genetics and Molecular Biology-Biophysics
CiteScore
8.90
自引率
0.00%
发文量
93
期刊介绍: Biophysical Reviews aims to publish critical and timely reviews from key figures in the field of biophysics. The bulk of the reviews that are currently published are from invited authors, but the journal is also open for non-solicited reviews. Interested authors are encouraged to discuss the possibility of contributing a review with the Editor-in-Chief prior to submission. Through publishing reviews on biophysics, the editors of the journal hope to illustrate the great power and potential of physical techniques in the biological sciences, they aim to stimulate the discussion and promote further research and would like to educate and enthuse basic researcher scientists and students of biophysics. Biophysical Reviews covers the entire field of biophysics, generally defined as the science of describing and defining biological phenomenon using the concepts and the techniques of physics. This includes but is not limited by such areas as: - Bioinformatics - Biophysical methods and instrumentation - Medical biophysics - Biosystems - Cell biophysics and organization - Macromolecules: dynamics, structures and interactions - Single molecule biophysics - Membrane biophysics, channels and transportation
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