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氟苯甲酰基硫代缩氨基脲及其含 1,2,4-三唑骨架的环状类似物的抗菌活性。

Antibacterial Activity of Fluorobenzoylthiosemicarbazides and Their Cyclic Analogues with 1,2,4-Triazole Scaffold.

机构信息

Department of Pharmaceutical Microbiology, Faculty of Pharmacy, Medical University of Lublin, Chodźki 1, 20-093 Lublin, Poland.

Department of Organic Chemistry, Faculty of Pharmacy, Medical University of Lublin, Chodźki 4a, 20-093 Lublin, Poland.

出版信息

Molecules. 2020 Dec 31;26(1):170. doi: 10.3390/molecules26010170.

Abstract

The development of drug-resistant bacteria is currently one of the major challenges in medicine. Therefore, the discovery of novel lead structures for the design of antibacterial drugs is urgently needed. In this structure-activity relationship study, a library of , , and -fluorobenzoylthiosemicarbazides, and their cyclic analogues with 1,2,4-triazole scaffold, was created and tested for antibacterial activity against Gram-positive bacteria strains. While all tested 1,2,4-triazoles were devoid of potent activity, the antibacterial response of the thiosemicarbazides was highly dependent on substitution pattern at the N4 aryl position. The optimum activity for these compounds was found for trifluoromethyl derivatives such as , , and which were active against both the reference strains panel, and pathogenic methicillin-sensitive and methicillin-resistant clinical isolates at minimal inhibitory concentrations (MICs) ranging from 7.82 to 31.25 μg/mL. Based on the binding affinities obtained from docking, the conclusion can be reached that fluorobenzoylthiosemicarbazides can be considered as potential allosteric d-alanyl-d-alanine ligase inhibitors.

摘要

耐药菌的发展是目前医学领域的主要挑战之一。因此,迫切需要发现新型先导结构来设计抗菌药物。在这项构效关系研究中,我们合成并测试了一系列含氟苯甲酰基缩氨基硫脲及其具有 1,2,4-三唑骨架的环状类似物,以评估它们对革兰氏阳性菌的抗菌活性。虽然所有测试的 1,2,4-三唑均没有很强的活性,但缩氨基硫脲的抗菌反应高度依赖于 N4 芳基位置的取代模式。对于这些化合物,三氟甲基衍生物如 、 和 表现出最佳的活性,它们对参考菌株和致病性甲氧西林敏感和甲氧西林耐药的临床分离株均具有活性,最小抑菌浓度 (MIC) 范围为 7.82 至 31.25 μg/mL。基于对接获得的结合亲和力,可以得出结论,氟苯甲酰基缩氨基硫脲可以被认为是潜在的变构 d-丙氨酰-d-丙氨酸连接酶抑制剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ea6/7796209/20590ed6359d/molecules-26-00170-sch001.jpg

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