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首页> 外文期刊>Organic & biomolecular chemistry >Receptor- and ligand-based study of fullerene analogues: comprehensive computational approach including quantum-chemical, QSAR and molecular docking simulationst
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Receptor- and ligand-based study of fullerene analogues: comprehensive computational approach including quantum-chemical, QSAR and molecular docking simulationst

机译:基于富勒烯类似物的基于受体和配体的研究:包括量子化学,QSAR和分子对接模拟的综合计算方法

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摘要

Fullerene and its derivatives have potential antiviral activity due to their specific binding interactions with biological molecules. In this study fullerene derivatives were investigated by the synergic combination of three approaches: quantum-mechanical calculations, protein-ligand docking and quantitative structure-activity relationship methods. The protein-ligand docking studies and improved structure-activity models have been able both to predict binding affinities for the set of fullerene-C_(60) derivatives and to help in finding mechanisms of fullerene derivative interactions with human immunodeficiency virus type 1 aspartic protease, HIV-1 PR. Protein-ligand docking revealed several important molecular fragments that are responsible for the interaction with HIV-1 PR. In addition, a density functional theory method has been utilized to identify the optimal geometries and predict physico-chemical parameters of the studied compounds. The 5-variable GA-MLRA based model showed the best predictive ability (r~2_(training) = 0.882 and r~2(test) = 0.738), with high internal and external correlation coefficients.
机译:富勒烯及其衍生物由于与生物分子的特异性结合相互作用而具有潜在的抗病毒活性。在这项研究中,通过三种方法的协同组合研究了富勒烯衍生物:量子力学计算,蛋白质-配体对接和定量结构-活性关系方法。蛋白质-配体对接研究和改进的结构活性模型既能够预测富勒烯-C_(60)衍生物集的结合亲和力,也有助于发现富勒烯衍生物与人类免疫缺陷病毒1型天冬氨酸蛋白酶的相互作用机制, HIV-1 PR。蛋白质-配体对接揭示了几个重要的分子片段,这些片段负责与HIV-1 PR的相互作用。此外,密度泛函理论方法已被用来确定最佳的几何形状并预测所研究化合物的理化参数。基于5变量GA-MLRA的模型显示出最佳的预测能力(r〜2_(training)= 0.882和r〜2(test)= 0.738),并且具有较高的内部和外部相关系数。

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  • 来源
    《Organic & biomolecular chemistry》 |2013年第35期|5798-5808|共11页
  • 作者单位

    Interdisciplinary Center for Nanotoxicity, Department of Chemistry and Biochemistry, Jackson State University, 1400 J.R. Lynch Street, P.O. Box 17910, Jackson, MS 39217, USA;

    Interdisciplinary Center for Nanotoxicity, Department of Chemistry and Biochemistry, Jackson State University, 1400 J.R. Lynch Street, P.O. Box 17910, Jackson, MS 39217, USA;

    Interdisciplinary Center for Nanotoxicity, Department of Chemistry and Biochemistry, Jackson State University, 1400 J.R. Lynch Street, P.O. Box 17910, Jackson, MS 39217, USA,Department of Civil and Environmental Engineering, Jackson State University, 1400 J.R. Lynch Street, P.O. Box 17068, Jackson, MS 39217, USA;

    Department of Civil and Environmental Engineering, Jackson State University, 1400 J.R. Lynch Street, P.O. Box 17068, Jackson, MS 39217, USA;

    Interdisciplinary Center for Nanotoxicity, Department of Chemistry and Biochemistry, Jackson State University, 1400 J.R. Lynch Street, P.O. Box 17910, Jackson, MS 39217, USA;

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