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A comprehensive phylogenetic analysis of copper transporting P(1B) ATPases from bacteria of the Rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes

The ubiquitous cytoplasmic membrane copper transporting P(1B‐1) and P(1B‐3)‐type ATPases pump out Cu(+) and Cu(2+), respectively, to prevent cytoplasmic accumulation and avoid toxicity. The presence of five copies of Cu‐ATPases in the symbiotic nitrogen‐fixing bacteria Sinorhizobium meliloti is rema...

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Autores principales: Cubillas, Ciro, Miranda‐Sánchez, Fabiola, González‐Sánchez, Antonio, Elizalde, José Pedro, Vinuesa, Pablo, Brom, Susana, García‐de los Santos, Alejandro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5552934/
https://www.ncbi.nlm.nih.gov/pubmed/28217917
http://dx.doi.org/10.1002/mbo3.452
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author Cubillas, Ciro
Miranda‐Sánchez, Fabiola
González‐Sánchez, Antonio
Elizalde, José Pedro
Vinuesa, Pablo
Brom, Susana
García‐de los Santos, Alejandro
author_facet Cubillas, Ciro
Miranda‐Sánchez, Fabiola
González‐Sánchez, Antonio
Elizalde, José Pedro
Vinuesa, Pablo
Brom, Susana
García‐de los Santos, Alejandro
author_sort Cubillas, Ciro
collection PubMed
description The ubiquitous cytoplasmic membrane copper transporting P(1B‐1) and P(1B‐3)‐type ATPases pump out Cu(+) and Cu(2+), respectively, to prevent cytoplasmic accumulation and avoid toxicity. The presence of five copies of Cu‐ATPases in the symbiotic nitrogen‐fixing bacteria Sinorhizobium meliloti is remarkable; it is the largest number of Cu(+)‐transporters in a bacterial genome reported to date. Since the prevalence of multiple Cu‐ATPases in members of the Rhizobiales order is unknown, we performed an in silico analysis to understand the occurrence, diversity and evolution of Cu(+)‐ATPases in members of the Rhizobiales order. Multiple copies of Cu‐ATPase coding genes (2–8) were detected in 45 of the 53 analyzed genomes. The diversity inferred from a maximum‐likelihood (ML) phylogenetic analysis classified Cu‐ATPases into four monophyletic groups. Each group contained additional subtypes, based on the presence of conserved motifs. This novel phylogeny redefines the current classification, where they are divided into two subtypes (P(1B‐1) and P(1B‐3)). Horizontal gene transfer (HGT) as well as the evolutionary dynamic of plasmid‐borne genes may have played an important role in the functional diversification of Cu‐ATPases. Homologous cytoplasmic and periplasmic Cu(+)‐chaperones, CopZ, and CusF, that integrate a CopZ‐CopA‐CusF tripartite efflux system in gamma‐proteobacteria and archeae, were found in 19 of the 53 surveyed genomes of the Rhizobiales. This result strongly suggests a high divergence of CopZ and CusF homologs, or the existence of unexplored proteins involved in cellular copper transport.
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spelling pubmed-55529342017-08-15 A comprehensive phylogenetic analysis of copper transporting P(1B) ATPases from bacteria of the Rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes Cubillas, Ciro Miranda‐Sánchez, Fabiola González‐Sánchez, Antonio Elizalde, José Pedro Vinuesa, Pablo Brom, Susana García‐de los Santos, Alejandro Microbiologyopen Original Research The ubiquitous cytoplasmic membrane copper transporting P(1B‐1) and P(1B‐3)‐type ATPases pump out Cu(+) and Cu(2+), respectively, to prevent cytoplasmic accumulation and avoid toxicity. The presence of five copies of Cu‐ATPases in the symbiotic nitrogen‐fixing bacteria Sinorhizobium meliloti is remarkable; it is the largest number of Cu(+)‐transporters in a bacterial genome reported to date. Since the prevalence of multiple Cu‐ATPases in members of the Rhizobiales order is unknown, we performed an in silico analysis to understand the occurrence, diversity and evolution of Cu(+)‐ATPases in members of the Rhizobiales order. Multiple copies of Cu‐ATPase coding genes (2–8) were detected in 45 of the 53 analyzed genomes. The diversity inferred from a maximum‐likelihood (ML) phylogenetic analysis classified Cu‐ATPases into four monophyletic groups. Each group contained additional subtypes, based on the presence of conserved motifs. This novel phylogeny redefines the current classification, where they are divided into two subtypes (P(1B‐1) and P(1B‐3)). Horizontal gene transfer (HGT) as well as the evolutionary dynamic of plasmid‐borne genes may have played an important role in the functional diversification of Cu‐ATPases. Homologous cytoplasmic and periplasmic Cu(+)‐chaperones, CopZ, and CusF, that integrate a CopZ‐CopA‐CusF tripartite efflux system in gamma‐proteobacteria and archeae, were found in 19 of the 53 surveyed genomes of the Rhizobiales. This result strongly suggests a high divergence of CopZ and CusF homologs, or the existence of unexplored proteins involved in cellular copper transport. John Wiley and Sons Inc. 2017-02-20 /pmc/articles/PMC5552934/ /pubmed/28217917 http://dx.doi.org/10.1002/mbo3.452 Text en © 2017 The Authors. MicrobiologyOpen published by John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Cubillas, Ciro
Miranda‐Sánchez, Fabiola
González‐Sánchez, Antonio
Elizalde, José Pedro
Vinuesa, Pablo
Brom, Susana
García‐de los Santos, Alejandro
A comprehensive phylogenetic analysis of copper transporting P(1B) ATPases from bacteria of the Rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes
title A comprehensive phylogenetic analysis of copper transporting P(1B) ATPases from bacteria of the Rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes
title_full A comprehensive phylogenetic analysis of copper transporting P(1B) ATPases from bacteria of the Rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes
title_fullStr A comprehensive phylogenetic analysis of copper transporting P(1B) ATPases from bacteria of the Rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes
title_full_unstemmed A comprehensive phylogenetic analysis of copper transporting P(1B) ATPases from bacteria of the Rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes
title_short A comprehensive phylogenetic analysis of copper transporting P(1B) ATPases from bacteria of the Rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes
title_sort comprehensive phylogenetic analysis of copper transporting p(1b) atpases from bacteria of the rhizobiales order uncovers multiplicity, diversity and novel taxonomic subtypes
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5552934/
https://www.ncbi.nlm.nih.gov/pubmed/28217917
http://dx.doi.org/10.1002/mbo3.452
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