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Druggable redox pathways against Mycobacterium abscessus in cystic fibrosis patient-derived airway organoids

Mycobacterium abscessus (Mabs) drives life-shortening mortality in cystic fibrosis (CF) patients, primarily because of its resistance to chemotherapeutic agents. To date, our knowledge on the host and bacterial determinants driving Mabs pathology in CF patient lung remains rudimentary. Here, we used...

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Autores principales: Leon-Icaza, Stephen Adonai, Bagayoko, Salimata, Vergé, Romain, Iakobachvili, Nino, Ferrand, Chloé, Aydogan, Talip, Bernard, Célia, Sanchez Dafun, Angelique, Murris-Espin, Marlène, Mazières, Julien, Bordignon, Pierre Jean, Mazères, Serge, Bernes-Lasserre, Pascale, Ramé, Victoria, Lagarde, Jean-Michel, Marcoux, Julien, Bousquet, Marie-Pierre, Chalut, Christian, Guilhot, Christophe, Clevers, Hans, Peters, Peter J., Molle, Virginie, Lugo-Villarino, Geanncarlo, Cam, Kaymeuang, Berry, Laurence, Meunier, Etienne, Cougoule, Céline
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10449475/
https://www.ncbi.nlm.nih.gov/pubmed/37619220
http://dx.doi.org/10.1371/journal.ppat.1011559
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author Leon-Icaza, Stephen Adonai
Bagayoko, Salimata
Vergé, Romain
Iakobachvili, Nino
Ferrand, Chloé
Aydogan, Talip
Bernard, Célia
Sanchez Dafun, Angelique
Murris-Espin, Marlène
Mazières, Julien
Bordignon, Pierre Jean
Mazères, Serge
Bernes-Lasserre, Pascale
Ramé, Victoria
Lagarde, Jean-Michel
Marcoux, Julien
Bousquet, Marie-Pierre
Chalut, Christian
Guilhot, Christophe
Clevers, Hans
Peters, Peter J.
Molle, Virginie
Lugo-Villarino, Geanncarlo
Cam, Kaymeuang
Berry, Laurence
Meunier, Etienne
Cougoule, Céline
author_facet Leon-Icaza, Stephen Adonai
Bagayoko, Salimata
Vergé, Romain
Iakobachvili, Nino
Ferrand, Chloé
Aydogan, Talip
Bernard, Célia
Sanchez Dafun, Angelique
Murris-Espin, Marlène
Mazières, Julien
Bordignon, Pierre Jean
Mazères, Serge
Bernes-Lasserre, Pascale
Ramé, Victoria
Lagarde, Jean-Michel
Marcoux, Julien
Bousquet, Marie-Pierre
Chalut, Christian
Guilhot, Christophe
Clevers, Hans
Peters, Peter J.
Molle, Virginie
Lugo-Villarino, Geanncarlo
Cam, Kaymeuang
Berry, Laurence
Meunier, Etienne
Cougoule, Céline
author_sort Leon-Icaza, Stephen Adonai
collection PubMed
description Mycobacterium abscessus (Mabs) drives life-shortening mortality in cystic fibrosis (CF) patients, primarily because of its resistance to chemotherapeutic agents. To date, our knowledge on the host and bacterial determinants driving Mabs pathology in CF patient lung remains rudimentary. Here, we used human airway organoids (AOs) microinjected with smooth (S) or rough (R-)Mabs to evaluate bacteria fitness, host responses to infection, and new treatment efficacy. We show that S Mabs formed biofilm, and R Mabs formed cord serpentines and displayed a higher virulence. While Mabs infection triggers enhanced oxidative stress, pharmacological activation of antioxidant pathways resulted in better control of Mabs growth and reduced virulence. Genetic and pharmacological inhibition of the CFTR is associated with better growth and higher virulence of S and R Mabs. Finally, pharmacological activation of antioxidant pathways inhibited Mabs growth, at least in part through the quinone oxidoreductase NQO1, and improved efficacy in combination with cefoxitin, a first line antibiotic. In conclusion, we have established AOs as a suitable human system to decipher mechanisms of CF-driven respiratory infection by Mabs and propose boosting of the NRF2-NQO1 axis as a potential host-directed strategy to improve Mabs infection control.
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spelling pubmed-104494752023-08-25 Druggable redox pathways against Mycobacterium abscessus in cystic fibrosis patient-derived airway organoids Leon-Icaza, Stephen Adonai Bagayoko, Salimata Vergé, Romain Iakobachvili, Nino Ferrand, Chloé Aydogan, Talip Bernard, Célia Sanchez Dafun, Angelique Murris-Espin, Marlène Mazières, Julien Bordignon, Pierre Jean Mazères, Serge Bernes-Lasserre, Pascale Ramé, Victoria Lagarde, Jean-Michel Marcoux, Julien Bousquet, Marie-Pierre Chalut, Christian Guilhot, Christophe Clevers, Hans Peters, Peter J. Molle, Virginie Lugo-Villarino, Geanncarlo Cam, Kaymeuang Berry, Laurence Meunier, Etienne Cougoule, Céline PLoS Pathog Research Article Mycobacterium abscessus (Mabs) drives life-shortening mortality in cystic fibrosis (CF) patients, primarily because of its resistance to chemotherapeutic agents. To date, our knowledge on the host and bacterial determinants driving Mabs pathology in CF patient lung remains rudimentary. Here, we used human airway organoids (AOs) microinjected with smooth (S) or rough (R-)Mabs to evaluate bacteria fitness, host responses to infection, and new treatment efficacy. We show that S Mabs formed biofilm, and R Mabs formed cord serpentines and displayed a higher virulence. While Mabs infection triggers enhanced oxidative stress, pharmacological activation of antioxidant pathways resulted in better control of Mabs growth and reduced virulence. Genetic and pharmacological inhibition of the CFTR is associated with better growth and higher virulence of S and R Mabs. Finally, pharmacological activation of antioxidant pathways inhibited Mabs growth, at least in part through the quinone oxidoreductase NQO1, and improved efficacy in combination with cefoxitin, a first line antibiotic. In conclusion, we have established AOs as a suitable human system to decipher mechanisms of CF-driven respiratory infection by Mabs and propose boosting of the NRF2-NQO1 axis as a potential host-directed strategy to improve Mabs infection control. Public Library of Science 2023-08-24 /pmc/articles/PMC10449475/ /pubmed/37619220 http://dx.doi.org/10.1371/journal.ppat.1011559 Text en © 2023 Leon-Icaza et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Leon-Icaza, Stephen Adonai
Bagayoko, Salimata
Vergé, Romain
Iakobachvili, Nino
Ferrand, Chloé
Aydogan, Talip
Bernard, Célia
Sanchez Dafun, Angelique
Murris-Espin, Marlène
Mazières, Julien
Bordignon, Pierre Jean
Mazères, Serge
Bernes-Lasserre, Pascale
Ramé, Victoria
Lagarde, Jean-Michel
Marcoux, Julien
Bousquet, Marie-Pierre
Chalut, Christian
Guilhot, Christophe
Clevers, Hans
Peters, Peter J.
Molle, Virginie
Lugo-Villarino, Geanncarlo
Cam, Kaymeuang
Berry, Laurence
Meunier, Etienne
Cougoule, Céline
Druggable redox pathways against Mycobacterium abscessus in cystic fibrosis patient-derived airway organoids
title Druggable redox pathways against Mycobacterium abscessus in cystic fibrosis patient-derived airway organoids
title_full Druggable redox pathways against Mycobacterium abscessus in cystic fibrosis patient-derived airway organoids
title_fullStr Druggable redox pathways against Mycobacterium abscessus in cystic fibrosis patient-derived airway organoids
title_full_unstemmed Druggable redox pathways against Mycobacterium abscessus in cystic fibrosis patient-derived airway organoids
title_short Druggable redox pathways against Mycobacterium abscessus in cystic fibrosis patient-derived airway organoids
title_sort druggable redox pathways against mycobacterium abscessus in cystic fibrosis patient-derived airway organoids
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10449475/
https://www.ncbi.nlm.nih.gov/pubmed/37619220
http://dx.doi.org/10.1371/journal.ppat.1011559
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