ATP合酶
喹啉
基岩
ATP酶
铜绿假单胞菌
微生物学
药物发现
抗药性
药理学
药品
生物化学
生物
化学渗透
化学
酶
细菌
结核分枝杆菌
医学
肺结核
遗传学
有机化学
病理
作者
Vesper Fraunfelter,Bryce A. Pugh,Alexander P. L. Williams,Katie T. Ward,Dietrich O. Jackson,Molly Austin,John F. Ciprich,Lorelei Dippy,Jason Dunford,Geoffrey Edwards,Evan Glass,Kyle M. Handy,Casey N. Kellogg,Kaitlyn Llewellyn,Kerstin Nyberg,Sam J. Shepard,Casey Thomas,Amanda L. Wolfe,Ryan Steed
标识
DOI:10.1021/acsinfecdis.3c00317
摘要
Pseudomonas aeruginosa (PA) is a Gram-negative, biofilm-forming bacterium and an opportunistic pathogen. The growing drug resistance of PA is a serious threat that necessitates the discovery of novel antibiotics, ideally with previously underexplored mechanisms of action. Due to their central role in cell metabolism, bacterial bioenergetic processes are of increasing interest as drug targets, especially with the success of the ATP synthase inhibitor bedaquiline to treat drug-resistant tuberculosis. Like Mycobacterium tuberculosis, PA requires F1Fo ATP synthase for growth, even under anaerobic conditions, making the PA ATP synthase an ideal drug target for the treatment of drug-resistant infection. In previous work, we conducted an initial screen for quinoline compounds that inhibit ATP synthesis activity in PA. In the present study, we report additional quinoline derivatives, including one with increased potency against PA ATP synthase in vitro and antibacterial activity against drug-resistant PA. Moreover, by expressing the PA ATP synthase in Escherichia coli, we show that mutations in the H+ binding site on the membrane-embedded rotor ring alter inhibition by the reported quinoline compounds. Identification of a potent inhibitor and its probable binding site on ATP synthase enables further development of promising quinoline derivatives into a viable treatment for drug-resistant PA infection.
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