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Piperidine-4-Carboxamides Target DNA Gyrase in Mycobacterium abscessus

New, more-effective drugs for the treatment of lung disease caused by nontuberculous mycobacteria (NTM) are needed. Among NTM opportunistic pathogens, Mycobacterium abscessus is the most difficult to cure and intrinsically multidrug resistant. In a whole-cell screen of a compound collection active a...

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Autores principales: Negatu, Dereje Abate, Beuchel, Andreas, Madani, Abdeldjalil, Alvarez, Nadine, Chen, Chao, Aragaw, Wassihun Wedajo, Zimmerman, Matthew D., Laleu, Benoît, Gengenbacher, Martin, Dartois, Véronique, Imming, Peter, Dick, Thomas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8284461/
https://www.ncbi.nlm.nih.gov/pubmed/34001512
http://dx.doi.org/10.1128/AAC.00676-21
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author Negatu, Dereje Abate
Beuchel, Andreas
Madani, Abdeldjalil
Alvarez, Nadine
Chen, Chao
Aragaw, Wassihun Wedajo
Zimmerman, Matthew D.
Laleu, Benoît
Gengenbacher, Martin
Dartois, Véronique
Imming, Peter
Dick, Thomas
author_facet Negatu, Dereje Abate
Beuchel, Andreas
Madani, Abdeldjalil
Alvarez, Nadine
Chen, Chao
Aragaw, Wassihun Wedajo
Zimmerman, Matthew D.
Laleu, Benoît
Gengenbacher, Martin
Dartois, Véronique
Imming, Peter
Dick, Thomas
author_sort Negatu, Dereje Abate
collection PubMed
description New, more-effective drugs for the treatment of lung disease caused by nontuberculous mycobacteria (NTM) are needed. Among NTM opportunistic pathogens, Mycobacterium abscessus is the most difficult to cure and intrinsically multidrug resistant. In a whole-cell screen of a compound collection active against Mycobacterium tuberculosis, we previously identified the piperidine-4-carboxamide (P4C) MMV688844 (844) as a hit against M. abscessus. Here, we identified a more potent analog of 844 and showed that both the parent and improved analog retain activity against strains representing all three subspecies of the M. abscessus complex. Furthermore, P4Cs showed bactericidal and antibiofilm activity. Spontaneous resistance against the P4Cs emerged at a frequency of 10(−8)/CFU and mapped to gyrA and gyrB encoding the subunits of DNA gyrase. Biochemical studies with recombinant M. abscessus DNA gyrase showed that P4Cs inhibit the wild-type enzyme but not the P4C-resistant mutant. P4C-resistant strains showed limited cross-resistance to the fluoroquinolone moxifloxacin, which is in clinical use for the treatment of macrolide-resistant M. abscessus disease, and no cross-resistance to the benzimidazole SPR719, a novel DNA gyrase inhibitor in clinical development for the treatment of mycobacterial diseases. Analyses of P4Cs in recA promoter-based DNA damage reporter strains showed induction of recA promoter activity in the wild type but not in the P4C-resistant mutant background. This indicates that P4Cs, similar to fluoroquinolones, cause DNA gyrase-mediated DNA damage. Together, our results show that P4Cs present a novel class of mycobacterial DNA gyrase inhibitors with attractive antimicrobial activities against the M. abscessus complex.
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spelling pubmed-82844612022-01-16 Piperidine-4-Carboxamides Target DNA Gyrase in Mycobacterium abscessus Negatu, Dereje Abate Beuchel, Andreas Madani, Abdeldjalil Alvarez, Nadine Chen, Chao Aragaw, Wassihun Wedajo Zimmerman, Matthew D. Laleu, Benoît Gengenbacher, Martin Dartois, Véronique Imming, Peter Dick, Thomas Antimicrob Agents Chemother Mechanisms of Action: Physiological Effects New, more-effective drugs for the treatment of lung disease caused by nontuberculous mycobacteria (NTM) are needed. Among NTM opportunistic pathogens, Mycobacterium abscessus is the most difficult to cure and intrinsically multidrug resistant. In a whole-cell screen of a compound collection active against Mycobacterium tuberculosis, we previously identified the piperidine-4-carboxamide (P4C) MMV688844 (844) as a hit against M. abscessus. Here, we identified a more potent analog of 844 and showed that both the parent and improved analog retain activity against strains representing all three subspecies of the M. abscessus complex. Furthermore, P4Cs showed bactericidal and antibiofilm activity. Spontaneous resistance against the P4Cs emerged at a frequency of 10(−8)/CFU and mapped to gyrA and gyrB encoding the subunits of DNA gyrase. Biochemical studies with recombinant M. abscessus DNA gyrase showed that P4Cs inhibit the wild-type enzyme but not the P4C-resistant mutant. P4C-resistant strains showed limited cross-resistance to the fluoroquinolone moxifloxacin, which is in clinical use for the treatment of macrolide-resistant M. abscessus disease, and no cross-resistance to the benzimidazole SPR719, a novel DNA gyrase inhibitor in clinical development for the treatment of mycobacterial diseases. Analyses of P4Cs in recA promoter-based DNA damage reporter strains showed induction of recA promoter activity in the wild type but not in the P4C-resistant mutant background. This indicates that P4Cs, similar to fluoroquinolones, cause DNA gyrase-mediated DNA damage. Together, our results show that P4Cs present a novel class of mycobacterial DNA gyrase inhibitors with attractive antimicrobial activities against the M. abscessus complex. American Society for Microbiology 2021-07-16 /pmc/articles/PMC8284461/ /pubmed/34001512 http://dx.doi.org/10.1128/AAC.00676-21 Text en Copyright © 2021 Negatu et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Mechanisms of Action: Physiological Effects
Negatu, Dereje Abate
Beuchel, Andreas
Madani, Abdeldjalil
Alvarez, Nadine
Chen, Chao
Aragaw, Wassihun Wedajo
Zimmerman, Matthew D.
Laleu, Benoît
Gengenbacher, Martin
Dartois, Véronique
Imming, Peter
Dick, Thomas
Piperidine-4-Carboxamides Target DNA Gyrase in Mycobacterium abscessus
title Piperidine-4-Carboxamides Target DNA Gyrase in Mycobacterium abscessus
title_full Piperidine-4-Carboxamides Target DNA Gyrase in Mycobacterium abscessus
title_fullStr Piperidine-4-Carboxamides Target DNA Gyrase in Mycobacterium abscessus
title_full_unstemmed Piperidine-4-Carboxamides Target DNA Gyrase in Mycobacterium abscessus
title_short Piperidine-4-Carboxamides Target DNA Gyrase in Mycobacterium abscessus
title_sort piperidine-4-carboxamides target dna gyrase in mycobacterium abscessus
topic Mechanisms of Action: Physiological Effects
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8284461/
https://www.ncbi.nlm.nih.gov/pubmed/34001512
http://dx.doi.org/10.1128/AAC.00676-21
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