3-O-取代的槲皮素:一种通过同时抑制外排泵和广谱碳青霉烯酶来对抗耐多药革兰氏阴性肠杆菌科细菌的抗生素增效剂

IF 4 2区 医学 Q2 CHEMISTRY, MEDICINAL ACS Infectious Diseases Pub Date : 2024-04-23 DOI:10.1021/acsinfecdis.3c00715
Taegum Lee, Seongyeon Lee, Mi Kyoung Kim, Joong Hoon Ahn, Ji Sun Park, Hwi Won Seo*, Ki-Ho Park* and Youhoon Chong*, 
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引用次数: 0

摘要

发现安全高效的外排泵和金属-β-内酰胺酶(MBL)抑制剂是开发耐多药(MDR)逆转剂的主要挑战之一,这种逆转剂可用于治疗耐碳青霉烯类革兰氏阴性菌。在这项研究中,我们发现在之前报道过的 MDR 逆转剂 di-F-Q 的 3-OH 位上引入了一个乙烯连接的立体高要求基团,从而使所得到的化合物对外排泵和广谱 β 内酰胺酶(包括难以抑制的 MBLs)都具有未知的多靶点抑制活性。针对外排泵和各类 β-内酰胺酶的多靶点抑制剂的分子对接研究表明,3-O-烷基取代基占据了外排泵和碳青霉烯酶的新型结合位点。不足为奇的是,这些多靶点抑制剂在产碳青霉烯类耐药肠杆菌科细菌(CRE)的 NDM-1(新德里金属-β-内酰胺酶-1)中挽救了碳青霉烯类抗生素美罗培南(MEM)的抗生素活性,并在 14 个临床菌株中的 8-9 个菌株中将 MEM 的 MIC 降低了 4 倍以上(协同效应)。多靶点抑制剂的抗生素增效活性也在 CRE 感染小鼠模型中得到了证实。总之,这些结果表明,在一种分子中结合对 MDR 革兰氏阴性菌中两个关键靶点(外排泵和β-内酰胺酶)的抑制活性是可能的,多靶点抑制剂可能为发现安全高效的 MDR 逆转剂提供新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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3-O-Substituted Quercetin: an Antibiotic-Potentiating Agent against Multidrug-Resistant Gram-Negative Enterobacteriaceae through Simultaneous Inhibition of Efflux Pump and Broad-Spectrum Carbapenemases

The discovery of safe and efficient inhibitors against efflux pumps as well as metallo-β-lactamases (MBL) is one of the main challenges in the development of multidrug-resistant (MDR) reversal agents which can be utilized in the treatment of carbapenem-resistant Gram-negative bacteria. In this study, we have identified that introduction of an ethylene-linked sterically demanding group at the 3-OH position of the previously reported MDR reversal agent di-F-Q endows the resulting compounds with hereto unknown multitarget inhibitory activity against both efflux pumps and broad-spectrum β-lactamases including difficult-to-inhibit MBLs. A molecular docking study of the multitarget inhibitors against efflux pump, as well as various classes of β-lactamases, revealed that the 3-O-alkyl substituents occupy the novel binding sites in efflux pumps as well as carbapenemases. Not surprisingly, the multitarget inhibitors rescued the antibiotic activity of a carbapenem antibiotic, meropenem (MEM), in NDM-1 (New Delhi Metallo-β-lactamase-1)-producing carbapenem-resistant Enterobacteriaceae (CRE), and they reduced MICs of MEM more than four-fold (synergistic effect) in 8–9 out of 14 clinical strains. The antibiotic-potentiating activity of the multitarget inhibitors was also demonstrated in CRE-infected mouse model. Taken together, these results suggest that combining inhibitory activity against two critical targets in MDR Gram-negative bacteria, efflux pumps, and β-lactamases, in one molecule is possible, and the multitarget inhibitors may provide new avenues for the discovery of safe and efficient MDR reversal agents.

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来源期刊
ACS Infectious Diseases
ACS Infectious Diseases CHEMISTRY, MEDICINALINFECTIOUS DISEASES&nb-INFECTIOUS DISEASES
CiteScore
9.70
自引率
3.80%
发文量
213
期刊介绍: ACS Infectious Diseases will be the first journal to highlight chemistry and its role in this multidisciplinary and collaborative research area. The journal will cover a diverse array of topics including, but not limited to: * Discovery and development of new antimicrobial agents — identified through target- or phenotypic-based approaches as well as compounds that induce synergy with antimicrobials. * Characterization and validation of drug target or pathways — use of single target and genome-wide knockdown and knockouts, biochemical studies, structural biology, new technologies to facilitate characterization and prioritization of potential drug targets. * Mechanism of drug resistance — fundamental research that advances our understanding of resistance; strategies to prevent resistance. * Mechanisms of action — use of genetic, metabolomic, and activity- and affinity-based protein profiling to elucidate the mechanism of action of clinical and experimental antimicrobial agents. * Host-pathogen interactions — tools for studying host-pathogen interactions, cellular biochemistry of hosts and pathogens, and molecular interactions of pathogens with host microbiota. * Small molecule vaccine adjuvants for infectious disease. * Viral and bacterial biochemistry and molecular biology.
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