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The role of backbone conformational heat capacity in protein stability: temperature dependent dynamics of the B1 domain of Streptococcal protein G.

机译:骨架构象热容量在蛋白质稳定性中的作用:链球菌G蛋白B1域的温度依赖性动力学。

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摘要

The contributions of backbone NH group dynamics to the conformational heat capacity of the B1 domain of Streptococcal protein G have been estimated from the temperature dependence of 15N NMR-derived order parameters. Longitudinal (R1) and transverse (R2) relaxation rates, transverse cross-relaxation rates (eta(xy)), and steady state [1H]-15N nuclear Overhauser effects were measured at temperatures of 0, 10, 20, 30, 40, and 50 degrees C for 89-100% of the backbone secondary amide nitrogen nuclei in the B1 domain. The ratio R2/eta(xy) was used to identify nuclei for which conformational exchange makes a significant contribution to R2. Relaxation data were fit to the extended model-free dynamics formalism, incorporating an axially symmetric molecular rotational diffusion tensor. The temperature dependence of the order parameter (S2) was used to calculate the contribution of each NH group to conformational heat capacity (Cp) and a characteristic temperature (T*), representing the density of conformational energy states accessible to each NH group. The heat capacities of the secondary structure regions of the B1 domain are significantly higher than those of comparable regions of other proteins, whereas the heat capacities of less structured regions are similar to those in other proteins. The higher local heat capacities are estimated to contribute up to approximately 0.8 kJ/mol K to the total heat capacity of the B1 domain, without which the denaturation temperature would be approximately 9 degrees C lower (78 degrees C rather than 87 degrees C). Thus, variation of backbone conformational heat capacity of native proteins may be a novel mechanism that contributes to high temperature stabilization of proteins.
机译:从15 N NMR衍生的有序参数的温度依赖性估计了主链NH基团动力学对链球菌蛋白G B1结构域构象热容量的贡献。纵向(R1)和横向(R2)弛豫率,横向交叉松弛率(eta(xy))和稳态[1H] -15N核Overhauser效应在0、10、20、30、40, B1域中89-100%的骨架仲酰胺氮核为50°C。使用比率R2 / eta(xy)来确定构象交换对R2有重要贡献的核。松弛数据符合扩展的无模型动力学形式,并结合了轴对称分子旋转扩散张量。阶数参数(S2)的温度依赖性用于计算每个NH基团对构象热容(Cp)和特征温度(T *)的贡献,代表每个NH基团可访问的构象能态的密度。 B1结构域的二级结构区域的热容显着高于其他蛋白质的可比区域,而结构较少的区域的热容与其他蛋白质类似。据估计,较高的局部热容量对B1域的总热容量贡献高达约0.8 kJ / mol K,否则,其变性温度将降低约9摄氏度(78摄氏度而不是87摄氏度)。因此,天然蛋白质的骨架构象热容量的变化可能是有助于蛋白质高温稳定的新机制。

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