C7-Substituted Quinolines as Potent Inhibitors of AdeG Efflux Pumps in Acinetobacter baumannii.

IF 4 2区 医学 Q2 CHEMISTRY, MEDICINAL ACS Infectious Diseases Pub Date : 2025-02-27 DOI:10.1021/acsinfecdis.4c00705
Yiling Zhu, Charlotte K Hind, Taha Al-Adhami, Matthew E Wand, Melanie Clifford, J Mark Sutton, Khondaker Miraz Rahman
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Abstract

Efflux, mediated by a series of multidrug efflux pumps, is a major contributor to antibiotic resistance in Gram-negative bacteria. Efflux pump inhibitors (EPIs), which can block efflux, have the potential to be used as adjuvant therapies to resensitize bacteria to existing antibiotics. In this study, 36 quinoline-based compounds were synthesized as potential EPIs targeting resistance nodulation division (RND) family pumps in the multidrug-resistant pathogen Acinetobacter baumannii. In A. baumannii strains with overexpressed AdeFGH (chloramphenicol-adapted) and AdeABC (AYE, Ab5075-UW), these compounds enhanced Hoechst dye accumulation, indicating general efflux inhibition, and potentiated chloramphenicol, which is an AdeG substrate. The research focused on two generations of quinoline compounds, with modifications at the C-7 position of first-generation compounds to improve hydrophobic interactions with the Phe loop in the AdeG efflux pump, to generate second-generation compounds. The modified quinolines showed strong pump inhibition and significant chloramphenicol potentiation, with MIC reductions of 4- to 64-fold. Notably, compounds 1.8 and 3.8 exhibited the highest inhibitory activity, while compounds 1.3 and 3.3 showed up to 64-fold potentiation, highlighting the importance of specific structural features at the C-7 position for efflux pump inhibition. The study also revealed selective inhibition of AdeFGH over AdeABC, with no potentiation observed for gentamicin, showing the specificity of these quinoline-based inhibitors. Importantly, the compounds showed no toxicity in a Galleria mellonella model at a dose level of 20 mg/kg, highlighting their suitability as potential antibiotic adjuvants for combating bacterial resistance.

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由一系列多药外排泵介导的外排是革兰氏阴性细菌产生抗生素耐药性的主要原因。外排泵抑制剂(EPIs)可以阻断外排,有望用作辅助疗法,使细菌对现有抗生素重新敏感。本研究合成了 36 种基于喹啉的化合物,作为针对耐多药病原体鲍曼不动杆菌(Acinetobacter baumannii)的耐药结节分裂(RND)家族泵的潜在 EPIs。在过表达 AdeFGH(氯霉素适应)和 AdeABC(AYE、Ab5075-UW)的鲍曼不动杆菌菌株中,这些化合物增强了 Hoechst 染料的积累,表明它们具有一般外流抑制作用,并对作为 AdeG 底物的氯霉素具有增效作用。研究重点是两代喹啉化合物,对第一代化合物的 C-7 位进行修饰,以改善与 AdeG 外排泵中 Phe 环的疏水相互作用,从而生成第二代化合物。经过修饰的喹啉类化合物具有很强的泵抑制作用和显著的氯霉素增效作用,其 MIC 降低了 4 到 64 倍。值得注意的是,化合物 1.8 和 3.8 显示出最高的抑制活性,而化合物 1.3 和 3.3 则显示出高达 64 倍的增效作用,这凸显了 C-7 位的特定结构特征对抑制外排泵的重要性。研究还发现,AdeFGH 比 AdeABC 具有选择性抑制作用,而庆大霉素则没有增效作用,这表明了这些喹啉类抑制剂的特异性。重要的是,在剂量为 20 毫克/千克时,这些化合物在小白鼠模型中没有显示出毒性,这突出表明它们适合作为潜在的抗生素辅助剂来对抗细菌耐药性。
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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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