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量子力学与分子力学方法在计算类药性片段应变能方面的比较。

A Comparison of Quantum and Molecular Mechanical Methods to Estimate Strain Energy in Druglike Fragments.

机构信息

Department of Discovery Chemistry, Genentech, Inc. , 1 DNA Way, South San Francisco, California 94080, United States.

出版信息

J Chem Inf Model. 2017 Jun 26;57(6):1265-1275. doi: 10.1021/acs.jcim.6b00614. Epub 2017 May 17.

DOI:10.1021/acs.jcim.6b00614
PMID:28485585
Abstract

Reducing internal strain energy in small molecules is critical for designing potent drugs. Quantum mechanical (QM) and molecular mechanical (MM) methods are often used to estimate these energies. In an effort to determine which methods offer an optimal balance in accuracy and performance, we have carried out torsion scan analyses on 62 fragments. We compared nine QM and four MM methods to reference energies calculated at a higher level of theory: CCSD(T)/CBS single point energies (coupled cluster with single, double, and perturbative triple excitations at the complete basis set limit) calculated on optimized geometries using MP2/6-311+G**. The results show that both the more recent MP2.X perturbation method as well as MP2/CBS perform quite well. In addition, combining a Hartree-Fock geometry optimization with a MP2/CBS single point energy calculation offers a fast and accurate compromise when dispersion is not a key energy component. Among MM methods, the OPLS3 force field accurately reproduces CCSD(T)/CBS torsion energies on more test cases than the MMFF94s or Amber12:EHT force fields, which struggle with aryl-amide and aryl-aryl torsions. Using experimental conformations from the Cambridge Structural Database, we highlight three example structures for which OPLS3 significantly overestimates the strain. The energies and conformations presented should enable scientists to estimate the expected error for the methods described and we hope will spur further research into QM and MM methods.

摘要

降低小分子的内应变能对于设计有效药物至关重要。量子力学(QM)和分子力学(MM)方法通常用于估计这些能量。为了确定哪种方法在准确性和性能方面具有最佳的平衡,我们对 62 个片段进行了扭转扫描分析。我们将九种 QM 和四种 MM 方法与更高理论水平(在优化几何形状上使用 MP2/6-311+G**计算的 CCSD(T)/CBS 单点能(在完全基组极限下具有单、双和微扰三重激发的耦合簇))计算的参考能量进行了比较。结果表明,最近的 MP2.X 微扰方法和 MP2/CBS 都表现得相当好。此外,当色散不是关键能量组成部分时,结合 Hartree-Fock 几何优化和 MP2/CBS 单点能计算可以提供快速而准确的折衷方案。在 MM 方法中,OPLS3 力场比 MMFF94s 或 Amber12:EHT 力场更准确地再现了 CCSD(T)/CBS 扭转能,后者在芳基酰胺和芳基-芳基扭转方面存在困难。使用剑桥结构数据库中的实验构象,我们突出了三个结构示例,对于这些结构,OPLS3 大大高估了应变。所呈现的能量和构象应使科学家能够估计所描述方法的预期误差,我们希望这将进一步推动 QM 和 MM 方法的研究。

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