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Genome mining reveals the genus Xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides

BACKGROUND: Various bacteria can use non-ribosomal peptide synthesis (NRPS) to produce peptides or other small molecules. Conserved features within the NRPS machinery allow the type, and sometimes even the structure, of the synthesized polypeptide to be predicted. Thus, bacterial genome mining via i...

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Autores principales: Royer, Monique, Koebnik, Ralf, Marguerettaz, Mélanie, Barbe, Valérie, Robin, Guillaume P, Brin, Chrystelle, Carrere, Sébastien, Gomez, Camila, Hügelland, Manuela, Völler, Ginka H, Noëll, Julie, Pieretti, Isabelle, Rausch, Saskia, Verdier, Valérie, Poussier, Stéphane, Rott, Philippe, Süssmuth, Roderich D, Cociancich, Stéphane
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3849588/
https://www.ncbi.nlm.nih.gov/pubmed/24069909
http://dx.doi.org/10.1186/1471-2164-14-658
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author Royer, Monique
Koebnik, Ralf
Marguerettaz, Mélanie
Barbe, Valérie
Robin, Guillaume P
Brin, Chrystelle
Carrere, Sébastien
Gomez, Camila
Hügelland, Manuela
Völler, Ginka H
Noëll, Julie
Pieretti, Isabelle
Rausch, Saskia
Verdier, Valérie
Poussier, Stéphane
Rott, Philippe
Süssmuth, Roderich D
Cociancich, Stéphane
author_facet Royer, Monique
Koebnik, Ralf
Marguerettaz, Mélanie
Barbe, Valérie
Robin, Guillaume P
Brin, Chrystelle
Carrere, Sébastien
Gomez, Camila
Hügelland, Manuela
Völler, Ginka H
Noëll, Julie
Pieretti, Isabelle
Rausch, Saskia
Verdier, Valérie
Poussier, Stéphane
Rott, Philippe
Süssmuth, Roderich D
Cociancich, Stéphane
author_sort Royer, Monique
collection PubMed
description BACKGROUND: Various bacteria can use non-ribosomal peptide synthesis (NRPS) to produce peptides or other small molecules. Conserved features within the NRPS machinery allow the type, and sometimes even the structure, of the synthesized polypeptide to be predicted. Thus, bacterial genome mining via in silico analyses of NRPS genes offers an attractive opportunity to uncover new bioactive non-ribosomally synthesized peptides. Xanthomonas is a large genus of Gram-negative bacteria that cause disease in hundreds of plant species. To date, the only known small molecule synthesized by NRPS in this genus is albicidin produced by Xanthomonas albilineans. This study aims to estimate the biosynthetic potential of Xanthomonas spp. by in silico analyses of NRPS genes with unknown function recently identified in the sequenced genomes of X. albilineans and related species of Xanthomonas. RESULTS: We performed in silico analyses of NRPS genes present in all published genome sequences of Xanthomonas spp., as well as in unpublished draft genome sequences of Xanthomonas oryzae pv. oryzae strain BAI3 and Xanthomonas spp. strain XaS3. These two latter strains, together with X. albilineans strain GPE PC73 and X. oryzae pv. oryzae strains X8-1A and X11-5A, possess novel NRPS gene clusters and share related NRPS-associated genes such as those required for the biosynthesis of non-proteinogenic amino acids or the secretion of peptides. In silico prediction of peptide structures according to NRPS architecture suggests eight different peptides, each specific to its producing strain. Interestingly, these eight peptides cannot be assigned to any known gene cluster or related to known compounds from natural product databases. PCR screening of a collection of 94 plant pathogenic bacteria indicates that these novel NRPS gene clusters are specific to the genus Xanthomonas and are also present in Xanthomonas translucens and X. oryzae pv. oryzicola. Further genome mining revealed other novel NRPS genes specific to X. oryzae pv. oryzicola or Xanthomonas sacchari. CONCLUSIONS: This study revealed the significant potential of the genus Xanthomonas to produce new non-ribosomally synthesized peptides. Interestingly, this biosynthetic potential seems to be specific to strains of Xanthomonas associated with monocotyledonous plants, suggesting a putative involvement of non-ribosomally synthesized peptides in plant-bacteria interactions.
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spelling pubmed-38495882013-12-05 Genome mining reveals the genus Xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides Royer, Monique Koebnik, Ralf Marguerettaz, Mélanie Barbe, Valérie Robin, Guillaume P Brin, Chrystelle Carrere, Sébastien Gomez, Camila Hügelland, Manuela Völler, Ginka H Noëll, Julie Pieretti, Isabelle Rausch, Saskia Verdier, Valérie Poussier, Stéphane Rott, Philippe Süssmuth, Roderich D Cociancich, Stéphane BMC Genomics Research Article BACKGROUND: Various bacteria can use non-ribosomal peptide synthesis (NRPS) to produce peptides or other small molecules. Conserved features within the NRPS machinery allow the type, and sometimes even the structure, of the synthesized polypeptide to be predicted. Thus, bacterial genome mining via in silico analyses of NRPS genes offers an attractive opportunity to uncover new bioactive non-ribosomally synthesized peptides. Xanthomonas is a large genus of Gram-negative bacteria that cause disease in hundreds of plant species. To date, the only known small molecule synthesized by NRPS in this genus is albicidin produced by Xanthomonas albilineans. This study aims to estimate the biosynthetic potential of Xanthomonas spp. by in silico analyses of NRPS genes with unknown function recently identified in the sequenced genomes of X. albilineans and related species of Xanthomonas. RESULTS: We performed in silico analyses of NRPS genes present in all published genome sequences of Xanthomonas spp., as well as in unpublished draft genome sequences of Xanthomonas oryzae pv. oryzae strain BAI3 and Xanthomonas spp. strain XaS3. These two latter strains, together with X. albilineans strain GPE PC73 and X. oryzae pv. oryzae strains X8-1A and X11-5A, possess novel NRPS gene clusters and share related NRPS-associated genes such as those required for the biosynthesis of non-proteinogenic amino acids or the secretion of peptides. In silico prediction of peptide structures according to NRPS architecture suggests eight different peptides, each specific to its producing strain. Interestingly, these eight peptides cannot be assigned to any known gene cluster or related to known compounds from natural product databases. PCR screening of a collection of 94 plant pathogenic bacteria indicates that these novel NRPS gene clusters are specific to the genus Xanthomonas and are also present in Xanthomonas translucens and X. oryzae pv. oryzicola. Further genome mining revealed other novel NRPS genes specific to X. oryzae pv. oryzicola or Xanthomonas sacchari. CONCLUSIONS: This study revealed the significant potential of the genus Xanthomonas to produce new non-ribosomally synthesized peptides. Interestingly, this biosynthetic potential seems to be specific to strains of Xanthomonas associated with monocotyledonous plants, suggesting a putative involvement of non-ribosomally synthesized peptides in plant-bacteria interactions. BioMed Central 2013-09-27 /pmc/articles/PMC3849588/ /pubmed/24069909 http://dx.doi.org/10.1186/1471-2164-14-658 Text en Copyright © 2013 Royer 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
Royer, Monique
Koebnik, Ralf
Marguerettaz, Mélanie
Barbe, Valérie
Robin, Guillaume P
Brin, Chrystelle
Carrere, Sébastien
Gomez, Camila
Hügelland, Manuela
Völler, Ginka H
Noëll, Julie
Pieretti, Isabelle
Rausch, Saskia
Verdier, Valérie
Poussier, Stéphane
Rott, Philippe
Süssmuth, Roderich D
Cociancich, Stéphane
Genome mining reveals the genus Xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides
title Genome mining reveals the genus Xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides
title_full Genome mining reveals the genus Xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides
title_fullStr Genome mining reveals the genus Xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides
title_full_unstemmed Genome mining reveals the genus Xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides
title_short Genome mining reveals the genus Xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides
title_sort genome mining reveals the genus xanthomonas to be a promising reservoir for new bioactive non-ribosomally synthesized peptides
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3849588/
https://www.ncbi.nlm.nih.gov/pubmed/24069909
http://dx.doi.org/10.1186/1471-2164-14-658
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