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Deciphering the Symbiotic Significance of Quorum Sensing Systems of Sinorhizobium fredii HH103

Quorum sensing (QS) is a bacterial cell-to-cell signaling mechanism that collectively regulates and synchronizes behaviors by means of small diffusible chemical molecules. In rhizobia, QS systems usually relies on the synthesis and detection of N-acyl-homoserine lactones (AHLs). In the model bacteri...

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Autores principales: Acosta-Jurado, Sebastián, Alías-Villegas, Cynthia, Almozara, Andrés, Espuny, M. Rosario, Vinardell, José-María, Pérez-Montaño, Francisco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7022240/
https://www.ncbi.nlm.nih.gov/pubmed/31906451
http://dx.doi.org/10.3390/microorganisms8010068
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author Acosta-Jurado, Sebastián
Alías-Villegas, Cynthia
Almozara, Andrés
Espuny, M. Rosario
Vinardell, José-María
Pérez-Montaño, Francisco
author_facet Acosta-Jurado, Sebastián
Alías-Villegas, Cynthia
Almozara, Andrés
Espuny, M. Rosario
Vinardell, José-María
Pérez-Montaño, Francisco
author_sort Acosta-Jurado, Sebastián
collection PubMed
description Quorum sensing (QS) is a bacterial cell-to-cell signaling mechanism that collectively regulates and synchronizes behaviors by means of small diffusible chemical molecules. In rhizobia, QS systems usually relies on the synthesis and detection of N-acyl-homoserine lactones (AHLs). In the model bacterium Sinorhizobium meliloti functions regulated by the QS systems TraI-TraR and SinI-SinR(-ExpR) include plasmid transfer, production of surface polysaccharides, motility, growth rate and nodulation. These systems are also present in other bacteria of the Sinorhizobium genus, with variations at the species and strain level. In Sinorhizobium fredii NGR234 phenotypes regulated by QS are plasmid transfer, growth rate, sedimentation, motility, biofilm formation, EPS production and copy number of the symbiotic plasmid (pSym). The analysis of the S. fredii HH103 genomes reveal also the presence of both QS systems. In this manuscript we characterized the QS systems of S. fredii HH103, determining that both TraI and SinI AHL-synthases proteins are responsible of the production of short- and long-chain AHLs, respectively, at very low and not physiological concentrations. Interestingly, the main HH103 luxR-type genes, expR and traR, are split into two ORFs, suggesting that in S. fredii HH103 the corresponding carboxy-terminal proteins, which contain the DNA-binding motives, may control target genes in an AHL-independent manner. The presence of a split traR gene is common in other S. fredii strains.
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spelling pubmed-70222402020-03-09 Deciphering the Symbiotic Significance of Quorum Sensing Systems of Sinorhizobium fredii HH103 Acosta-Jurado, Sebastián Alías-Villegas, Cynthia Almozara, Andrés Espuny, M. Rosario Vinardell, José-María Pérez-Montaño, Francisco Microorganisms Article Quorum sensing (QS) is a bacterial cell-to-cell signaling mechanism that collectively regulates and synchronizes behaviors by means of small diffusible chemical molecules. In rhizobia, QS systems usually relies on the synthesis and detection of N-acyl-homoserine lactones (AHLs). In the model bacterium Sinorhizobium meliloti functions regulated by the QS systems TraI-TraR and SinI-SinR(-ExpR) include plasmid transfer, production of surface polysaccharides, motility, growth rate and nodulation. These systems are also present in other bacteria of the Sinorhizobium genus, with variations at the species and strain level. In Sinorhizobium fredii NGR234 phenotypes regulated by QS are plasmid transfer, growth rate, sedimentation, motility, biofilm formation, EPS production and copy number of the symbiotic plasmid (pSym). The analysis of the S. fredii HH103 genomes reveal also the presence of both QS systems. In this manuscript we characterized the QS systems of S. fredii HH103, determining that both TraI and SinI AHL-synthases proteins are responsible of the production of short- and long-chain AHLs, respectively, at very low and not physiological concentrations. Interestingly, the main HH103 luxR-type genes, expR and traR, are split into two ORFs, suggesting that in S. fredii HH103 the corresponding carboxy-terminal proteins, which contain the DNA-binding motives, may control target genes in an AHL-independent manner. The presence of a split traR gene is common in other S. fredii strains. MDPI 2020-01-02 /pmc/articles/PMC7022240/ /pubmed/31906451 http://dx.doi.org/10.3390/microorganisms8010068 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Acosta-Jurado, Sebastián
Alías-Villegas, Cynthia
Almozara, Andrés
Espuny, M. Rosario
Vinardell, José-María
Pérez-Montaño, Francisco
Deciphering the Symbiotic Significance of Quorum Sensing Systems of Sinorhizobium fredii HH103
title Deciphering the Symbiotic Significance of Quorum Sensing Systems of Sinorhizobium fredii HH103
title_full Deciphering the Symbiotic Significance of Quorum Sensing Systems of Sinorhizobium fredii HH103
title_fullStr Deciphering the Symbiotic Significance of Quorum Sensing Systems of Sinorhizobium fredii HH103
title_full_unstemmed Deciphering the Symbiotic Significance of Quorum Sensing Systems of Sinorhizobium fredii HH103
title_short Deciphering the Symbiotic Significance of Quorum Sensing Systems of Sinorhizobium fredii HH103
title_sort deciphering the symbiotic significance of quorum sensing systems of sinorhizobium fredii hh103
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7022240/
https://www.ncbi.nlm.nih.gov/pubmed/31906451
http://dx.doi.org/10.3390/microorganisms8010068
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