Ryde U
Chemical Centre, Lund University, Lund, Sweden.
Methods Enzymol. 2016;577:119-58. doi: 10.1016/bs.mie.2016.05.014. Epub 2016 Jun 28.
In this chapter, I discuss combined quantum mechanics (QM) and molecular mechanics (MM; QM/MM) calculations for proteins. In QM/MM, a small but interesting part of the protein is treated by accurate QM methods, whereas the remainder is treated by faster MM methods. The prime problems with QM/MM calculations are bonds between the QM and MM systems, the selection of the QM system, and the local-minima problem. The two first problems can be solved by the big-QM approach, including in the QM calculation all groups within 4.5-6Å of the active site and all buried charges in the protein. The third problem can be solved by calculating free energies. It is important to study QM/MM energy components to ensure that the results are stable and reliable. They can also be used to understand the reaction and the effect of the surroundings, eg, by dividing the catalytic effect into bonded, van der Waals, electrostatic, and geometric components and to deduce which parts of the protein contribute most to the catalysis. It should be ensured that the QM calculations are reliable and converged by extending the basis set to quadruple-zeta quality, including a proper treatment of dispersion, as well as years experience and method development calculations with both pure and hybrid density functional theory methods. If the latter give differing results, calibration with high-level QM methods is needed. Reactions that change the net charge should be avoided. QM/MM calculations can be combined with experimental methods.
在本章中,我将讨论蛋白质的量子力学(QM)与分子力学(MM;QM/MM)相结合的计算方法。在QM/MM方法中,蛋白质中一小部分有趣的区域采用精确的量子力学方法处理,而其余部分则采用计算速度更快的分子力学方法处理。QM/MM计算的主要问题包括量子力学和分子力学体系之间的化学键、量子力学体系的选择以及局部极小值问题。前两个问题可以通过大量子力学方法解决,即将活性位点周围4.5 - 6埃范围内的所有基团以及蛋白质中的所有埋藏电荷都纳入量子力学计算。第三个问题可以通过计算自由能来解决。研究QM/MM能量成分对于确保结果的稳定性和可靠性很重要。它们还可用于理解反应以及周围环境的影响,例如,将催化作用分为键合、范德华力、静电和几何成分,从而推断蛋白质的哪些部分对催化作用贡献最大。应通过将基组扩展到四重ζ质量、适当处理色散以及多年使用纯密度泛函理论方法和杂化密度泛函理论方法进行经验积累和方法开发计算,来确保量子力学计算的可靠性和收敛性。如果后者给出不同的结果,则需要使用高级量子力学方法进行校准。应避免发生改变净电荷的反应。QM/MM计算可以与实验方法相结合。