Institute for Biological and Medical Engineering, Schools of Engineering, Medicine and Biological Sciences, Pontificia Universidad Católica de Chile, Santiago, Chile; ANID - Millennium Science Initiative Program - Millennium Institute for Integrative Biology (iBio), Santiago, Chile; Departamento de Bioquímica y Biología Molecular, Facultad de Ciencias Químicas y Farmacéuticas, Universidad de Chile, Santiago, Chile.
University of South-Eastern Norway, Porsgrunn, Norway.
Biophys J. 2023 Feb 7;122(3):513-521. doi: 10.1016/j.bpj.2022.12.034. Epub 2022 Dec 30.
Temperature is a useful system variable to gather kinetic and thermodynamic information from proteins. Usually, free energy and the associated entropic and enthalpic contributions are obtained by quantifying the conformational equilibrium based on melting experiments performed in bulk conditions. Such experiments are suitable only for those small single-domain proteins whose side reactions of irreversible aggregation are unlikely to occur. Here, we avoid aggregation by pulling single-protein molecules in a thermo-regulated optical tweezers. Thus, we are able to explore the temperature dependence of the thermodynamic and kinetic parameters of MJ0366 from Methanocaldococcus jannaschii at the single-molecule level. By performing force-ramp experiments between 2°C and 40°C, we found that MJ0366 has a nonlinear dependence of free energy with temperature and a specific heat change of 2.3 ± 1.2 kcal/molK. These thermodynamic parameters are compatible with a two-state unfolding/refolding mechanism for MJ0366. However, the kinetics measured as a function of the temperature show a complex behavior, suggesting a three-state folding mechanism comprising a high-energy intermediate state. The combination of two perturbations, temperature and force, reveals a high-energy species in the folding mechanism of MJ0366 not detected in force-ramp experiments at constant temperature.
温度是一种有用的系统变量,可以从蛋白质中收集动力学和热力学信息。通常,通过在体相条件下进行的熔融实验来量化构象平衡,可以获得自由能以及相关的熵和焓贡献。这些实验仅适用于那些不太可能发生不可逆聚集的侧反应的小单域蛋白质。在这里,我们通过在热调节光镊中拉动单蛋白分子来避免聚集。因此,我们能够在单分子水平上探索来自 Methanocaldococcus jannaschii 的 MJ0366 的热力学和动力学参数随温度的变化。通过在 2°C 和 40°C 之间进行力斜坡实验,我们发现 MJ0366 的自由能与温度呈非线性关系,比热变化为 2.3 ± 1.2 kcal/molK。这些热力学参数与 MJ0366 的两态展开/折叠机制兼容。然而,作为温度函数测量的动力学表现出复杂的行为,表明折叠机制中存在三态折叠机制,包括高能中间态。温度和力的两种扰动的组合揭示了在恒定温度下的力斜坡实验中未检测到的 MJ0366 折叠机制中的高能物种。