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靶向铜绿假单胞菌二氢蝶酸合酶和二氢叶酸还原酶的杂合药物设计。

Hybrid-drug design targeting Pseudomonas aeruginosa dihydropteroate synthase and dihydrofolate reductase.

作者信息

Jayaraman Premkumar, Sakharkar Kishore R, Daniel Lim Chu Sing, Siddiqi Mohammad Imran, Dhillon Sarinder Kaur, Sakharkar Meena K

机构信息

Biomedical Engineering Research Centre, Nanyang Technological University, Singapore.

出版信息

Front Biosci (Elite Ed). 2013 Jun 1;5(3):864-82. doi: 10.2741/e666.

Abstract

In this study, we successfully present the dual-target design hypothesis to inhibit both dihydropteroate synthase (DHPS) and dihydrofolate reductase (DHFR) enzymes using a novel scheme that integrates our previous antibiotic-phytochemical interaction data, fragment combination and knowledge-based methods. Both the enzymes are well established antibacterial targets from folate biosynthesis pathway and their synergistic modulation by a single hybrid entity may have profound therapeutic benefits. Evaluation of the designed hybrid compounds based on their physico-chemical properties has indicated them as promising drug candidates with drug-like pharmacotherapeutic profiles. In addition, the stereo-electronic properties such as HOMO, LUMO and MEP maps calculated by quantum chemical methods gave a good correlation with the common pharmacophoric features required for dual-site interactions. Furthermore, docking and dynamics simulation studies reveal that the designed hybrid compounds have favorable binding affinity and stability in both pterin-binding site of DHPS and folate-binding site of DHFR by forming strong hydrogen bonds and hydrophobic interactions with key active-site residues. Looking forward this study could serve as a prospective lead in the process of new natural-product based hybrid-drugs development.

摘要

在本研究中,我们成功提出了双靶点设计假说,即利用一种新颖的方案抑制二氢蝶酸合酶(DHPS)和二氢叶酸还原酶(DHFR)这两种酶,该方案整合了我们之前的抗生素 - 植物化学相互作用数据、片段组合和基于知识的方法。这两种酶都是叶酸生物合成途径中公认的抗菌靶点,单个杂合实体对它们的协同调节可能具有深远的治疗益处。基于其物理化学性质对设计的杂合化合物进行评估表明,它们是具有类药物药理学特性的有前景的候选药物。此外,通过量子化学方法计算的诸如最高占据分子轨道(HOMO)、最低未占据分子轨道(LUMO)和分子静电势(MEP)图等立体电子性质,与双位点相互作用所需的常见药效团特征具有良好的相关性。此外,对接和动力学模拟研究表明,设计的杂合化合物通过与关键活性位点残基形成强氢键和疏水相互作用,在DHPS的蝶呤结合位点和DHFR的叶酸结合位点均具有良好的结合亲和力和稳定性。展望未来,本研究可为基于新天然产物的杂合药物开发过程提供潜在的先导。

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