Department of Pharmaceutical Sciences, University of Maryland School of Pharmacy, Baltimore, Maryland 21201, United States.
J Phys Chem B. 2024 Nov 28;128(47):11616-11624. doi: 10.1021/acs.jpcb.4c05971. Epub 2024 Nov 12.
All-atom constant pH molecular dynamics simulations offer a powerful tool for understanding pH-mediated and proton-coupled biological processes. As the protonation equilibria of protein side chains are shifted by electrostatic interactions and desolvation energies, p values calculated from the constant pH simulations may be sensitive to the underlying protein force field and water model. Here we investigated the force field dependence of the all-atom particle mesh Ewald (PME) continuous constant pH (PME-CpHMD) simulations of a mini-protein BBL. The replica-exchange titration simulations based on the Amber ff19sb and ff14sb force fields with the respective water models showed significantly overestimated p downshifts for a buried histidine (His166) and for two glutamic acids (Glu141 and Glu161) that are involved in salt-bridge interactions. These errors (due to undersolvation of neutral histidines and overstabilization of salt bridges) are consistent with the previously reported p's based on the CHARMM c22/CMAP force field, albeit in larger magnitudes. The p calculations also demonstrated that ff19sb with OPC water is significantly more accurate than ff14sb with TIP3P water, and the salt-bridge related p downshifts can be partially alleviated by the atom-pair specific Lennard-Jones corrections (NBFIX). Together, these data suggest that the accuracies of the protonation equilibria of proteins from constant pH simulations can significantly benefit from improvements of force fields.
全原子恒定 pH 分子动力学模拟为理解 pH 介导和质子耦合的生物过程提供了强大的工具。由于蛋白质侧链的质子化平衡受到静电相互作用和去溶剂化能的影响,因此从恒定 pH 模拟中计算出的 p 值可能对基础蛋白质力场和水模型敏感。在这里,我们研究了全原子粒子网格 Ewald(PME)连续恒定 pH(PME-CpHMD)模拟 BB L 迷你蛋白的力场依赖性。基于 Amber ff19sb 和 ff14sb 力场的 replica-exchange 滴定模拟以及各自的水模型显示,埋藏的组氨酸(His166)和两个参与盐桥相互作用的谷氨酸(Glu141 和 Glu161)的 p 值显著低估。这些误差(由于中性组氨酸的欠溶剂化和盐桥的过度稳定)与之前基于 CHARMM c22/CMAP 力场报告的 p 值一致,尽管误差幅度更大。p 值计算还表明,与 TIP3P 水相比,OPC 水的 ff19sb 更准确,并且通过原子对特定 Lennard-Jones 校正(NBFIX)可以部分缓解盐桥相关的 p 值下降。总之,这些数据表明,从恒定 pH 模拟中蛋白质质子化平衡的准确性可以从力场的改进中显著受益。