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Novel katG mutations causing isoniazid resistance in clinical M. tuberculosis isolates

We report the discovery and confirmation of 23 novel mutations with previously undocumented role in isoniazid (INH) drug resistance, in catalase-peroxidase (katG) gene of Mycobacterium tuberculosis (Mtb) isolates. With these mutations, a synonymous mutation in fabG1(g609a), and two canonical mutatio...

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Autores principales: Torres, Jessica N, Paul, Lynthia V, Rodwell, Timothy C, Victor, Thomas C, Amallraja, Anu M, Elghraoui, Afif, Goodmanson, Amy P, Ramirez-Busby, Sarah M, Chawla, Ashu, Zadorozhny, Victoria, Streicher, Elizabeth M, Sirgel, Frederick A, Catanzaro, Donald, Rodrigues, Camilla, Gler, Maria Tarcela, Crudu, Valeru, Catanzaro, Antonino, Valafar, Faramarz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4522615/
https://www.ncbi.nlm.nih.gov/pubmed/26251830
http://dx.doi.org/10.1038/emi.2015.42
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author Torres, Jessica N
Paul, Lynthia V
Rodwell, Timothy C
Victor, Thomas C
Amallraja, Anu M
Elghraoui, Afif
Goodmanson, Amy P
Ramirez-Busby, Sarah M
Chawla, Ashu
Zadorozhny, Victoria
Streicher, Elizabeth M
Sirgel, Frederick A
Catanzaro, Donald
Rodrigues, Camilla
Gler, Maria Tarcela
Crudu, Valeru
Catanzaro, Antonino
Valafar, Faramarz
author_facet Torres, Jessica N
Paul, Lynthia V
Rodwell, Timothy C
Victor, Thomas C
Amallraja, Anu M
Elghraoui, Afif
Goodmanson, Amy P
Ramirez-Busby, Sarah M
Chawla, Ashu
Zadorozhny, Victoria
Streicher, Elizabeth M
Sirgel, Frederick A
Catanzaro, Donald
Rodrigues, Camilla
Gler, Maria Tarcela
Crudu, Valeru
Catanzaro, Antonino
Valafar, Faramarz
author_sort Torres, Jessica N
collection PubMed
description We report the discovery and confirmation of 23 novel mutations with previously undocumented role in isoniazid (INH) drug resistance, in catalase-peroxidase (katG) gene of Mycobacterium tuberculosis (Mtb) isolates. With these mutations, a synonymous mutation in fabG1(g609a), and two canonical mutations, we were able to explain 98% of the phenotypic resistance observed in 366 clinical Mtb isolates collected from four high tuberculosis (TB)-burden countries: India, Moldova, Philippines, and South Africa. We conducted overlapping targeted and whole-genome sequencing for variant discovery in all clinical isolates with a variety of INH-resistant phenotypes. Our analysis showed that just two canonical mutations (katG 315AGC-ACC and inhA promoter-15C-T) identified 89.5% of resistance phenotypes in our collection. Inclusion of the 23 novel mutations reported here, and the previously documented point mutation in fabG1, increased the sensitivity of these mutations as markers of INH resistance to 98%. Only six (2%) of the 332 resistant isolates in our collection did not harbor one or more of these mutations. The third most prevalent substitution, at inhA promoter position -8, present in 39 resistant isolates, was of no diagnostic significance since it always co-occurred with katG 315. 79% of our isolates harboring novel mutations belong to genetic group 1 indicating a higher tendency for this group to go down an uncommon evolutionary path and evade molecular diagnostics. The results of this study contribute to our understanding of the mechanisms of INH resistance in Mtb isolates that lack the canonical mutations and could improve the sensitivity of next generation molecular diagnostics.
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spelling pubmed-45226152015-08-06 Novel katG mutations causing isoniazid resistance in clinical M. tuberculosis isolates Torres, Jessica N Paul, Lynthia V Rodwell, Timothy C Victor, Thomas C Amallraja, Anu M Elghraoui, Afif Goodmanson, Amy P Ramirez-Busby, Sarah M Chawla, Ashu Zadorozhny, Victoria Streicher, Elizabeth M Sirgel, Frederick A Catanzaro, Donald Rodrigues, Camilla Gler, Maria Tarcela Crudu, Valeru Catanzaro, Antonino Valafar, Faramarz Emerg Microbes Infect Original Article We report the discovery and confirmation of 23 novel mutations with previously undocumented role in isoniazid (INH) drug resistance, in catalase-peroxidase (katG) gene of Mycobacterium tuberculosis (Mtb) isolates. With these mutations, a synonymous mutation in fabG1(g609a), and two canonical mutations, we were able to explain 98% of the phenotypic resistance observed in 366 clinical Mtb isolates collected from four high tuberculosis (TB)-burden countries: India, Moldova, Philippines, and South Africa. We conducted overlapping targeted and whole-genome sequencing for variant discovery in all clinical isolates with a variety of INH-resistant phenotypes. Our analysis showed that just two canonical mutations (katG 315AGC-ACC and inhA promoter-15C-T) identified 89.5% of resistance phenotypes in our collection. Inclusion of the 23 novel mutations reported here, and the previously documented point mutation in fabG1, increased the sensitivity of these mutations as markers of INH resistance to 98%. Only six (2%) of the 332 resistant isolates in our collection did not harbor one or more of these mutations. The third most prevalent substitution, at inhA promoter position -8, present in 39 resistant isolates, was of no diagnostic significance since it always co-occurred with katG 315. 79% of our isolates harboring novel mutations belong to genetic group 1 indicating a higher tendency for this group to go down an uncommon evolutionary path and evade molecular diagnostics. The results of this study contribute to our understanding of the mechanisms of INH resistance in Mtb isolates that lack the canonical mutations and could improve the sensitivity of next generation molecular diagnostics. Nature Publishing Group 2015-07 2015-07-15 /pmc/articles/PMC4522615/ /pubmed/26251830 http://dx.doi.org/10.1038/emi.2015.42 Text en Copyright © 2015 Shanghai Shangyixun Cultural Communication Co., Ltd http://creativecommons.org/licenses/by-nc-nd/4.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/4.0/
spellingShingle Original Article
Torres, Jessica N
Paul, Lynthia V
Rodwell, Timothy C
Victor, Thomas C
Amallraja, Anu M
Elghraoui, Afif
Goodmanson, Amy P
Ramirez-Busby, Sarah M
Chawla, Ashu
Zadorozhny, Victoria
Streicher, Elizabeth M
Sirgel, Frederick A
Catanzaro, Donald
Rodrigues, Camilla
Gler, Maria Tarcela
Crudu, Valeru
Catanzaro, Antonino
Valafar, Faramarz
Novel katG mutations causing isoniazid resistance in clinical M. tuberculosis isolates
title Novel katG mutations causing isoniazid resistance in clinical M. tuberculosis isolates
title_full Novel katG mutations causing isoniazid resistance in clinical M. tuberculosis isolates
title_fullStr Novel katG mutations causing isoniazid resistance in clinical M. tuberculosis isolates
title_full_unstemmed Novel katG mutations causing isoniazid resistance in clinical M. tuberculosis isolates
title_short Novel katG mutations causing isoniazid resistance in clinical M. tuberculosis isolates
title_sort novel katg mutations causing isoniazid resistance in clinical m. tuberculosis isolates
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4522615/
https://www.ncbi.nlm.nih.gov/pubmed/26251830
http://dx.doi.org/10.1038/emi.2015.42
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