Please use this identifier to cite or link to this item: https://bura.brunel.ac.uk/handle/2438/33822
Title: Antibiotic potentiation and inhibition of cross-resistance in pathogens associated with cystic fibrosis
Authors: Kadeřábková, Nikol
Furniss, R Christopher D
Maslova, Evgenia
Potter, Kathryn E
Eisaiankhongi, Lara
Bernal, Patricia
Filloux, Alain
Landeta, Cristina
Gonzalez, Diego
McCarthy, Ronan R
Mavridou, Despoina AI
Keywords: E. coli;Pseudomonas aeruginosa;Stenotrophomonas maltophilia;antibiotics;antimicrobial resistance;cystic fibrosis;infectious disease;microbiology;polymicrobial infections
Issue Date: 2-Aug-2023
Publisher: eLife Sciences Publications
Citation: Kadeřábková, N. et al. (2026) 'Antibiotic potentiation and inhibition of cross-resistance in pathogens associated with cystic fibrosis', eLife, 12, pp. 1–32. doi: 10.7554/elife.91082.
Abstract: Critical Gram-negative pathogens, like <i>Pseudomonas</i>, <i>Stenotrophomonas</i>, and <i>Burkholderia</i>, are now resistant to most antibiotics. Complex resistance profiles, together with synergistic interactions between these organisms, increase the likelihood of treatment failure in distinct infection settings, for example in the lungs of cystic fibrosis (CF) patients. Here, we discover that cell envelope protein homeostasis pathways underpin both antibiotic resistance and cross-protection in CF-associated bacteria. We find that inhibition of oxidative protein folding inactivates multiple species-specific resistance proteins. Using this strategy, we sensitize multidrug-resistant </i>Pseudomonas aeruginosa</i> to β-lactam antibiotics and demonstrate promise of new treatment avenues for the recalcitrant emerging pathogen <i>Stenotrophomonas maltophilia</i>. The same approach also inhibits cross-protection between resistant <i>S. maltophilia</i> and susceptible <i>P. aeruginosa</i>, allowing eradication of both commonly co-occurring CF-associated organisms. Our results provide the basis for the development of next-generation strategies that target antibiotic resistance, while also impairing specific interbacterial interactions that enhance the severity of polymicrobial infections.
Description: Data availability: All data generated or analyzed during this study are included in the manuscript and supporting files; source data files have been provided.
Version history: Sent for peer review: July 26, 2023 Preprint posted: August 2, 2023 Reviewed Preprint version 1: October 11, 2023 Reviewed Preprint version 2: September 11, 2025 Version of Record published: April 21, 2026
URI: https://bura.brunel.ac.uk/handle/2438/33822
DOI: https://doi.org/10.7554/elife.91082
Appears in Collections:Department of Life Sciences Research Papers

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