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Computer aided drug design strategies for the development of novel beta lactam analogs targeting penicillin binding proteins

机译:计算机辅助药物设计策略,用于开发靶向青霉素结合蛋白的新β内酯模拟

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Computers and computational methods are indispensable tools in modern drug discovery pipeline. Early lead identification and lead optimization are the present day goals of drug discovery. Antibiotics like penicillin and cephalosporin containing beta lactam ring system are the dominant class of agents currently used for the chemotherapy of bacterial infections. In this present study we have used an approach combing molecular docking and QSAR analyses on a series of compounds called Imidazetines, a novel beta lactam analog known to possess antibacterial activity. X-ray crystallographic studies reveal that beta lactam compounds have affinity for Penicillin Binding Proteins (PBP) and hence known 3D structure of PBP (pdb code: 1CEF) was used as macromolecular target. Molecular modeling studies were performed on Silicon Graphics work stations using Insight II. The novel ligands were docked in to the binding pocket and the results of the docking studies revealed that these novel ligands are able to occupy the same binding pocket with better interactions. The stability of the complex are maintained by several hydrogen bonding interactions. The key amino acid residues involved in ligand binding were found to be conserved among other homologous of PBP. QSAR analyses were performed on these compounds and ADME/T properties were predicted based on the first generation Lipinski's Rule of Five. The results obtained from our study could further the design of new molecules with promising activity in the future.
机译:计算机和计算方法是现代药物发现管道中的不可或缺的工具。早期铅鉴定和铅优化是药物发现的现今目标。含有青霉素和含有β内酰胺环系统的头孢菌素和头孢菌素等抗生素是目前用于细菌感染的化学疗法的主要类药剂。在本研究中,我们使用了一种梳理分子对接和QSAR对含有抗菌活性的新型β内酯类似物的一系列化合物的分子对接和QSAR分析。 X-射线结晶研究表明,测试内酰胺化合物对青霉素亲和力结合蛋白(PBP)和PBP的已知因此3D结构(PDB代码:1CEF)用作大分子靶。使用Insight II对硅图形工作站进行分子建模研究。将新颖的配体停靠在结合口袋中,并且对接研究的结果表明,这些新型配体能够占据相同的相互作用。通过几种氢键相互作用保持复合物的稳定性。参与配体结合的关键氨基酸残基被认为是保守的PBP其他同源。在这些化合物上进行QSAR分析,并根据第一代Lipinski的五个规则预测Adme / T属性。从我们的研究中获得的结果可以进一步设计未来活动的新分子。

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