Combinations of colistin and bacteriocins prevent the selection of colistin resistance in Acinetobacter baumannii
- Commun Biol. 2026 Mar 14;9(1):599. doi: 10.1038/s42003-026-09883-6.
- 1. Bacterial Genetics and Physiology, Faculté des Sciences, Université libre de Bruxelles (ULB), Bruxelles, Belgium. [email protected].
- 2. Bacterial Genetics and Physiology, Faculté des Sciences, Université libre de Bruxelles (ULB), Bruxelles, Belgium.
- 3. Institut Pasteur, Université Paris Cité, Biochemistry of Macromolecular Interactions Unit, Chemistry and Structural Biology Department, UMR CNRS 3528, Paris, France.
- 4. Autorité de sûreté nucléaire et de radioprotection (ASNR)/PSE-SANTE/SERAMED/LRMed, Montrouge, France.
- 5. Department of Microbiology, Cliniques Universitaires Saint-Luc, Catholic University of Louvain (UCLouvain), Brussels, Belgium.
- 6. Bacterial Genetics and Physiology, Faculté des Sciences, Université libre de Bruxelles (ULB), Bruxelles, Belgium. [email protected].
- # Contributed equally.
Acinetobacter baumannii is a multidrug-resistant nosocomial pathogen responsible for infections that are often difficult to treat. Here, we show that exposure of A. baumannii to the last-resort Antibiotic colistin, which disrupts the outer membrane of Gram-negative bacteria, results in inner membrane permeabilization and depolarization, ultimately inhibiting ATP synthesis. Nevertheless, under these conditions, colistin-resistant mutants are rapidly and frequently selected. In addition, A. baumannii is able to tolerate colistin, most likely due membrane depolarization and ATP depletion, which are hallmarks of antibiotic-tolerant subpopulations. In this context, we investigated whether bacteriocins can potentiate colistin activity. We identified and characterized two bacteriocins that inhibit the growth of multidrug-resistant clinical isolates, albeit at high concentrations. In vitro analyses showed that these small α-helical bacteriocins permeabilize phospholipid vesicles, highlighting their potential to potentiate Antibiotics that compromise cell envelope integrity. Importantly, low concentrations of these bacteriocins combined with colistin leads to a substantial reduction in survival. Moreover, bacteriocin-colistin combinations limit the emergence of colistin-resistant mutants and partially restore susceptibility in colistin-resistant strains. These findings highlight the potential of combining bacteriocins and Antibiotics to disrupt cell envelope homeostasis and support further evaluation of this strategy in vivo.
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Cat. No.Product NameDescriptionTargetResearch Area
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target: Bacterial