首页> 外文期刊>Journal of Biomolecular Structure and Dynamics >In silico studies on potential MCF-7 inhibitors: a combination of pharmacophore and 3D-QSAR modeling, virtual screening, molecular docking, and pharmacokinetic analysis
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In silico studies on potential MCF-7 inhibitors: a combination of pharmacophore and 3D-QSAR modeling, virtual screening, molecular docking, and pharmacokinetic analysis

机译:在潜在的MCF-7抑制剂的硅研究中:药物团和3D-QSAR建模,虚拟筛选,分子对接和药代动力学分析的组合

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摘要

Gallic acid and its derivatives exhibit a diverse range of biological applications, including anti-cancer activity. In this work, a data-set of forty-six molecules containing the galloyl moiety, and known to show anticarcinogenic activity against the MCF-7 human cancer cell line, have been chosen for pharmacophore modeling and 3D-Quantitative Structure Activity Relationship (3D-QSAR) studies. A tree-based partitioning algorithm has been used to find common pharmacophore hypotheses. The QSAR model was generated for three, four, and five featured hypotheses with increasing PLS factors and analyzed. Results for five featured hypotheses with three acceptors and two aromatic rings were the best out of all the possible combinations. On analyzing the results, the most robust (R-2=.8990) hypothesis with a good predictive power (Q(2)=.7049) was found to be AAARR.35. A good external validation (R-2=.6109) was also obtained. In order to design new MCF-7 inhibitors, the QSAR model was further utilized in pharmacophore-based virtual screening of a large database. The predicted IC50 values of the identified potential MCF-7 inhibitors were found to lie in the micromolar range. Molecular docking into the colchicine domain of tubulin was performed in order to examine one of the probable mechanisms. This revealed various interactions between the ligand and the active site protein residues. The present study is expected to provide an effective guide for methodical development of potent MCF-7 inhibitors.
机译:加仑酸及其衍生物表现出各种各样的生物应用,包括抗癌活动。在这项工作中,已经选择了含Galloyl部分的四十六分子的数据集,并已被选中针对MCF-7人癌细胞系的抗癌活性,用于药程长建模和3D-定量结构活动关系(3D- QSAR)研究。基于树的分区算法已用于找到常见的Pharmacophore假设。 QSAR模型是为三个,四个和五个特色的假设而产生的,随着PLS因子增加并分析。结果有三个受护者的五个特色假设,以及两个可能的组合中最好的芳香戒指。在分析结果时,发现具有良好预测力的最强大(R-2 = .8990)假设(Q(2)= 7049)是AAARR.35。还获得了良好的外部验证(R-2 = .6109)。为了设计新的MCF-7抑制剂,QSAR模型进一步用于大型数据库的基于药镜的虚拟筛选。发现所识别的电位MCF-7抑制剂的预测IC50值位于微摩尔范围内。进行分子对切入微管蛋白的殖民氨基域,以检查可能的机制之一。这揭示了配体与活性位点蛋白质残留物之间的各种相互作用。预计本研究将提供有效的MCF-7抑制剂的有条不紊发展的有效指导。

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