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首页> 外文期刊>Molecular BioSystems >Encompassing receptor flexibility in virtual screening using ensemble docking-based hybrid QSAR: discovery of novel phytochemicals for BACE1 inhibition
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Encompassing receptor flexibility in virtual screening using ensemble docking-based hybrid QSAR: discovery of novel phytochemicals for BACE1 inhibition

机译:使用基于集合对接的杂交QSAR在虚拟筛选中包含受体灵活性:抑制BACE1的新型植物化学物质的发现

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摘要

Mimicking receptor flexibility during receptor-ligand binding is a challenging task in computational drug design since it is associated with a large increase in the conformational search space. In the present study, we have devised an in silico design strategy incorporating receptor flexibility in virtual screening to identify potential lead compounds as inhibitors for flexible proteins. We have considered BACE1 (β-secretase), a key target protease from a therapeutic perspective for Alzheimer's disease, as the highly flexible receptor. The protein undergoes significant conformational transitions from open to closed form upon ligand binding, which makes it a difficult target for inhibitor design. We have designed a hybrid structure-activity model containing both ligand based descriptors and energetic descriptors obtained from molecular docking based on a dataset of structurally diverse BACE1 inhibitors. An ensemble of receptor conformations have been used in the docking study, further improving the prediction ability of the model. The designed model that shows significant prediction ability judged by several statistical parameters has been used to screen an in house developed 3-D structural library of 731 phytochemicals. 24 highly potent, novel BACE1 inhibitors with predicted activity (K_i) ≤ 50 nM have been identified. Detailed analysis reveals pharmacophoric features of these novel inhibitors required to inhibit BACE1.
机译:在受体-配体结合过程中模仿受体的柔性是药物设计计算中的一项艰巨任务,因为它与构象搜索空间的大量增加有关。在本研究中,我们设计了一种计算机模拟设计策略,该技术在虚拟筛选中结合了受体的灵活性,以识别潜在的先导化合物作为柔性蛋白的抑制剂。从阿尔茨海默氏病的治疗角度来看,我们认为BACE1(β-分泌酶)是一种高度灵活的受体,它是治疗阿尔茨海默氏病的关键靶标蛋白酶。配体结合后,蛋白质会经历从开放形式到封闭形式的显着构象转变,这使其成为抑制剂设计的目标。我们设计了一个混合结构-活性模型,该模型包含基于配体的描述符和基于结构多样的BACE1抑制剂数据集从分子对接获得的高能描述符。在对接研究中使用了一组受体构象,进一步提高了模型的预测能力。设计模型显示出由几个统计参数判断的显着预测能力,已用于筛选内部开发的731种植物化学物质的3-D结构库。已经鉴定出24种高效,新颖的BACE1抑制剂,其预期活性(K_i)≤50 nM。详细的分析揭示了抑制BACE1所需的这些新型抑制剂的药效学特征。

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  • 来源
    《Molecular BioSystems》 |2014年第10期|2684-2692|共9页
  • 作者单位

    Saroj Mohan Institute of Technology, Guptipara, Hooghly, Pin 712512, India;

    Department of Biotechnology, School of Biotechnology & Biological Sciences, West Bengal University of Technology, BF-142, Salt Lake, Sector-1, Kolkata 700064, India;

    Department of Microbiology, University of Calcutta, 35 Ballygunge Circular Road,Kolkata - 700 019, India;

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