T6361类似物作为大肠杆菌MurA潜在抑制剂的对接及其ADME毒性研究。

Ilham Boulhissa, Hanane Boucherit, Abdelouahab Chikhi, Abderrahmane Bensegueni
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引用次数: 0

摘要

背景:由于抗生素耐药性的问题,开发更强效的抗菌剂是科学家在卫生领域最重要的任务之一。在抗生素靶点中,我们提到了MurA(UDP-N-乙酰葡糖胺烯醇丙酮酸转移酶),它是细菌细胞壁肽聚糖生物合成的关键酶。目的:我们的目的是通过对接细菌酶MurA抑制剂T6361的类似物,即5-磺酰氧基-对乙酰苯胺酸的衍生物,来寻找新的细菌酶MurA抑制剂。方法:使用FlexX程序将990个T6361类似物对接在E.coli MurA(开放式)的第一个结合位点,并通过SwissADME和PreADMET网络服务器评估最佳类似物的ADME毒性。结果:对接结果显示,两种T6361类似物提供了比T6361更好的能量分数,并且与大肠杆菌MurA的结合位点具有相似的相互作用,即3-{[2-(哌啶-1-羰基)苯基]氨磺酰基}苯甲酸和3-{[2-(吡咯烷-1-羰基)苯基]氨磺酰}苯甲酸。此外,发现这两种分子具有良好的药代动力学和低毒性。结论:我们提出了两种T6361类似物作为MurA酶的新的潜在抑制剂。它们良好的ADME毒性特征使它们有资格作为未来的先导分子进行体外和体内测定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Docking of T6361 Analogues as Potential Inhibitors of E.coli MurA Followed by ADME-Toxicity Study.

Background: Developing more potent antibacterial agents is one of the most important tasks of scientists in the health field due to the problem of antibiotic resistance. Among the antibiotic targets, we mention MurA (UDP-N-Acetylglucosamine Enolpyruvyl Transferase), which is a key enzyme of peptidoglycan biosynthesis of the bacterial cell wall.

Objective: Our objective was to search for new inhibitors of the bacterial enzyme MurA by docking the analogues of its inhibitor T6361, a derivative of 5-sulfonoxy-anthranilic acid.

Methods: 990 analogues of T6361 were docked in the first binding site of E.coli MurA (open form) using the FlexX program, and the ADME-Toxicity profile of the best ones was evaluated by SwissADME and PreADMET web servers. .

Results: Docking results revealed two T6361 analogues to provide better energy scores than T6361, and have similar interactions with the binding site of E.coli MurA namely,3-{[2-(piperidine-1-carbonyl) phenyl]sulfamoyl}benzoic acid and 3-{[2-(pyrrolidine-1 carbonyl)phenyl]sulfamoyl}benzoic acid. Moreover, the two molecules were found to possess good pharmacokinetics and low toxicity.

Conclusion: We propose two analogues of T6361 as new potential inhibitors of MurA enzyme. Their good ADME-Toxicity profile qualifies them to reach in vitro and in vivo assays as future lead molecules.

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