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美罗培南酸 C 克服屎肠球菌的庆大霉素耐药性。

Merulinic acid C overcomes gentamicin resistance in Enterococcus faecium.

机构信息

Brazilian Biosciences National Laboratory (LNBio), CNPEM, 13083-970 Campinas, SP, Brazil; Departamento de Genética, Evolução, Microbiologia e Imunologia, Instituto de Biologia, Universidade Estadual de Campinas (UNICAMP), CEP 13083-970, Campinas, São Paulo, Brazil.

Instituto de Química de São Carlos, Universidade de São Paulo, CEP 13560-970, São Carlos, SP, Brazil.

出版信息

Bioorg Chem. 2020 Jul;100:103921. doi: 10.1016/j.bioorg.2020.103921. Epub 2020 May 12.

Abstract

Enterococci are gram-positive, widespread nosocomial pathogens that in recent years have developed resistance to various commonly employed antibiotics. Since finding new infection-control agents based on secondary metabolites from organisms has proved successful for decades, natural products are potentially useful sources of compounds with activity against enterococci. Herein are reported the results of a natural product library screening based on a whole-cell assay against a gram-positive model organism, which led to the isolation of a series of anacardic acids identified by analysis of their spectroscopic data and by chemical derivatizations. Merulinic acid C was identified as the most active anacardic acid derivative obtained against antibiotic-resistant enterococci. Fluorescence microscopy analyses showed that merulinic acid C targets the bacterial membrane without affecting the peptidoglycan and causes rapid cellular ATP leakage from cells. Merulinic acid C was shown to be synergistic with gentamicin against Enterococcus faecium, indicating that this compound could inspire the development of new antibiotic combinations effective against drug-resistant pathogens.

摘要

肠球菌是一种革兰氏阳性、广泛存在的医院病原体,近年来已对各种常用抗生素产生了耐药性。由于基于生物体次生代谢产物寻找新的感染控制剂已被证明数十年来是成功的,因此天然产物是具有抗肠球菌活性的化合物的潜在有用来源。本文报道了基于革兰氏阳性模式生物的全细胞测定的天然产物文库筛选结果,该测定导致了一系列通过分析其光谱数据和化学衍生化鉴定的漆酚酸的分离。鉴定出漆酚酸 C 是针对抗抗生素肠球菌获得的最活跃的漆酚酸衍生物。荧光显微镜分析表明,漆酚酸 C 靶向细菌膜而不影响肽聚糖,并导致细胞内 ATP 迅速从细胞中泄漏。漆酚酸 C 与庆大霉素对粪肠球菌表现出协同作用,表明该化合物可能启发开发针对耐药病原体的新抗生素组合。

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