Yamamori Yu, Ishizuka Ryosuke, Karino Yasuhito, Sakuraba Shun, Matubayasi Nobuyuki
Division of Chemical Engineering, Graduate School of Engineering Science, Osaka University, Toyonaka, Osaka 560-8531, Japan.
RIKEN Quantitative Biology Center, Kobe, Hyogo 650-0047, Japan.
J Chem Phys. 2016 Feb 28;144(8):085102. doi: 10.1063/1.4941945.
Energetics was analyzed for cytochrome c in pure-water solvent and in a urea-water mixed solvent to elucidate the solvation effect in the structural variation of the protein. The solvation free energy was computed through all-atom molecular dynamics simulation combined with the solution theory in the energy representation, and its correlations were examined over sets of protein structures against the electrostatic and van der Waals components in the average interaction energy of the protein with the solvent and the excluded-volume component in the solvation free energy. It was observed in pure-water solvent that the solvation free energy varies in parallel to the electrostatic component with minor roles played by the van der Waals and excluded-volume components. The effect of urea on protein structure was then investigated in terms of the free-energy change upon transfer of the protein solute from pure-water solvent to the urea-water mixed solvent. The decomposition of the transfer free energy into the contributions from urea and water showed that the urea contribution is partially canceled by the water contribution and governs the total free energy of transfer. When correlated against the change in the solute-solvent interaction energy upon transfer and the corresponding changes in the electrostatic, van der Waals, and excluded-volume components, the transfer free energy exhibited strong correlations with the total change in the solute-solvent energy and its van der Waals component. The solute-solvent energy was decomposed into the contributions from the protein backbone and side chain, furthermore, and neither of the contributions was seen to be decisive in the correlation to the transfer free energy.
为阐明溶剂化作用对蛋白质结构变化的影响,对细胞色素c在纯水溶剂和尿素-水混合溶剂中的能量学进行了分析。通过全原子分子动力学模拟结合能量表示中的溶液理论计算溶剂化自由能,并针对蛋白质结构集,考察其与蛋白质-溶剂平均相互作用能中的静电和范德华成分以及溶剂化自由能中的排除体积成分之间的相关性。在纯水溶剂中观察到,溶剂化自由能与静电成分平行变化,范德华和排除体积成分起次要作用。然后根据蛋白质溶质从纯水溶剂转移到尿素-水混合溶剂时的自由能变化,研究了尿素对蛋白质结构的影响。将转移自由能分解为尿素和水的贡献表明,尿素的贡献部分被水的贡献抵消,并决定了转移的总自由能。当与转移时溶质-溶剂相互作用能的变化以及静电、范德华和排除体积成分的相应变化相关联时,转移自由能与溶质-溶剂能量及其范德华成分的总变化呈现出强相关性。此外,溶质-溶剂能量被分解为蛋白质主链和侧链的贡献,且在与转移自由能的相关性中,这两种贡献均未起决定性作用。