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揭示喹唑啉衍生物在铜绿假单胞菌中的抗菌协同作用及构效关系研究。

Uncovering the potentiality of quinazoline derivatives against Pseudomonas aeruginosa with antimicrobial synergy and SAR analysis.

机构信息

Infectious Diseases Division, CSIR- Indian Institute of Integrative Medicine, Jammu, 180001, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002, India.

出版信息

J Antibiot (Tokyo). 2024 Jun;77(6):365-381. doi: 10.1038/s41429-024-00717-3. Epub 2024 Mar 21.

DOI:10.1038/s41429-024-00717-3
PMID:38514856
Abstract

Antimicrobial resistance has emerged as a covert global health crisis, posing a significant threat to humanity. If left unaddressed, it is poised to become the foremost cause of mortality worldwide. Among the multitude of resistant bacterial pathogens, Pseudomonas aeruginosa, a Gram-negative, facultative bacterium, has been responsible for mild to deadly infections. It is now enlisted as a global critical priority pathogen by WHO. Urgent measures are required to combat this formidable pathogen, necessitating the development of novel anti-pseudomonal drugs. To confront this pressing issue, we conducted an extensive screening of 3561 compounds from the ChemDiv library, resulting in the discovery of potent anti-pseudomonal quinazoline derivatives. Among the identified compounds, IDD-8E has emerged as a lead molecule, exhibiting exceptional efficacy against P. aeruginosa while displaying no cytotoxicity. Moreover, IDD-8E demonstrated significant pseudomonal killing, disruption of pseudomonal biofilm and other anti-bacterial properties comparable to a well-known antibiotic rifampicin. Additionally, IDD-8E's synergy with different antibiotics further strengthens its potential as a powerful anti-pseudomonal agent. IDD-8E also exhibited significant antimicrobial efficacy against other ESKAPE pathogens. Moreover, we elucidated the Structure-Activity-Relationship (SAR) of IDD-8E targeting the essential WaaP protein in P. aeruginosa. Altogether, our findings emphasize the promise of IDD-8E as a clinical candidate for novel anti-pseudomonal drugs, offering hope in the battle against antibiotic resistance and its devastating impact on global health.

摘要

抗菌药物耐药性已经成为一个隐蔽的全球卫生危机,对人类构成重大威胁。如果不加以解决,它有可能成为全球首要的死亡原因。在众多耐药细菌病原体中,铜绿假单胞菌是一种革兰氏阴性、兼性细菌,可引起轻度至致命感染。它现在被世界卫生组织列为全球重点优先病原体。需要采取紧急措施来对抗这种强大的病原体,这需要开发新型抗假单胞菌药物。为了应对这一紧迫问题,我们对来自 ChemDiv 文库的 3561 种化合物进行了广泛筛选,发现了有效的抗假单胞菌喹唑啉衍生物。在鉴定的化合物中,IDD-8E 作为一种先导分子脱颖而出,对铜绿假单胞菌具有优异的疗效,同时没有细胞毒性。此外,IDD-8E 表现出显著的杀假单胞菌作用,破坏假单胞菌生物膜和其他抗菌特性,可与著名抗生素利福平相媲美。此外,IDD-8E 与不同抗生素的协同作用进一步增强了其作为一种强大的抗假单胞菌药物的潜力。IDD-8E 对其他 ESKAPE 病原体也具有显著的抗菌功效。此外,我们阐明了 IDD-8E 针对铜绿假单胞菌中必需 WaaP 蛋白的作用的结构-活性关系(SAR)。总之,我们的研究结果强调了 IDD-8E 作为新型抗假单胞菌药物的临床候选物的潜力,为对抗抗生素耐药性及其对全球健康的破坏性影响带来了希望。

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2
Towards the sustainable discovery and development of new antibiotics.迈向新型抗生素的可持续发现与开发。
Nat Rev Chem. 2021 Oct;5(10):726-749. doi: 10.1038/s41570-021-00313-1. Epub 2021 Aug 19.
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RSC Adv. 2023 Feb 3;13(7):4669-4677. doi: 10.1039/d2ra08196b. eCollection 2023 Jan 31.
5
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6
WHO Report: Cholera Resurgent in 2022 After Years of Decline.世界卫生组织报告:霍乱在数年下降后于2022年卷土重来。
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