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炭疽芽孢杆菌烯酰-ACP还原酶的芳基醚抑制剂的设计与合成

Design and synthesis of aryl ether inhibitors of the Bacillus anthracis enoyl-ACP reductase.

作者信息

Tipparaju Suresh K, Mulhearn Debbie C, Klein Gary M, Chen Yufeng, Tapadar Subhasish, Bishop Molly H, Yang Shuo, Chen Juan, Ghassemi Mahmood, Santarsiero Bernard D, Cook James L, Johlfs Mary, Mesecar Andrew D, Johnson Michael E, Kozikowski Alan P

机构信息

Drug Discovery Program, Department of Medicinal Chemistry and Pharmacognosy, University of Illinois at Chicago, 833 S. Wood St., Chicago, IL 60612, USA.

出版信息

ChemMedChem. 2008 Aug;3(8):1250-68. doi: 10.1002/cmdc.200800047.

Abstract

The problem of increasing bacterial resistance to the current generation of antibiotics is well documented. Known resistant pathogens such as methicillin-resistant Staphylococcus aureus are becoming more prevalent, while the potential exists for developing drug-resistant pathogens for use as bioweapons, such as Bacillus anthracis. The biphenyl ether antibacterial agent, triclosan, exhibits broad-spectrum activity by targeting the fatty acid biosynthetic pathway through inhibition of enoyl-acyl carrier protein reductase (ENR) and provides a potential scaffold for the development of new, broad-spectrum antibiotics. We used a structure-based approach to develop novel aryl ether analogues of triclosan that target ENR, the product of the fabI gene, from B. anthracis (BaENR). Structure-based design methods were used for the expansion of the compound series including X-ray crystal structure determination, molecular docking, and QSAR methods. Structural modifications were made to both phenyl rings of the 2-phenoxyphenyl core. A number of compounds exhibited improved potency against BaENR and increased efficacy against both the Sterne strain of B. anthracis and the methicillin-resistant strain of S. aureus. X-ray crystal structures of BaENR in complex with triclosan and two other compounds help explain the improved efficacy of the new compounds and suggest future rounds of optimization that might be used to improve their potency.

摘要

细菌对当前一代抗生素的耐药性不断增加的问题已有充分记录。已知的耐药病原体,如耐甲氧西林金黄色葡萄球菌,正变得越来越普遍,而开发用作生物武器的耐药病原体,如炭疽杆菌,也存在可能性。联苯醚抗菌剂三氯生通过抑制烯酰-酰基载体蛋白还原酶(ENR)靶向脂肪酸生物合成途径,表现出广谱活性,并为开发新型广谱抗生素提供了一个潜在的框架。我们采用基于结构的方法来开发三氯生的新型芳基醚类似物,这些类似物靶向炭疽杆菌(BaENR)的fabI基因产物ENR。基于结构的设计方法用于扩展化合物系列,包括X射线晶体结构测定、分子对接和定量构效关系方法。对2-苯氧基苯基核心的两个苯环都进行了结构修饰。许多化合物对BaENR表现出更高的效力,对炭疽杆菌的斯特恩菌株和耐甲氧西林金黄色葡萄球菌菌株的疗效也有所提高。BaENR与三氯生及其他两种化合物形成复合物的X射线晶体结构有助于解释新化合物疗效提高的原因,并为未来可能用于提高其效力的优化轮次提供了建议。

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本文引用的文献

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