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Actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits

Desferrioxamines are hydroxamate siderophores widely conserved in both aquatic and soil-dwelling Actinobacteria. While the genetic and enzymatic bases of siderophore biosynthesis and their transport in model families of this phylum are well understood, evolutionary studies are lacking. Here, we perf...

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Autores principales: Cruz-Morales, Pablo, Ramos-Aboites, Hilda E., Licona-Cassani, Cuauhtémoc, Selem-Mójica, Nelly, Mejía-Ponce, Paulina M., Souza-Saldívar, Valeria, Barona-Gómez, Francisco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5812494/
https://www.ncbi.nlm.nih.gov/pubmed/28910965
http://dx.doi.org/10.1093/femsec/fix086
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author Cruz-Morales, Pablo
Ramos-Aboites, Hilda E.
Licona-Cassani, Cuauhtémoc
Selem-Mójica, Nelly
Mejía-Ponce, Paulina M.
Souza-Saldívar, Valeria
Barona-Gómez, Francisco
author_facet Cruz-Morales, Pablo
Ramos-Aboites, Hilda E.
Licona-Cassani, Cuauhtémoc
Selem-Mójica, Nelly
Mejía-Ponce, Paulina M.
Souza-Saldívar, Valeria
Barona-Gómez, Francisco
author_sort Cruz-Morales, Pablo
collection PubMed
description Desferrioxamines are hydroxamate siderophores widely conserved in both aquatic and soil-dwelling Actinobacteria. While the genetic and enzymatic bases of siderophore biosynthesis and their transport in model families of this phylum are well understood, evolutionary studies are lacking. Here, we perform a comprehensive desferrioxamine-centric (des genes) phylogenomic analysis, which includes the genomes of six novel strains isolated from an iron and phosphorous depleted oasis in the Chihuahuan desert of Mexico. Our analyses reveal previously unnoticed desferrioxamine evolutionary patterns, involving both biosynthetic and transport genes, likely to be related to desferrioxamines chemical diversity. The identified patterns were used to postulate experimentally testable hypotheses after phenotypic characterization, including profiling of siderophores production and growth stimulation of co-cultures under iron deficiency. Based in our results, we propose a novel des gene, which we term desG, as responsible for incorporation of phenylacetyl moieties during biosynthesis of previously reported arylated desferrioxamines. Moreover, a genomic-based classification of the siderophore-binding proteins responsible for specific and generalist siderophore assimilation is postulated. This report provides a much-needed evolutionary framework, with specific insights supported by experimental data, to direct the future ecological and functional analysis of desferrioxamines in the environment.
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spelling pubmed-58124942018-02-23 Actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits Cruz-Morales, Pablo Ramos-Aboites, Hilda E. Licona-Cassani, Cuauhtémoc Selem-Mójica, Nelly Mejía-Ponce, Paulina M. Souza-Saldívar, Valeria Barona-Gómez, Francisco FEMS Microbiol Ecol Research Article Desferrioxamines are hydroxamate siderophores widely conserved in both aquatic and soil-dwelling Actinobacteria. While the genetic and enzymatic bases of siderophore biosynthesis and their transport in model families of this phylum are well understood, evolutionary studies are lacking. Here, we perform a comprehensive desferrioxamine-centric (des genes) phylogenomic analysis, which includes the genomes of six novel strains isolated from an iron and phosphorous depleted oasis in the Chihuahuan desert of Mexico. Our analyses reveal previously unnoticed desferrioxamine evolutionary patterns, involving both biosynthetic and transport genes, likely to be related to desferrioxamines chemical diversity. The identified patterns were used to postulate experimentally testable hypotheses after phenotypic characterization, including profiling of siderophores production and growth stimulation of co-cultures under iron deficiency. Based in our results, we propose a novel des gene, which we term desG, as responsible for incorporation of phenylacetyl moieties during biosynthesis of previously reported arylated desferrioxamines. Moreover, a genomic-based classification of the siderophore-binding proteins responsible for specific and generalist siderophore assimilation is postulated. This report provides a much-needed evolutionary framework, with specific insights supported by experimental data, to direct the future ecological and functional analysis of desferrioxamines in the environment. Oxford University Press 2017-07-07 2017-09 /pmc/articles/PMC5812494/ /pubmed/28910965 http://dx.doi.org/10.1093/femsec/fix086 Text en © FEMS 2017. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Research Article
Cruz-Morales, Pablo
Ramos-Aboites, Hilda E.
Licona-Cassani, Cuauhtémoc
Selem-Mójica, Nelly
Mejía-Ponce, Paulina M.
Souza-Saldívar, Valeria
Barona-Gómez, Francisco
Actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits
title Actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits
title_full Actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits
title_fullStr Actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits
title_full_unstemmed Actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits
title_short Actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits
title_sort actinobacteria phylogenomics, selective isolation from an iron oligotrophic environment and siderophore functional characterization, unveil new desferrioxamine traits
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5812494/
https://www.ncbi.nlm.nih.gov/pubmed/28910965
http://dx.doi.org/10.1093/femsec/fix086
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