Physics Department, King's College London, London, United Kingdom.
Methods Enzymol. 2024;694:83-107. doi: 10.1016/bs.mie.2023.12.010. Epub 2024 Feb 5.
Mechanical forces are critical to protein function across many biological contexts-from bacterial adhesion to muscle mechanics and mechanotransduction processes. Hence, understanding how mechanical forces govern protein activity has developed into a central scientific question. In this context, single-molecule magnetic tweezers has recently emerged as a valuable experimental tool, offering the capability to measure single proteins over physiologically relevant forces and timescales. In this chapter, we present a detailed protocol for the assembly and operation of our magnetic tape head tweezers instrument, specifically tailored to investigate protein dynamics. Our instrument boasts a simplified microscope design and incorporates a magnetic tape head as the force-generating apparatus, facilitating precise force control and enhancing its temporal stability, enabling the study of single protein mechanics over extended timescales spanning several hours or even days. Moreover, its straightforward and cost-effective design ensures its accessibility to the wider scientific community. We anticipate that this technique will attract widespread interest within the growing field of mechanobiology and expect that this chapter will provide facilitated accessibility to this technology.
机械力在许多生物学背景下对于蛋白质功能至关重要——从细菌黏附到肌肉力学和力学转导过程。因此,了解机械力如何控制蛋白质活性已成为一个核心科学问题。在这种情况下,单分子磁镊最近已成为一种有价值的实验工具,能够在生理相关的力和时间尺度上测量单个蛋白质。在本章中,我们介绍了组装和操作我们的磁带头镊仪器的详细方案,该仪器专门针对研究蛋白质动力学而设计。我们的仪器具有简化的显微镜设计,并采用磁带头作为产生力的装置,从而能够精确地控制力并提高其时间稳定性,使我们能够在数小时甚至数天的时间跨度内研究单个蛋白质的力学性质。此外,其简单且具有成本效益的设计确保了更广泛的科学界能够使用该技术。我们预计,这项技术将在不断发展的机械生物学领域引起广泛关注,并期望本章将为使用这项技术提供便利。