Czarny T L, Perri A L, French S, Brown E D
Department of Biochemistry and Biomedical Sciences and Michael G. DeGroote Institute of Infectious Disease Research, McMaster University, Hamilton, Ontario, Canada.
Department of Biochemistry and Biomedical Sciences and Michael G. DeGroote Institute of Infectious Disease Research, McMaster University, Hamilton, Ontario, Canada
Antimicrob Agents Chemother. 2014 Jun;58(6):3261-9. doi: 10.1128/AAC.02352-14. Epub 2014 Mar 31.
The emergence of antibiotic resistance in recent years has radically reduced the clinical efficacy of many antibacterial treatments and now poses a significant threat to public health. One of the earliest studied well-validated targets for antimicrobial discovery is the bacterial cell wall. The essential nature of this pathway, its conservation among bacterial pathogens, and its absence in human biology have made cell wall synthesis an attractive pathway for new antibiotic drug discovery. Herein, we describe a highly sensitive screening methodology for identifying chemical agents that perturb cell wall synthesis, using the model of the Gram-positive bacterium Bacillus subtilis. We report on a cell-based pilot screen of 26,000 small molecules to look for cell wall-active chemicals in real time using an autonomous luminescence gene cluster driven by the promoter of ywaC, which encodes a guanosine tetra(penta)phosphate synthetase that is expressed under cell wall stress. The promoter-reporter system was generally much more sensitive than growth inhibition testing and responded almost exclusively to cell wall-active antibiotics. Follow-up testing of the compounds from the pilot screen with secondary assays to verify the mechanism of action led to the discovery of 9 novel cell wall-active compounds.
近年来,抗生素耐药性的出现已从根本上降低了许多抗菌治疗的临床疗效,如今对公众健康构成了重大威胁。最早被深入研究且经过充分验证的抗菌药物发现靶点之一是细菌细胞壁。该途径的本质特性、在细菌病原体中的保守性以及在人体生物学中的缺失,使得细胞壁合成成为新抗生素药物发现的一个有吸引力的途径。在此,我们描述了一种高度灵敏的筛选方法,用于鉴定干扰细胞壁合成的化学试剂,该方法采用革兰氏阳性菌枯草芽孢杆菌作为模型。我们报告了一项基于细胞的先导筛选,对26000种小分子进行实时筛选,以寻找具有细胞壁活性的化学物质,该筛选使用了由ywaC启动子驱动的自主发光基因簇,ywaC编码一种在细胞壁应激条件下表达的鸟苷四(五)磷酸合成酶。该启动子 - 报告系统通常比生长抑制测试灵敏得多,并且几乎只对具有细胞壁活性的抗生素有反应。对先导筛选中的化合物进行后续测试,并通过二级分析来验证其作用机制,从而发现了9种新型的具有细胞壁活性的化合物。