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首页> 外文期刊>Current Pharmaceutical Design >Development, Validation, and Applications of Anisotropic Polarizable Molecular Mechanics to Study Ligand and Drug-Receptor Interactions
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Development, Validation, and Applications of Anisotropic Polarizable Molecular Mechanics to Study Ligand and Drug-Receptor Interactions

机译:各向异性极化分子力学研究,配体和药物-受体相互作用的发展,验证和应用。

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A correct representation of intermolecular interaction energies is necessary for reliable drug-receptor docking studies. While ab initio quantum chemistry with extended basis sets is the most accurate tool for that purpose, its use is precluded for very large molecular complexes. This constitutes the incentive for the development of accurate molecular mechanics potentials, in which the first-order electrostatic, and the second-order polarization energy contributions, are of essential importance. In this paper, we review the most important steps in the development of anisotropic, polarizable molecular mechanics (APMM) procedures. Among these, we illustrate validation tests of the ab initio-grounded, polarizable molecular mechanics potential, SIBFA (Sum of Interactions Between Fragments Ab initio computed). These are done by comparisons with parallel quantum-chemical (QC) results on representative multiply hydrogen-bonded complexes and polycoordinated complexes of one, or of two, divalent metal cations. For both kinds of complexes, the need to reproduce the non-additivity of the QC interaction energies is emphasized. One difficulty arises upon handling flexible molecules, due to the need to account simultaneously and consistently for the onset of inter- and intra-molecular polarization and charge-transfer effects. A new approach in the context of SIBFA was recently developed towards this aim, and tested in two cases of conformation-dependent cation-ligand interaction energies. The first relates to the complexes formed between the mecapto-carboxamide anion, an essential building-block of several Zn-metalloenzyme inhibitors, and Zn(II). The second relates to the complexes of the tetra-anionic pyrophosphate anion, a key building-block of ATP and GTP, with one or two divalent Zn(II) cations used as a probe. In the domain of applications, two recent studies are then presented. The first is the docking of the captopril drug to the active site of the binuclear Zn(II)- β-lactamase enzyme. The second is the complex of a non-hydrolyzable analog of ATP with the active site of a binuclear Mg(II)-dependent kinase. An extension to an open-shell cation, Cu(II), is finally presented. The encouraging results presented in this review show that APMM procedures could be used in large-scale studies of ligand and drug-receptor interactions.
机译:分子间相互作用能的正确表示对于可靠的药物受体对接研究是必要的。尽管具有扩展基础集的从头进行量子化学是达到该目的的最准确工具,但对于非常大的分子配合物,则不能使用它。这构成了发展精确分子力学势的动力,其中一阶静电和二阶极化能的贡献至关重要。在本文中,我们回顾了各向异性,可极化分子力学(APMM)程序开发中最重要的步骤。其中,我们举例说明了从头算起,可极化的分子力学潜能SIBFA(从头算起的片段之间相互作用的总和)的验证测试。通过与平行的量子化学(QC)结果进行比较,比较了代表性的多重氢键合配合物和一种或两种二价金属阳离子的多配位配合物。对于这两种络合物,都强调需要重现QC相互作用能的非可加性。由于需要同时一致地考虑分子间和分子内极化和电荷转移效应的发生,因此在处理柔性分子时会遇到一个困难。针对这一目标,最近在SIBFA中开发了一种新方法,并在两种依赖构象的阳离子-配体相互作用能的情况下进行了测试。第一个涉及在巯基羧酰胺阴离子(几种锌金属酶抑制剂的重要组成部分)与Zn(II)之间形成的络合物。第二种涉及四阴离子焦磷酸根阴离子(ATP和GTP的重要组成部分)与一个或两个二价Zn(II)阳离子用作探针的配合物。在应用领域,然后提出了两项​​最新研究。首先是卡托普利药物与双核Zn(II)-β-内酰胺酶活性位点的对接。第二个是ATP的不可水解类似物与双核Mg(II)依赖激酶的活性位点的复合物。最后提出了对开壳阳离子Cu(II)的扩展。这篇综述中令人鼓舞的结果表明,APMM程序可用于配体和药物-受体相互作用的大规模研究。

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