Cargando…

Structural Insights into the Quinolone Resistance Mechanism of Mycobacterium tuberculosis DNA Gyrase

Mycobacterium tuberculosis DNA gyrase, an indispensable nanomachine involved in the regulation of DNA topology, is the only type II topoisomerase present in this organism and is hence the sole target for quinolone action, a crucial drug active against multidrug-resistant tuberculosis. To understand...

Descripción completa

Detalles Bibliográficos
Autores principales: Piton, Jérémie, Petrella, Stéphanie, Delarue, Marc, André-Leroux, Gwénaëlle, Jarlier, Vincent, Aubry, Alexandra, Mayer, Claudine
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2923608/
https://www.ncbi.nlm.nih.gov/pubmed/20805881
http://dx.doi.org/10.1371/journal.pone.0012245
_version_ 1782185523081641984
author Piton, Jérémie
Petrella, Stéphanie
Delarue, Marc
André-Leroux, Gwénaëlle
Jarlier, Vincent
Aubry, Alexandra
Mayer, Claudine
author_facet Piton, Jérémie
Petrella, Stéphanie
Delarue, Marc
André-Leroux, Gwénaëlle
Jarlier, Vincent
Aubry, Alexandra
Mayer, Claudine
author_sort Piton, Jérémie
collection PubMed
description Mycobacterium tuberculosis DNA gyrase, an indispensable nanomachine involved in the regulation of DNA topology, is the only type II topoisomerase present in this organism and is hence the sole target for quinolone action, a crucial drug active against multidrug-resistant tuberculosis. To understand at an atomic level the quinolone resistance mechanism, which emerges in extensively drug resistant tuberculosis, we performed combined functional, biophysical and structural studies of the two individual domains constituting the catalytic DNA gyrase reaction core, namely the Toprim and the breakage-reunion domains. This allowed us to produce a model of the catalytic reaction core in complex with DNA and a quinolone molecule, identifying original mechanistic properties of quinolone binding and clarifying the relationships between amino acid mutations and resistance phenotype of M. tuberculosis DNA gyrase. These results are compatible with our previous studies on quinolone resistance. Interestingly, the structure of the entire breakage-reunion domain revealed a new interaction, in which the Quinolone-Binding Pocket (QBP) is blocked by the N-terminal helix of a symmetry-related molecule. This interaction provides useful starting points for designing peptide based inhibitors that target DNA gyrase to prevent its binding to DNA.
format Text
id pubmed-2923608
institution National Center for Biotechnology Information
language English
publishDate 2010
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-29236082010-08-30 Structural Insights into the Quinolone Resistance Mechanism of Mycobacterium tuberculosis DNA Gyrase Piton, Jérémie Petrella, Stéphanie Delarue, Marc André-Leroux, Gwénaëlle Jarlier, Vincent Aubry, Alexandra Mayer, Claudine PLoS One Research Article Mycobacterium tuberculosis DNA gyrase, an indispensable nanomachine involved in the regulation of DNA topology, is the only type II topoisomerase present in this organism and is hence the sole target for quinolone action, a crucial drug active against multidrug-resistant tuberculosis. To understand at an atomic level the quinolone resistance mechanism, which emerges in extensively drug resistant tuberculosis, we performed combined functional, biophysical and structural studies of the two individual domains constituting the catalytic DNA gyrase reaction core, namely the Toprim and the breakage-reunion domains. This allowed us to produce a model of the catalytic reaction core in complex with DNA and a quinolone molecule, identifying original mechanistic properties of quinolone binding and clarifying the relationships between amino acid mutations and resistance phenotype of M. tuberculosis DNA gyrase. These results are compatible with our previous studies on quinolone resistance. Interestingly, the structure of the entire breakage-reunion domain revealed a new interaction, in which the Quinolone-Binding Pocket (QBP) is blocked by the N-terminal helix of a symmetry-related molecule. This interaction provides useful starting points for designing peptide based inhibitors that target DNA gyrase to prevent its binding to DNA. Public Library of Science 2010-08-18 /pmc/articles/PMC2923608/ /pubmed/20805881 http://dx.doi.org/10.1371/journal.pone.0012245 Text en Piton et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Piton, Jérémie
Petrella, Stéphanie
Delarue, Marc
André-Leroux, Gwénaëlle
Jarlier, Vincent
Aubry, Alexandra
Mayer, Claudine
Structural Insights into the Quinolone Resistance Mechanism of Mycobacterium tuberculosis DNA Gyrase
title Structural Insights into the Quinolone Resistance Mechanism of Mycobacterium tuberculosis DNA Gyrase
title_full Structural Insights into the Quinolone Resistance Mechanism of Mycobacterium tuberculosis DNA Gyrase
title_fullStr Structural Insights into the Quinolone Resistance Mechanism of Mycobacterium tuberculosis DNA Gyrase
title_full_unstemmed Structural Insights into the Quinolone Resistance Mechanism of Mycobacterium tuberculosis DNA Gyrase
title_short Structural Insights into the Quinolone Resistance Mechanism of Mycobacterium tuberculosis DNA Gyrase
title_sort structural insights into the quinolone resistance mechanism of mycobacterium tuberculosis dna gyrase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2923608/
https://www.ncbi.nlm.nih.gov/pubmed/20805881
http://dx.doi.org/10.1371/journal.pone.0012245
work_keys_str_mv AT pitonjeremie structuralinsightsintothequinoloneresistancemechanismofmycobacteriumtuberculosisdnagyrase
AT petrellastephanie structuralinsightsintothequinoloneresistancemechanismofmycobacteriumtuberculosisdnagyrase
AT delaruemarc structuralinsightsintothequinoloneresistancemechanismofmycobacteriumtuberculosisdnagyrase
AT andrelerouxgwenaelle structuralinsightsintothequinoloneresistancemechanismofmycobacteriumtuberculosisdnagyrase
AT jarliervincent structuralinsightsintothequinoloneresistancemechanismofmycobacteriumtuberculosisdnagyrase
AT aubryalexandra structuralinsightsintothequinoloneresistancemechanismofmycobacteriumtuberculosisdnagyrase
AT mayerclaudine structuralinsightsintothequinoloneresistancemechanismofmycobacteriumtuberculosisdnagyrase