An antibiotic from an uncultured bacterium binds to an immutable target
Shukla, Rhythm; Peoples, Aaron J; Ludwig, Kevin C; Maity, Sourav; Derks, Maik G N; De Benedetti, Stefania; Krueger, Annika M; Vermeulen, Bram J A; Harbig, Theresa; Lavore, Francesca; Kumar, Raj; Honorato, Rodrigo V; Grein, Fabian; Nieselt, Kay; Liu, Yangping; Bonvin, Alexandre M J J; Baldus, Marc; Kubitscheck, Ulrich; Breukink, Eefjan; Achorn, Catherine; Nitti, Anthony; Schwalen, Christopher J; Spoering, Amy L; Ling, Losee Lucy; Hughes, Dallas; Lelli, Moreno; Roos, Wouter H; Lewis, Kim; Schneider, Tanja; Weingarth, Markus
(2023) Cell, volume 186, issue 19, pp. 4059 - 4073.e27
(Article)
Abstract
Antimicrobial resistance is a leading mortality factor worldwide. Here, we report the discovery of clovibactin, an antibiotic isolated from uncultured soil bacteria. Clovibactin efficiently kills drug-resistant Gram-positive bacterial pathogens without detectable resistance. Using biochemical assays, solid-state nuclear magnetic resonance, and atomic force microscopy, we dissect its mode of action. Clovibactin
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blocks cell wall synthesis by targeting pyrophosphate of multiple essential peptidoglycan precursors (C 55PP, lipid II, and lipid III WTA). Clovibactin uses an unusual hydrophobic interface to tightly wrap around pyrophosphate but bypasses the variable structural elements of precursors, accounting for the lack of resistance. Selective and efficient target binding is achieved by the sequestration of precursors into supramolecular fibrils that only form on bacterial membranes that contain lipid-anchored pyrophosphate groups. This potent antibiotic holds the promise of enabling the design of improved therapeutics that kill bacterial pathogens without resistance development.
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Keywords: Anti-Bacterial Agents/isolation & purification, Bacteria, Biological Assay, Diphosphates, Soil Microbiology
ISSN: 0092-8674
Publisher: Cell Press
Note: Publisher Copyright: © 2023 The Authors
(Peer reviewed)