Mechanobiology Institute, National University of Singapore, Singapore, Singapore.
Department of Physics, National University of Singapore, Singapore, Singapore.
Biophys J. 2023 Oct 3;122(19):3860-3868. doi: 10.1016/j.bpj.2023.08.004. Epub 2023 Aug 10.
Single-molecule manipulation technologies have proven to be powerful tools for studying the molecular mechanisms and physical principles underlying many essential biological processes. However, achieving wide-range temperature control has been challenging due to thermal drift that undermines the stability of the instrument. This limitation has made it difficult to study biomolecules from thermophiles at their physiologically relevant temperatures and has also hindered the convenient measurement of temperature-sensitive biomolecular interactions and the fundamental thermodynamic properties of biomolecules. In this work, we present a novel design of magnetic tweezers that uses a reflective coverslip and dry objective lens to insulate the heat conductance between the sample and the objective lens, enabling stable temperature changes from ambient up to 70°C during experiments without significant thermal drift of the instrument. The performance of the technology is demonstrated through the quantification of the free energy change of a DNA hairpin over a temperature range of 22°C-72°C, from which the entropy and enthalpy changes are determined.
单分子操控技术已被证明是研究许多重要生物过程背后的分子机制和物理原理的有力工具。然而,由于热漂移会破坏仪器的稳定性,实现宽范围的温度控制一直具有挑战性。这一限制使得难以在生理相关温度下研究嗜热生物分子,并阻碍了对温度敏感的生物分子相互作用以及生物分子基本热力学性质的方便测量。在这项工作中,我们提出了一种新型的磁镊设计,该设计使用反射盖玻片和干式物镜来隔离样品和物镜之间的热导,从而实现在实验过程中在环境温度到 70°C 之间的稳定温度变化,而仪器没有明显的热漂移。该技术的性能通过量化 DNA 发夹在 22°C-72°C 温度范围内的自由能变化来证明,从中可以确定熵和焓的变化。