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首页> 外文期刊>Journal of Biomolecular Structure and Dynamics >Pharmacophore-based virtual screening approach for identification of potent natural modulatory compounds of human Toll-like receptor 7
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Pharmacophore-based virtual screening approach for identification of potent natural modulatory compounds of human Toll-like receptor 7

机译:基于药疗法的虚拟筛选方法,用于鉴定人类收费型受体7有效天然调节化合物7

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Toll-like receptor 7 (TLR7) is a transmembrane glycoprotein playing very crucial role in the signaling pathways involved in innate immunity and has been demonstrated to be useful in fighting against infectious disease by recognizing viral ssRNA & specific small molecule agonists. In order to find novel human TLR7 (hTLR7) modulators, computational ligand-based pharmacophore modeling approach was used to identify the molecular chemical features required for the modulation of hTLR7 protein. A training set of 20 TLR7 agonists with their known experimental activity was used to create pharmacophore model using 3D-QSAR pharmacophore generation (HypoGen algorithm) module in Discovery Studio. The best developed hypothesis consists of four pharmacophoric features namely, one hydrogen bond donor (HBD), one ring aromatic (RA), and two hydrophobic (HY) character. The developed hypothesis was then validated by different methods such as cost analysis, test set method, and Fischer's test method for consistency. Hence, this validated model was further employed for screening of natural hit compounds from InterBioScreen Natural product database, consisting of more than 60,000 natural compounds and derivatives. The screened hit compounds were subsequently filtered by Lipinski's rule of 5, ADME and toxicity parameters and molecular docking studies to remove the false positive rates. Finally, molecular docking analysis led to identification of the (3a ' S,6a ' R)-3 '-(3,4-dihydroxybenzyl)-5 '-(3,4-dimethoxyphenethyl)-5-ethyl-3 ',3a '-dihydro-2 ' H-spiro[indoline-3,1 '-pyrrolo[3,4-c]pyrrole]-2,4 ',6 '(5 ' H,6a ' H)-trione (Compound ID: STOCK1N-65837) as potent hTLR7 modulator due to its better docking score and molecular interactions compared to other compounds. The result of virtual screening was further validated using molecular dynamics (MD) simulation analysis. Thus, a 30 ns MD simulation analysis revealed high stability and effective binding of STOCK1N-65837 within the binding site of hTLR7. Therefore, the present study provides confidence for the utility of the selected chemical feature based pharmacophore model to design novel TLR7 modulators with desired biological activity.
机译:Toll样受体7(TLR7)是一种跨膜糖蛋白在涉及先天免疫的信号传导途径中起非常至关重要的作用,并且已经证明通过识别病毒SSRNA和特定小分子激动剂来对抗传染病。为了寻找新型人TLR7(HTLR7)调节剂,用于鉴定鉴定HTLR7蛋白的调节所需的分子化学特征。使用3D-QSAR Pharmacophore生成(未在Discovery Studio中的3D-QSAR Pharmacophore)模块来创建药仔植物模型的培训套装20型TLR7激动剂。最佳显影假设由四个药物特征组成,即一个氢键供体(HBD),一个环芳族(Ra)和两个疏水性(HY)特征。然后通过不同的方法(如成本分析,测试)和Fischer的测试方法为一致性验证了所开发的假设。因此,该验证的模型进一步用于筛选来自杂交屏幕天然产物数据库的自然麦芽化合物,由60,000多种天然化合物和衍生物组成。随后通过Lipinski的5,Adme和毒性参数和分子对接研究过滤筛选的击中化合物,以消除假阳性率。最后,分子对接分析导致鉴定(3a',6a'r)-3' - (3,4-二羟基苄基)-5' - (3,4-二甲氧基乙基)-5-乙基-3',3a '-dihydro-2'h-spiro [indoline-3,1'-pyrrolo [3,4-c]吡咯] -2,4',6'(5'h,6a'h) - 轴(复合ID: Stock1n-65837)由于其与其他化合物相比,由于其更好的对接得分和分子相互作用,因此有效的HTLR7调节剂。使用分子动力学(MD)仿真分析进一步验证了虚拟筛选的结果。因此,30ns MD模拟分析显示出HTLR7结合位点内的储备储存的高稳定性和有效结合。因此,本研究为所选化学特征的药物化学模型的实用性提供了专用于具有所需生物活性的新型TLR7调节剂的施用。

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