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从多个短 QM/MM MD 模拟中计算出的相对配体结合自由能。

Relative Ligand-Binding Free Energies Calculated from Multiple Short QM/MM MD Simulations.

机构信息

Department of Chemistry and Bioscience , Aalborg University , Frederik Bajers Vej 7H , DK-9220 Aalborg , Denmark.

Department of Theoretical Chemistry , Lund University , Chemical Centre , P.O. Box 124, SE-221 00 Lund , Sweden.

出版信息

J Chem Theory Comput. 2018 Jun 12;14(6):3228-3237. doi: 10.1021/acs.jctc.8b00081. Epub 2018 May 25.

Abstract

We have devised a new efficient approach to compute combined quantum mechanical (QM) and molecular mechanical (MM, i.e. QM/MM) ligand-binding relative free energies. Our method employs the reference-potential approach with free-energy perturbation both at the MM level (between the two ligands) and from MM to QM/MM (for each ligand). To ensure that converged results are obtained for the MM → QM/MM perturbations, explicit QM/MM molecular dynamics (MD) simulations are performed with two intermediate mixed states. To speed up the calculations, we utilize the fact that the phase space can be extensively sampled at the MM level. Therefore, we run many short QM/MM MD simulations started from snapshots of the MM simulations, instead of a single long simulation. As a test case, we study the binding of nine cyclic carboxylate ligands to the octa-acid deep cavitand. Only the ligand is in the QM system, treated with the semiempirical PM6-DH+ method. We show that for eight of the ligands, we obtain well converged results with short MD simulations (1-15 ps). However, in one case, the convergence is slower (∼50 ps) owing to a mismatch between the conformational preferences of the MM and QM/MM potentials. We test the effect of initial minimization, the need of equilibration, and how many independent simulations are needed to reach a certain precision. The results show that the present approach is about four times faster than using standard MM → QM/MM free-energy perturbations with the same accuracy and precision.

摘要

我们设计了一种新的有效方法来计算组合量子力学(QM)和分子力学(MM,即 QM/MM)配体结合相对自由能。我们的方法采用参考势能方法,在 MM 水平(两个配体之间)和从 MM 到 QM/MM(每个配体)进行自由能微扰。为了确保 MM→QM/MM 微扰得到收敛的结果,我们进行了两个中间混合态的显式 QM/MM 分子动力学(MD)模拟。为了加速计算,我们利用在 MM 水平上可以广泛采样相空间的事实。因此,我们运行了许多从 MM 模拟快照开始的短 QM/MM MD 模拟,而不是单个长模拟。作为一个测试案例,我们研究了九个环状羧酸配体与八元深穴 Cavitand 的结合。只有配体处于 QM 体系中,用半经验 PM6-DH+方法处理。我们表明,对于其中的八个配体,我们可以通过短 MD 模拟(1-15 ps)获得很好的收敛结果。然而,在一种情况下,由于 MM 和 QM/MM 势的构象偏好不匹配,收敛速度较慢(约 50 ps)。我们测试了初始最小化的效果、平衡的必要性以及达到一定精度需要进行多少次独立模拟。结果表明,与使用相同精度和准确性的标准 MM→QM/MM 自由能微扰相比,本方法的速度快约四倍。

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