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首页> 外文期刊>Journal of molecular modeling >Extra precision glide docking, free energy calculation and molecular dynamics studies of 1,2-diarylethane derivatives as potent urease inhibitors
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Extra precision glide docking, free energy calculation and molecular dynamics studies of 1,2-diarylethane derivatives as potent urease inhibitors

机译:额外的精密滑动对接,1,2-二芳基甲烷衍生物的自由能量计算和分子动力学研究作为有效的脲酶抑制剂

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For the latter half of the twentieth century, most medical professionals considered bacterial infection to be a primary cause of gastrointestinal ulcers in human beings. In 1994, the World Health Organization (WHO) recognized Helicobacter pylori, the bacterium most closely linked to ulcer development, as a type I carcinogen. Biological research has shown that there is a positive correlation between the number of species in the Helicobacter genus and the number of medical conditions associated with Helicobacter infection, both of which are increasing rapidly. N-Benzylaniline derivatives, frequently used in industrial manufacturing, are being considered as a strong candidate for ongoing drug modeling in search of novel therapies. The basic goal behind this study was to determine the potency of experimentally proved data, and to determine favorable substituents to enhance potency, and thereafter to support this finding through theoretical modification of the existing base skeleton by addition of suitable substituents. Ligands were investigated thoroughly by paying attention to the urease-inhibitory properties present in the selected series. Initially, docking was performed on ligands with protein to produce efficient docking poses. Molecular dynamics (MD) simulations were also performed to precisely understand the interactions between ligands and proteins. Thereafter, MM-GBSA was used in order to validate the methods and results. Good interaction was observed with amino acids Arg338, Ala169, Asp223, His322, and Asn168. This study also revealed that the electron rich hydroxyl group (-OH) substituent plays an important role during bond formation. In addition, various hydrogen bonds, ionic bonds, and pi-pi stacking bonds make significant contributions towards urease inhibition. Therefore, further research utilizing electron-rich moieties may lead to novel and efficacious urease inhibitors.
机译:对于二十世纪的后一半,大多数医学专业人员认为细菌感染是人类胃肠道溃疡的主要原因。 1994年,世界卫生组织(世卫组织)认可的幽门螺杆菌,细菌与溃疡发育最密切相关,作为I型致癌物。生物学研究表明,幽门螺杆菌属中的物种数量与与幽门杆菌感染相关的医学病症数量之间存在正相关性,这两者都在迅速增加。常用于工业制造的N-苄基苯胺衍生物被认为是寻找新疗法的持续药物建模的强烈候选者。本研究背后的基本目标是确定实验证明数据的效力,并确定有利的取代基来增强效力,然后通过加入合适的取代基来支持该发现。通过注意所选系列中存在的脲酶抑制性质,彻底研究配体。最初,对蛋白质的配体进行对接以产生有效的对接构成。还进行了分子动力学(MD)模拟以精确地了解配体和蛋白质之间的相互作用。此后,使用MM-GBSA以验证方法和结果。用氨基酸Arg338,Ala169,Asp223,His322和Asn168观察到良好的相互作用。本研究还显示电子富羟基(-OH)取代基在键形成期间起着重要作用。另外,各种氢键,离子键和PI-PI堆叠键对脲酶抑制产生显着的贡献。因此,利用富含电子部分的进一步研究可能导致新颖和有效的脲酶抑制剂。

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