Department of Pharmaceutical Sciences, College of Pharmacy, University of Kentucky, 789 South Limestone Street, Lexington, KY, 40536-0596, USA.
Department of Pharmaceutical Sciences, College of Pharmacy, University of Kentucky, 789 South Limestone Street, Lexington, KY, 40536-0596, USA.
Eur J Med Chem. 2023 Mar 5;249:115165. doi: 10.1016/j.ejmech.2023.115165. Epub 2023 Jan 30.
The emergence of multidrug-resistant bacteria and the poor efficacy of available antibiotics against these infections have led to the urgent need for novel antibiotics. Acinetobacter baumannii is one of high-priority pathogens due to its ability to mount resistance to different classes of antibiotics. In an effort to provide novel agents in the fight against infections caused by A. baumannii, we synthesized a series of 46 aromatic hydrazides as potential treatments. In this series, 34 compounds were found to be low- to sub-μM inhibitors of A. baumannii growth, with MIC values in the range of 8 μg/mL to ≤0.125 μg/mL against a broad set of multidrug-resistant clinical isolates. These compounds were not highly active against other bacteria. We showed that one of the most potent compounds, 3e, was bacteriostatic and inhibitory to biofilm formation, although it did not disrupt the preformed biofilm. Additionally, we found that these compounds lacked mammalian cytotoxicity. The high antibacterial potency and the lack of mammalian cytotoxicity make these compounds a promising lead series for development of a novel selective anti-A. baumannii antibiotic.
耐多药细菌的出现以及现有抗生素对这些感染的疗效不佳,导致人们迫切需要新型抗生素。鲍曼不动杆菌由于能够对不同类别的抗生素产生耐药性,因此成为高优先级的病原体之一。为了提供治疗由鲍曼不动杆菌引起的感染的新型药物,我们合成了一系列 46 种芳香族酰肼作为潜在的治疗方法。在该系列中,发现 34 种化合物对鲍曼不动杆菌的生长具有低至亚微摩尔的抑制作用,MIC 值在 8μg/mL 至≤0.125μg/mL 范围内,对多种多药耐药的临床分离株具有广泛的活性。这些化合物对其他细菌的活性不高。我们表明,最有效的化合物之一 3e 具有抑菌作用,并能抑制生物膜的形成,尽管它不能破坏已形成的生物膜。此外,我们发现这些化合物对哺乳动物没有细胞毒性。这些化合物具有高抗菌活性和缺乏哺乳动物细胞毒性,这使得它们成为开发新型选择性抗鲍曼不动杆菌抗生素的有前途的先导系列。