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The Nocardia cyriacigeorgica GUH-2 genome shows ongoing adaptation of an environmental Actinobacteria to a pathogen’s lifestyle

BACKGROUND: Nocardia cyriacigeorgica is recognized as one of the most prevalent etiological agents of human nocardiosis. Human exposure to these Actinobacteria stems from direct contact with contaminated environmental matrices. The full genome sequence of N. cyriacigeorgica strain GUH-2 was studied...

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Autores principales: Zoropogui, Anthony, Pujic, Petar, Normand, Philippe, Barbe, Valérie, Belli, Patrick, Graindorge, Arnault, Roche, David, Vallenet, David, Mangenot, Sophie, Boiron, Patrick, Rodriguez-Nava, Véronica, Ribun, Sebastien, Richard, Yves, Cournoyer, Benoit, Blaha, Didier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3751702/
https://www.ncbi.nlm.nih.gov/pubmed/23622346
http://dx.doi.org/10.1186/1471-2164-14-286
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author Zoropogui, Anthony
Pujic, Petar
Normand, Philippe
Barbe, Valérie
Belli, Patrick
Graindorge, Arnault
Roche, David
Vallenet, David
Mangenot, Sophie
Boiron, Patrick
Rodriguez-Nava, Véronica
Ribun, Sebastien
Richard, Yves
Cournoyer, Benoit
Blaha, Didier
author_facet Zoropogui, Anthony
Pujic, Petar
Normand, Philippe
Barbe, Valérie
Belli, Patrick
Graindorge, Arnault
Roche, David
Vallenet, David
Mangenot, Sophie
Boiron, Patrick
Rodriguez-Nava, Véronica
Ribun, Sebastien
Richard, Yves
Cournoyer, Benoit
Blaha, Didier
author_sort Zoropogui, Anthony
collection PubMed
description BACKGROUND: Nocardia cyriacigeorgica is recognized as one of the most prevalent etiological agents of human nocardiosis. Human exposure to these Actinobacteria stems from direct contact with contaminated environmental matrices. The full genome sequence of N. cyriacigeorgica strain GUH-2 was studied to infer major trends in its evolution, including the acquisition of novel genetic elements that could explain its ability to thrive in multiple habitats. RESULTS: N. cyriacigeorgica strain GUH-2 genome size is 6.19 Mb-long, 82.7% of its CDS have homologs in at least another actinobacterial genome, and 74.5% of these are found in N. farcinica. Among N. cyriacigeorgica specific CDS, some are likely implicated in niche specialization such as those involved in denitrification and RuBisCO production, and are found in regions of genomic plasticity (RGP). Overall, 22 RGP were identified in this genome, representing 11.4% of its content. Some of these RGP encode a recombinase and IS elements which are indicative of genomic instability. CDS playing part in virulence were identified in this genome such as those involved in mammalian cell entry or encoding a superoxide dismutase. CDS encoding non ribosomal peptide synthetases (NRPS) and polyketide synthases (PKS) were identified, with some being likely involved in the synthesis of siderophores and toxins. COG analyses showed this genome to have an organization similar to environmental Actinobacteria. CONCLUSION: N. cyriacigeorgica GUH-2 genome shows features suggesting a diversification from an ancestral saprophytic state. GUH-2 ability at acquiring foreign DNA was found significant and to have led to functional changes likely beneficial for its environmental cycle and opportunistic colonization of a human host.
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spelling pubmed-37517022013-08-24 The Nocardia cyriacigeorgica GUH-2 genome shows ongoing adaptation of an environmental Actinobacteria to a pathogen’s lifestyle Zoropogui, Anthony Pujic, Petar Normand, Philippe Barbe, Valérie Belli, Patrick Graindorge, Arnault Roche, David Vallenet, David Mangenot, Sophie Boiron, Patrick Rodriguez-Nava, Véronica Ribun, Sebastien Richard, Yves Cournoyer, Benoit Blaha, Didier BMC Genomics Research Article BACKGROUND: Nocardia cyriacigeorgica is recognized as one of the most prevalent etiological agents of human nocardiosis. Human exposure to these Actinobacteria stems from direct contact with contaminated environmental matrices. The full genome sequence of N. cyriacigeorgica strain GUH-2 was studied to infer major trends in its evolution, including the acquisition of novel genetic elements that could explain its ability to thrive in multiple habitats. RESULTS: N. cyriacigeorgica strain GUH-2 genome size is 6.19 Mb-long, 82.7% of its CDS have homologs in at least another actinobacterial genome, and 74.5% of these are found in N. farcinica. Among N. cyriacigeorgica specific CDS, some are likely implicated in niche specialization such as those involved in denitrification and RuBisCO production, and are found in regions of genomic plasticity (RGP). Overall, 22 RGP were identified in this genome, representing 11.4% of its content. Some of these RGP encode a recombinase and IS elements which are indicative of genomic instability. CDS playing part in virulence were identified in this genome such as those involved in mammalian cell entry or encoding a superoxide dismutase. CDS encoding non ribosomal peptide synthetases (NRPS) and polyketide synthases (PKS) were identified, with some being likely involved in the synthesis of siderophores and toxins. COG analyses showed this genome to have an organization similar to environmental Actinobacteria. CONCLUSION: N. cyriacigeorgica GUH-2 genome shows features suggesting a diversification from an ancestral saprophytic state. GUH-2 ability at acquiring foreign DNA was found significant and to have led to functional changes likely beneficial for its environmental cycle and opportunistic colonization of a human host. BioMed Central 2013-04-27 /pmc/articles/PMC3751702/ /pubmed/23622346 http://dx.doi.org/10.1186/1471-2164-14-286 Text en Copyright © 2013 Zoropogui et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Zoropogui, Anthony
Pujic, Petar
Normand, Philippe
Barbe, Valérie
Belli, Patrick
Graindorge, Arnault
Roche, David
Vallenet, David
Mangenot, Sophie
Boiron, Patrick
Rodriguez-Nava, Véronica
Ribun, Sebastien
Richard, Yves
Cournoyer, Benoit
Blaha, Didier
The Nocardia cyriacigeorgica GUH-2 genome shows ongoing adaptation of an environmental Actinobacteria to a pathogen’s lifestyle
title The Nocardia cyriacigeorgica GUH-2 genome shows ongoing adaptation of an environmental Actinobacteria to a pathogen’s lifestyle
title_full The Nocardia cyriacigeorgica GUH-2 genome shows ongoing adaptation of an environmental Actinobacteria to a pathogen’s lifestyle
title_fullStr The Nocardia cyriacigeorgica GUH-2 genome shows ongoing adaptation of an environmental Actinobacteria to a pathogen’s lifestyle
title_full_unstemmed The Nocardia cyriacigeorgica GUH-2 genome shows ongoing adaptation of an environmental Actinobacteria to a pathogen’s lifestyle
title_short The Nocardia cyriacigeorgica GUH-2 genome shows ongoing adaptation of an environmental Actinobacteria to a pathogen’s lifestyle
title_sort nocardia cyriacigeorgica guh-2 genome shows ongoing adaptation of an environmental actinobacteria to a pathogen’s lifestyle
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3751702/
https://www.ncbi.nlm.nih.gov/pubmed/23622346
http://dx.doi.org/10.1186/1471-2164-14-286
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