机制(生物学)
自然(考古学)
生化工程
计算机科学
化学
计算生物学
业务
生物
工程类
认识论
哲学
古生物学
作者
Felix Deschner,Dietrich Mostert,Jan-Martin Daniel,Alexander Voltz,D. Schneider,Navid Khangholi,Jürgen Bartel,Laís Pessanha de Carvalho,Madita Brauer,Tatiana E. Gorelik,Christian Kleeberg,Timo Risch,F.P. Jake Haeckl,Laura Benítez,Anastasia Andreas,Andreas M. Kany,Gwenaëlle Jézéquel,Walter Hofer,Mathias Müsken,Jana Held
标识
DOI:10.1016/j.chembiol.2025.03.005
摘要
Antimicrobial resistance is a threat to human health rendering current first-line antibiotics ineffective. New agents overcoming resistance mechanisms are urgently needed to guarantee successful treatment of human disease in the future. Chlorotonils, a natural product class with yet unknown mode of action, were shown to have broad-spectrum activity against multi-resistant Gram-positive bacteria and the malaria parasite Plasmodium falciparum, with promising activity and safety in murine infection models. Here, we report that chlorotonils can target the cell membrane, cell wall, and protein biosynthesis. They can be characterized by a rapid onset of action via interference with ion homeostasis leading to membrane depolarization, however, without inducing severe barrier failure or cellular lysis. Further characterization confirmed binding of chlorotonils to bacterial membrane lipids eventually leading to uncontrolled potassium transport. Additionally, we identified functional inhibition of the peptidoglycan biosynthesis protein YbjG and methionine aminopeptidase MetAP as secondary targets of chlorotonils.
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