结核分枝杆菌
琥珀酸脱氢酶
ATP合酶
生物化学
柠檬酸循环
化学
线粒体
生物
微生物学
肺结核
药理学
酶
医学
病理
作者
Cara Adolph,Chen‐Yi Cheung,Matthew B. McNeil,William J Jowsey,Zoe C. Williams,Kiel Hards,Liam K. Harold,Ashraf Aboelela,Richard S. Bujaroski,Benjamin J. Buckley,Joel D. A. Tyndall,Zhengqiu Li,Julian D. Langer,Laura Preiß,Thomas Meier,Adrie J. C. Steyn,Kyu Y. Rhee,Michael Berney,Michael J. Kelso,Gregory M. Cook
标识
DOI:10.1016/j.chembiol.2023.12.002
摘要
Mycobacterial bioenergetics is a validated target space for antitubercular drug development. Here, we identify BB2-50F, a 6-substituted 5-(N,N-hexamethylene)amiloride derivative as a potent, multi-targeting bioenergetic inhibitor of Mycobacterium tuberculosis. We show that BB2-50F rapidly sterilizes both replicating and non-replicating cultures of M. tuberculosis and synergizes with several tuberculosis drugs. Target identification experiments, supported by docking studies, showed that BB2-50F targets the membrane-embedded c-ring of the F1Fo-ATP synthase and the catalytic subunit (substrate-binding site) of succinate dehydrogenase. Biochemical assays and metabolomic profiling showed that BB2-50F inhibits succinate oxidation, decreases the activity of the tricarboxylic acid (TCA) cycle, and results in succinate secretion from M. tuberculosis. Moreover, we show that the lethality of BB2-50F under aerobic conditions involves the accumulation of reactive oxygen species. Overall, this study identifies BB2-50F as an effective inhibitor of M. tuberculosis and highlights that targeting multiple components of the mycobacterial respiratory chain can produce fast-acting antimicrobials.
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