流出
抗生素
化学
多重耐药
药理学
小分子
立体化学
生物化学
生物
作者
Janine L. Gray,Elizabeth V. K. Ledger,Tiffany Suwatthee,Thomas J. Burden,Konstantina Arvaniti,A. Sefton,Lydia E. Papagora,Thomas B. Clarke,Jennifer M. Riley,Érika G. Pinto,Fraser Cunningham,Ian H. Gilbert,David W. Gray,Da‐Neng Wang,Kevin D. Read,Thomas Lanyon‐Hogg,Nathaniel J. Traaseth,Andrew M. Edwards,Edward W. Tate
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-08-22
标识
DOI:10.1101/2025.08.19.671038
摘要
Abstract Antibiotic resistance is among the greatest threats of the modern era. Multidrug efflux pumps expel antibiotics from bacterial cells and present a particular challenge by conferring resistance to a broad range of antibiotic classes; however, there is currently a lack of potent and selective inhibitors. Here, we report the discovery of IMP-2380 , a drug-like chemical probe for the multidrug efflux pump NorA that delivers low-nanomolar potentiation of ciprofloxacin activity in vitro and activity in an in vivo S. aureus infection model. A phenotypic high-throughput screen for inhibitors of the ciprofloxacin-activated SOS DNA repair pathway in methicillin-resistant Staphylococcus aureus (MRSA) identified hit compounds targeting NorA, and subsequent optimization established IMP-2380 as the most potent NorA inhibitor discovered to date. The structure of NorA bound to IMP-2380 was solved by cryo-electron microscopy at 2.52 Å resolution, revealing that the small molecule locks the pump in the ‘outward-open’ conformation. This closes the inner face and prevents antibiotics binding from the cytosol, providing an explanation for the exceptional potency of IMP-2380 and structure-activity relationship across the series. IMP-2380 represents an in vivo active NorA inhibitor, functioning via a structurally defined outward-open binding mode, and will enable future exploration of NorA as a druggable target to combat antibiotic resistance.
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