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电子密度描述符作为定量结构-活性/性质关系和药物设计中的预测因子。

Electron-density descriptors as predictors in quantitative structure--activity/property relationships and drug design.

机构信息

Department of Chemistry and Physics, Mount Saint Vincent University, Halifax, Nova Scotia, Canada B3M 2J6.

出版信息

Future Med Chem. 2011 Jun;3(8):969-94. doi: 10.4155/fmc.11.65.

Abstract

The use of electron density-based molecular descriptors in drug research, particularly in quantitative structure--activity relationships/quantitative structure--property relationships studies, is reviewed. The exposition starts by a discussion of molecular similarity and transferability in terms of the underlying electron density, which leads to a qualitative introduction to the quantum theory of atoms in molecules (QTAIM). The starting point of QTAIM is the topological analysis of the molecular electron-density distributions to extract atomic and bond properties that characterize every atom and bond in the molecule. These atomic and bond properties have considerable potential as bases for the construction of robust quantitative structure--activity/property relationships models as shown by selected examples in this review. QTAIM is applicable to the electron density calculated from quantum-chemical calculations and/or that obtained from ultra-high resolution x-ray diffraction experiments followed by nonspherical refinement. Atomic and bond properties are introduced followed by examples of application of each of these two families of descriptors. The review ends with a study whereby the molecular electrostatic potential, uniquely determined by the density, is used in conjunction with atomic properties to elucidate the reasons for the biological similarity of bioisosteres.

摘要

本文回顾了基于电子密度的分子描述符在药物研究中的应用,特别是在定量构效关系/定量构性关系研究中的应用。本文首先讨论了基于电子密度的分子相似性和可转移性,从而对分子中的原子量子理论(QTAIM)进行了定性介绍。QTAIM 的起点是对分子电子密度分布进行拓扑分析,以提取原子和键特性,这些特性可以表征分子中的每个原子和键。正如本文中的选定示例所示,这些原子和键特性具有作为构建稳健定量构效/性质关系模型的基础的巨大潜力。QTAIM 适用于从量子化学计算中计算得出的电子密度,和/或通过超高分辨率 X 射线衍射实验获得的电子密度,然后进行非球型精修。本文介绍了原子和键特性,并举例说明了这两种描述符家族的每一种的应用。本文最后进行了一项研究,使用唯一由密度确定的分子静电势与原子特性相结合,阐明了生物等排体生物相似性的原因。

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