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预测细胞色素 P450 异生物质代谢:基于配体分子轨道分析的系留对接和反应性。

Prediction of cytochrome P450 xenobiotic metabolism: tethered docking and reactivity derived from ligand molecular orbital analysis.

机构信息

Unilever Centre for Molecular Science Informatics, Department of Chemistry, Lensfield Road, Cambridge, CB2 1EW, United Kingdom.

出版信息

J Chem Inf Model. 2013 Jun 24;53(6):1294-305. doi: 10.1021/ci400058s. Epub 2013 May 24.

Abstract

Metabolism of xenobiotic and endogenous compounds is frequently complex, not completely elucidated, and therefore often ambiguous. The prediction of sites of metabolism (SoM) can be particularly helpful as a first step toward the identification of metabolites, a process especially relevant to drug discovery. This paper describes a reactivity approach for predicting SoM whereby reactivity is derived directly from the ground state ligand molecular orbital analysis, calculated using Density Functional Theory, using a novel implementation of the average local ionization energy. Thus each potential SoM is sampled in the context of the whole ligand, in contrast to other popular approaches where activation energies are calculated for a predefined database of molecular fragments and assigned to matching moieties in a query ligand. In addition, one of the first descriptions of molecular dynamics of cytochrome P450 (CYP) isoforms 3A4, 2D6, and 2C9 in their Compound I state is reported, and, from the representative protein structures obtained, an analysis and evaluation of various docking approaches using GOLD is performed. In particular, a covalent docking approach is described coupled with the modeling of important electrostatic interactions between CYP and ligand using spherical constraints. Combining the docking and reactivity results, obtained using standard functionality from common docking and quantum chemical applications, enables a SoM to be identified in the top 2 predictions for 75%, 80%, and 78% of the data sets for 3A4, 2D6, and 2C9, respectively, results that are accessible and competitive with other recently published prediction tools.

摘要

外源化合物和内源性化合物的代谢通常很复杂,尚未完全阐明,因此常常存在歧义。代谢部位(SoM)的预测可以作为鉴定代谢产物的第一步特别有帮助,这一过程尤其与药物发现相关。本文描述了一种用于预测 SoM 的反应性方法,其中反应性直接源自基态配体分子轨道分析,使用密度泛函理论计算,使用平均局部电离能的新实现。因此,每个潜在的 SoM 都在整个配体的背景下进行采样,与其他流行的方法形成对比,后者为预定义的分子片段数据库计算活化能,并将其分配给查询配体中的匹配部分。此外,本文首次报道了细胞色素 P450(CYP)同工酶 3A4、2D6 和 2C9 在其化合物 I 状态下的分子动力学的描述,并从获得的代表性蛋白质结构中,使用 GOLD 对各种对接方法进行了分析和评估。特别是,描述了一种共价对接方法,并结合使用球形约束模拟 CYP 和配体之间的重要静电相互作用。结合使用标准对接和量子化学应用程序的功能获得的对接和反应性结果,能够在 3A4、2D6 和 2C9 的数据集的前 2 个预测中识别 SoM,分别为 75%、80%和 78%,这些结果是可访问的,并且与其他最近发布的预测工具竞争。

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