Cargando…

Para-Aminobenzoic Acid, Calcium, and c-di-GMP Induce Formation of Cohesive, Syp-Polysaccharide-Dependent Biofilms in Vibrio fischeri

The marine bacterium Vibrio fischeri efficiently colonizes its symbiotic squid host, Euprymna scolopes, by producing a transient biofilm dependent on the symbiosis polysaccharide (SYP). In vitro, however, wild-type strain ES114 fails to form SYP-dependent biofilms. Instead, genetically engineered st...

Descripción completa

Detalles Bibliográficos
Autores principales: Dial, Courtney N., Speare, Lauren, Sharpe, Garrett C., Gifford, Scott M., Septer, Alecia N., Visick, Karen L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8546588/
https://www.ncbi.nlm.nih.gov/pubmed/34607467
http://dx.doi.org/10.1128/mBio.02034-21
_version_ 1784590216375304192
author Dial, Courtney N.
Speare, Lauren
Sharpe, Garrett C.
Gifford, Scott M.
Septer, Alecia N.
Visick, Karen L.
author_facet Dial, Courtney N.
Speare, Lauren
Sharpe, Garrett C.
Gifford, Scott M.
Septer, Alecia N.
Visick, Karen L.
author_sort Dial, Courtney N.
collection PubMed
description The marine bacterium Vibrio fischeri efficiently colonizes its symbiotic squid host, Euprymna scolopes, by producing a transient biofilm dependent on the symbiosis polysaccharide (SYP). In vitro, however, wild-type strain ES114 fails to form SYP-dependent biofilms. Instead, genetically engineered strains, such as those lacking the negative regulator BinK, have been developed to study this phenomenon. Historically, V. fischeri has been grown using LBS, a complex medium containing tryptone and yeast extract; supplementation with calcium is required to induce biofilm formation by a binK mutant. Here, through our discovery that yeast extract inhibits biofilm formation, we uncover signals and underlying mechanisms that control V. fischeri biofilm formation. In contrast to its inability to form a biofilm on unsupplemented LBS, a binK mutant formed cohesive, SYP-dependent colony biofilms on tTBS, modified LBS that lacks yeast extract. Moreover, wild-type strain ES114 became proficient to form cohesive, SYP-dependent biofilms when grown in tTBS supplemented with both calcium and the vitamin para-aminobenzoic acid (pABA); neither molecule alone was sufficient, indicating that this phenotype relies on coordinating two cues. pABA/calcium supplementation also inhibited bacterial motility. Consistent with these phenotypes, cells grown in tTBS with pABA/calcium were enriched in transcripts for biofilm-related genes and predicted diguanylate cyclases, which produce the second messenger cyclic-di-GMP (c-di-GMP). They also exhibited elevated levels of c-di-GMP, which was required for the observed phenotypes, as phosphodiesterase overproduction abrogated biofilm formation and partially rescued motility. This work thus provides insight into conditions, signals, and processes that promote biofilm formation by V. fischeri.
format Online
Article
Text
id pubmed-8546588
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-85465882021-11-04 Para-Aminobenzoic Acid, Calcium, and c-di-GMP Induce Formation of Cohesive, Syp-Polysaccharide-Dependent Biofilms in Vibrio fischeri Dial, Courtney N. Speare, Lauren Sharpe, Garrett C. Gifford, Scott M. Septer, Alecia N. Visick, Karen L. mBio Research Article The marine bacterium Vibrio fischeri efficiently colonizes its symbiotic squid host, Euprymna scolopes, by producing a transient biofilm dependent on the symbiosis polysaccharide (SYP). In vitro, however, wild-type strain ES114 fails to form SYP-dependent biofilms. Instead, genetically engineered strains, such as those lacking the negative regulator BinK, have been developed to study this phenomenon. Historically, V. fischeri has been grown using LBS, a complex medium containing tryptone and yeast extract; supplementation with calcium is required to induce biofilm formation by a binK mutant. Here, through our discovery that yeast extract inhibits biofilm formation, we uncover signals and underlying mechanisms that control V. fischeri biofilm formation. In contrast to its inability to form a biofilm on unsupplemented LBS, a binK mutant formed cohesive, SYP-dependent colony biofilms on tTBS, modified LBS that lacks yeast extract. Moreover, wild-type strain ES114 became proficient to form cohesive, SYP-dependent biofilms when grown in tTBS supplemented with both calcium and the vitamin para-aminobenzoic acid (pABA); neither molecule alone was sufficient, indicating that this phenotype relies on coordinating two cues. pABA/calcium supplementation also inhibited bacterial motility. Consistent with these phenotypes, cells grown in tTBS with pABA/calcium were enriched in transcripts for biofilm-related genes and predicted diguanylate cyclases, which produce the second messenger cyclic-di-GMP (c-di-GMP). They also exhibited elevated levels of c-di-GMP, which was required for the observed phenotypes, as phosphodiesterase overproduction abrogated biofilm formation and partially rescued motility. This work thus provides insight into conditions, signals, and processes that promote biofilm formation by V. fischeri. American Society for Microbiology 2021-10-05 /pmc/articles/PMC8546588/ /pubmed/34607467 http://dx.doi.org/10.1128/mBio.02034-21 Text en Copyright © 2021 Dial et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Dial, Courtney N.
Speare, Lauren
Sharpe, Garrett C.
Gifford, Scott M.
Septer, Alecia N.
Visick, Karen L.
Para-Aminobenzoic Acid, Calcium, and c-di-GMP Induce Formation of Cohesive, Syp-Polysaccharide-Dependent Biofilms in Vibrio fischeri
title Para-Aminobenzoic Acid, Calcium, and c-di-GMP Induce Formation of Cohesive, Syp-Polysaccharide-Dependent Biofilms in Vibrio fischeri
title_full Para-Aminobenzoic Acid, Calcium, and c-di-GMP Induce Formation of Cohesive, Syp-Polysaccharide-Dependent Biofilms in Vibrio fischeri
title_fullStr Para-Aminobenzoic Acid, Calcium, and c-di-GMP Induce Formation of Cohesive, Syp-Polysaccharide-Dependent Biofilms in Vibrio fischeri
title_full_unstemmed Para-Aminobenzoic Acid, Calcium, and c-di-GMP Induce Formation of Cohesive, Syp-Polysaccharide-Dependent Biofilms in Vibrio fischeri
title_short Para-Aminobenzoic Acid, Calcium, and c-di-GMP Induce Formation of Cohesive, Syp-Polysaccharide-Dependent Biofilms in Vibrio fischeri
title_sort para-aminobenzoic acid, calcium, and c-di-gmp induce formation of cohesive, syp-polysaccharide-dependent biofilms in vibrio fischeri
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8546588/
https://www.ncbi.nlm.nih.gov/pubmed/34607467
http://dx.doi.org/10.1128/mBio.02034-21
work_keys_str_mv AT dialcourtneyn paraaminobenzoicacidcalciumandcdigmpinduceformationofcohesivesyppolysaccharidedependentbiofilmsinvibriofischeri
AT spearelauren paraaminobenzoicacidcalciumandcdigmpinduceformationofcohesivesyppolysaccharidedependentbiofilmsinvibriofischeri
AT sharpegarrettc paraaminobenzoicacidcalciumandcdigmpinduceformationofcohesivesyppolysaccharidedependentbiofilmsinvibriofischeri
AT giffordscottm paraaminobenzoicacidcalciumandcdigmpinduceformationofcohesivesyppolysaccharidedependentbiofilmsinvibriofischeri
AT septeralecian paraaminobenzoicacidcalciumandcdigmpinduceformationofcohesivesyppolysaccharidedependentbiofilmsinvibriofischeri
AT visickkarenl paraaminobenzoicacidcalciumandcdigmpinduceformationofcohesivesyppolysaccharidedependentbiofilmsinvibriofischeri