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首页> 外文期刊>Journal of Biomolecular Structure and Dynamics >In-Silico molecular docking and simulation studies on novel chalcone and flavone hybrid derivatives with 1, 2, 3-triazole linkage as vital inhibitors of Plasmodium falciparum dihydroorotate dehydrogenase
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In-Silico molecular docking and simulation studies on novel chalcone and flavone hybrid derivatives with 1, 2, 3-triazole linkage as vital inhibitors of Plasmodium falciparum dihydroorotate dehydrogenase

机译:二氧化硅分子对接及仿真研究新型Chalcone和黄酮杂交衍生物,具有1,2,3-三唑键作为疟原虫脱氢脱氢酶的重要抑制剂

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摘要

The structural motifs of chalcones, flavones, and triazoles with varied substitutions have been studied for the antimalarial activity. In this study, 25 novel derivatives of chalcone and flavone hybrid derivatives with 1, 2, 3-triazole linkage are docked with Plasmodium falciparum dihydroorotate dehydrogenase to establish their inhibitory activity against Plasmodium falciparum. The best binding conformation of the ligands at the catalytic site of dihydroorotate dehydrogenase are selected to characterize the best bound ligand using the best consensus score and the number of hydrogen bond interactions. The ligand namely (2E)-3-(4-{[l-(3-chloro-4-fiuorophenyl)-lH-l, 2, 3-triazol-4-yl]methoxy}-3-methoxyphenyl-l-(2-hydroxy-4,6-dimethoxyphenyl)prop-2-en-l-one, is one the among the five best docked ligands, which interacts with the protein through nine hydrogen bonds and with a consensus score of five. To refine and confirm the docking study results, the stability of complexes is verified using Molecular Dynamics Simulations, Molecular Mechanics /Poisson-Boltzmann Surface Area free binding energy analysis, and per residue contribution for the binding energy. The study implies that the best docked Plasmodium falciparum dihydroorotate dehydrogenase-ligand complex is having high negative binding energy, most stable, compact, and rigid with nine hydrogen bonds. The study provides insight for the optimization of chalcone and flavone hybrids with 1, 2, 3-triazole linkage as potent inhibitors.
机译:已经研究了抗疟活性的Chalcones,黄酮和三唑的结构基序。在本研究中,将25种Chalcod和黄酮杂交衍生物的衍生物为1,2,3-三唑键与疟原虫脱氢脱氢酶停靠,以确定其对疟原虫的抑制活性。选择二羟色酸盐脱氢酶催化位点的配体的最佳结合构象以表征使用最佳共分评分和氢键相互作用的最佳结束配体。配体即(2E)-3-(4 - {[L-(3-氯-4-氟苯基)-LH-1,2,3-三唑-4-基]甲氧基} -3-甲氧基苯基-1-( 2-羟基-4,6-二甲氧基苯基)PROP-2-EN-L-ON,是五个最佳停靠配体中的一种,其与蛋白质通过九个氢键相互作用,并且共有5分。优化和确认对接研究结果,使用分子动力学模拟验证复合物的稳定性,分子力学/泊松 - 博尔兹曼表面积自由结合能量分析,以及每个残留物对结合能的贡献。该研究意味着最佳停靠的疟原虫脱氢脱氢脱氢酶-ligand复合物具有高负结合能量,最稳定,紧凑,含有九个氢键的刚性。该研究为优化Chalcone和黄酮杂交种提供了1,2,3-三唑连动作为有效抑制剂的洞察力。

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