Das Susanta, Nam Kwangho, Major Dan Thomas
Department of Chemistry , Bar-Ilan University , Ramat-Gan 5290002 , Israel.
Department of Chemistry , Umeå University , 901 87 Umeå , Sweden.
J Chem Theory Comput. 2018 Mar 13;14(3):1695-1705. doi: 10.1021/acs.jctc.7b00964. Epub 2018 Mar 1.
In recent years, a number of quantum mechanical-molecular mechanical (QM/MM) enzyme studies have investigated the dependence of reaction energetics on the size of the QM region using energy and free energy calculations. In this study, we revisit the question of QM region size dependence in QM/MM simulations within the context of energy and free energy calculations using a proton transfer in a DNA base pair as a test case. In the simulations, the QM region was treated with a dispersion-corrected AM1/d-PhoT Hamiltonian, which was developed to accurately describe phosphoryl and proton transfer reactions, in conjunction with an electrostatic embedding scheme using the particle-mesh Ewald summation method. With this rigorous QM/MM potential, we performed rather extensive QM/MM sampling, and found that the free energy reaction profiles converge rapidly with respect to the QM region size within ca. ±1 kcal/mol. This finding suggests that the strategy of QM/MM simulations with reasonably sized and selected QM regions, which has been employed for over four decades, is a valid approach for modeling complex biomolecular systems. We point to possible causes for the sensitivity of the energy and free energy calculations to the size of the QM region, and potential implications.
近年来,一些量子力学-分子力学(QM/MM)酶研究通过能量和自由能计算,考察了反应能量学对QM区域大小的依赖性。在本研究中,我们以DNA碱基对中的质子转移作为测试案例,在能量和自由能计算的背景下,重新审视QM/MM模拟中QM区域大小依赖性的问题。在模拟中,QM区域采用经色散校正的AM1/d-PhoT哈密顿量进行处理,该哈密顿量旨在精确描述磷酰基和质子转移反应,并结合使用粒子网格埃瓦尔德求和方法的静电嵌入方案。利用这种严格的QM/MM势,我们进行了相当广泛的QM/MM采样,发现自由能反应剖面在约±1千卡/摩尔范围内,相对于QM区域大小迅速收敛。这一发现表明,四十多年来一直采用的具有合理大小和选定QM区域的QM/MM模拟策略,是一种用于模拟复杂生物分子系统的有效方法。我们指出了能量和自由能计算对QM区域大小敏感的可能原因以及潜在影响。