新型阳离子二氢吡咯-2- 1化合物作为抗菌药物和群体感应抑制剂

IF 3.3 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Dittu Suresh , Tsz Tin Yu , Rajesh Kuppusamy , Shekh Sabir , Theerthankar Das , David StC Black , Mark D.P. Willcox , Naresh Kumar
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引用次数: 0

摘要

抗菌素耐药性已发展成为一项全球性危机,不断导致全世界数百万人死亡,并增加了医疗保健费用。群体感应抑制是一种新的替代抗菌策略,由于其能够抑制铜绿假单胞菌(PA)的耐药性而受到关注。这种方法在克服细菌耐药性方面显示出巨大的潜力,并可能在未来为传统抗生素提供急需的替代品。PA有3种主要的群体感应系统,其中Las系统已被确定为最可行的治疗靶点。在这项研究中,我们报道了从二氢吡咯-2- 1支架合成了一个新的广谱群体感应抑制剂库,以形成尿素和咪唑类似物。分子对接与合成并行进行,以辅助设计。它还证实,除了LasR抑制剂中常见的潜在关键相互作用外,这些分子还舒适地占据了配体结合域。正如预测的那样,这些化合物对铜绿假单胞菌表现出较低的杀菌作用,大多数化合物的MIC为250 μM,而对大肠杆菌保持中等活性,最有效的化合物的MIC为32 μM。其中硫脲基分子10c对金黄色葡萄球菌的抑菌活性最高,MIC为16µM。此外,一些分子表现出很强的群体感应抑制活性,其中化合物10g和9e在16µM时对LasR系统的抑制作用分别超过70%。这些化合物在P. aeruginosa中也表达了对pyocyanin的抑制作用,溶血试验表明细胞裂解水平低,因此化合物的毒性低,进一步证明了这些新化合物的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Novel cationic dihydropyrrol-2-one compounds as antimicrobial agents and quorum sensing inhibitors

Novel cationic dihydropyrrol-2-one compounds as antimicrobial agents and quorum sensing inhibitors
Antimicrobial resistance has grown to become a global crisis consistently participating in the death of millions worldwide and accumulating costs on healthcare. Quorum sensing inhibition is a new alternative antimicrobial strategy that has been gaining attention due to its ability to suppress the resistance of Pseudomonas aeruginosa (PA). This approach shows great potential in overcoming bacterial resistance and could provide a much needed substitute to conventional antibiotics in the future. PA has 3 main quorum sensing systems of which the Las system has been identified to be the most viable therapeutic target. In this study, we report the synthesis of a library of novel broad-spectrum quorum sensing inhibitors from the dihydropyrrol-2-one scaffold to form urea and imidazolium analogues. Molecular docking was performed in parallel to synthesis to aid design. It also confirmed that the molecules comfortably occupy the ligand binding domain in addition to potential key interactions commonly present in LasR inhibitors. As predicted, these compounds displayed low bactericidal effects against P. aeruginosa with most compounds exhibiting MIC of >250 μM, while maintaining moderate activity towards Escherichia coli with the most potent compound having an MIC of 32 μM. The greatest bactericidal effects were present on Staphylococcus aureus with the thiourea based molecule 10c showed the highest antibacterial activity with MIC of 16 µM. Furthermore, several molecules displayed highly potent quorum sensing inhibitory activity with compounds 10g and 9e both demonstrating over 70 % inhibition respectively of the LasR system at 16 µM. These compounds also expressed inhibition of pyocyanin within P. aeruginosa and haemolytic assay indicates a low level of cell lysis and hence low toxicity of the compounds, further demonstrating the potential of these novel compounds.
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来源期刊
Bioorganic & Medicinal Chemistry
Bioorganic & Medicinal Chemistry 医学-生化与分子生物学
CiteScore
6.80
自引率
2.90%
发文量
413
审稿时长
17 days
期刊介绍: Bioorganic & Medicinal Chemistry provides an international forum for the publication of full original research papers and critical reviews on molecular interactions in key biological targets such as receptors, channels, enzymes, nucleotides, lipids and saccharides. The aim of the journal is to promote a better understanding at the molecular level of life processes, and living organisms, as well as the interaction of these with chemical agents. A special feature will be that colour illustrations will be reproduced at no charge to the author, provided that the Editor agrees that colour is essential to the information content of the illustration in question.
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