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Molecular Determinants for OMF Selectivity in Tripartite RND Multidrug Efflux Systems

Tripartite multidrug RND efflux systems made of an inner membrane transporter, an outer membrane factor (OMF) and a periplasmic adaptor protein (PAP) form a canal to expel drugs across Gram-negative cell wall. Structures of MexA–MexB–OprM and AcrA–AcrB–TolC, from Pseudomonas aeruginosa and Escherich...

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Autores principales: Boyer, Esther, Dessolin, Jean, Lustig, Margaux, Decossas, Marion, Phan, Gilles, Cece, Quentin, Durand, Grégory, Dubois, Véronique, Sansen, Joris, Taveau, Jean-Christophe, Broutin, Isabelle, Daury, Laetitia, Lambert, Olivier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8868134/
https://www.ncbi.nlm.nih.gov/pubmed/35203729
http://dx.doi.org/10.3390/antibiotics11020126
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author Boyer, Esther
Dessolin, Jean
Lustig, Margaux
Decossas, Marion
Phan, Gilles
Cece, Quentin
Durand, Grégory
Dubois, Véronique
Sansen, Joris
Taveau, Jean-Christophe
Broutin, Isabelle
Daury, Laetitia
Lambert, Olivier
author_facet Boyer, Esther
Dessolin, Jean
Lustig, Margaux
Decossas, Marion
Phan, Gilles
Cece, Quentin
Durand, Grégory
Dubois, Véronique
Sansen, Joris
Taveau, Jean-Christophe
Broutin, Isabelle
Daury, Laetitia
Lambert, Olivier
author_sort Boyer, Esther
collection PubMed
description Tripartite multidrug RND efflux systems made of an inner membrane transporter, an outer membrane factor (OMF) and a periplasmic adaptor protein (PAP) form a canal to expel drugs across Gram-negative cell wall. Structures of MexA–MexB–OprM and AcrA–AcrB–TolC, from Pseudomonas aeruginosa and Escherichia coli, respectively, depict a reduced interfacial contact between OMF and PAP, making unclear the comprehension of how OMF is recruited. Here, we show that a Q93R mutation of MexA located in the α-hairpin domain increases antibiotic resistance in the MexA(Q93R)–MexB–OprM-expressed strain. Electron microscopy single-particle analysis reveals that this mutation promotes the formation of tripartite complexes with OprM and non-cognate components OprN and TolC. Evidence indicates that MexA(Q93R) self-assembles into a hexameric form, likely due to interprotomer interactions between paired R93 and D113 amino acids. C-terminal deletion of OprM prevents the formation of tripartite complexes when mixed with MexA and MexB components but not when replacing MexA with MexA(Q93R). This study reveals the Q93R MexA mutation and the OprM C-terminal peptide as molecular determinants modulating the assembly process efficacy with cognate and non-cognate OMFs, even though they are outside the interfacial contact. It provides insights into how OMF selectivity operates during the formation of the tripartite complex.
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spelling pubmed-88681342022-02-25 Molecular Determinants for OMF Selectivity in Tripartite RND Multidrug Efflux Systems Boyer, Esther Dessolin, Jean Lustig, Margaux Decossas, Marion Phan, Gilles Cece, Quentin Durand, Grégory Dubois, Véronique Sansen, Joris Taveau, Jean-Christophe Broutin, Isabelle Daury, Laetitia Lambert, Olivier Antibiotics (Basel) Article Tripartite multidrug RND efflux systems made of an inner membrane transporter, an outer membrane factor (OMF) and a periplasmic adaptor protein (PAP) form a canal to expel drugs across Gram-negative cell wall. Structures of MexA–MexB–OprM and AcrA–AcrB–TolC, from Pseudomonas aeruginosa and Escherichia coli, respectively, depict a reduced interfacial contact between OMF and PAP, making unclear the comprehension of how OMF is recruited. Here, we show that a Q93R mutation of MexA located in the α-hairpin domain increases antibiotic resistance in the MexA(Q93R)–MexB–OprM-expressed strain. Electron microscopy single-particle analysis reveals that this mutation promotes the formation of tripartite complexes with OprM and non-cognate components OprN and TolC. Evidence indicates that MexA(Q93R) self-assembles into a hexameric form, likely due to interprotomer interactions between paired R93 and D113 amino acids. C-terminal deletion of OprM prevents the formation of tripartite complexes when mixed with MexA and MexB components but not when replacing MexA with MexA(Q93R). This study reveals the Q93R MexA mutation and the OprM C-terminal peptide as molecular determinants modulating the assembly process efficacy with cognate and non-cognate OMFs, even though they are outside the interfacial contact. It provides insights into how OMF selectivity operates during the formation of the tripartite complex. MDPI 2022-01-18 /pmc/articles/PMC8868134/ /pubmed/35203729 http://dx.doi.org/10.3390/antibiotics11020126 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Boyer, Esther
Dessolin, Jean
Lustig, Margaux
Decossas, Marion
Phan, Gilles
Cece, Quentin
Durand, Grégory
Dubois, Véronique
Sansen, Joris
Taveau, Jean-Christophe
Broutin, Isabelle
Daury, Laetitia
Lambert, Olivier
Molecular Determinants for OMF Selectivity in Tripartite RND Multidrug Efflux Systems
title Molecular Determinants for OMF Selectivity in Tripartite RND Multidrug Efflux Systems
title_full Molecular Determinants for OMF Selectivity in Tripartite RND Multidrug Efflux Systems
title_fullStr Molecular Determinants for OMF Selectivity in Tripartite RND Multidrug Efflux Systems
title_full_unstemmed Molecular Determinants for OMF Selectivity in Tripartite RND Multidrug Efflux Systems
title_short Molecular Determinants for OMF Selectivity in Tripartite RND Multidrug Efflux Systems
title_sort molecular determinants for omf selectivity in tripartite rnd multidrug efflux systems
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8868134/
https://www.ncbi.nlm.nih.gov/pubmed/35203729
http://dx.doi.org/10.3390/antibiotics11020126
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