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用于计算C-H键解离能以衡量代谢稳定性的快速量子力学模型。

Rapid quantum mechanical models for the computational estimation of C-H bond dissociation energies as a measure of metabolic stability.

作者信息

Lewin John L, Cramer Christopher J

机构信息

Department of Chemistry and Supercomputer Institute, University of Minnesota, Minneapolis, Minnesota 55455-0431, USA.

出版信息

Mol Pharm. 2004 Mar-Apr;1(2):128-35. doi: 10.1021/mp049977r.

Abstract

Several relatively inexpensive levels of theory are surveyed together with alternative algorithmic methods for the estimation of C-H bond dissociation energies (BDEs), such energies being useful for the prediction of metabolic stability in drug-like molecules. In particular, bond stretching potentials of several C-H bonds are computed using the AM1, PM3, HF/MIDI!, and B3LYP/MIDI! levels of electronic structure theory, and selected points are fit to Morse and parabolic potentials. BDEs computed by an AM1 fit to the Morse function show the smallest mean unsigned error in prediction (+/- 3-4 kcal/mol) over 32 diverse C-H bonds. An alternative method for correlating the AM1 parabolic force constant from a two-point unrelaxed potential provides only a slightly decreased accuracy and is computationally particularly inexpensive. Both methods should prove to be useful for the rapid in silico screening of drug-like molecules for metabolic stability to C-H bond oxidizing enzymes.

摘要

我们考察了几种相对廉价的理论水平以及用于估算C-H键解离能(BDEs)的替代算法方法,这些能量对于预测类药物分子的代谢稳定性很有用。特别地,使用AM1、PM3、HF/MIDI! 和B3LYP/MIDI! 电子结构理论水平计算了几个C-H键的键伸缩势能,并将选定的点拟合到莫尔斯势和抛物线势。通过将AM1拟合到莫尔斯函数计算得到的BDEs在预测32种不同C-H键时显示出最小的平均绝对误差(±3-4千卡/摩尔)。一种从两点未松弛势关联AM1抛物线力常数的替代方法仅略微降低了准确性,并且计算成本特别低。这两种方法都应被证明对于快速虚拟筛选类药物分子对C-H键氧化酶的代谢稳定性很有用。

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