Cargando…

Salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in Australian freshwater and coastal‐marine microbial mats

N(2)‐fixing heterocytous cyanobacteria are considered to play a minor role in sustaining coastal microbial mat communities developing under normal marine to hypersaline conditions. Here, we investigated microbial mats growing under different salinities from freshwater mats of Giblin River (Tasmania)...

Descripción completa

Detalles Bibliográficos
Autores principales: Campbell, Matthew A., Bauersachs, Thorsten, Schwark, Lorenz, Proemse, Bernadette C., Eberhard, Rolan S., Coolen, Marco J. L., Grice, Kliti
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10092834/
https://www.ncbi.nlm.nih.gov/pubmed/36156347
http://dx.doi.org/10.1111/1462-2920.16225
_version_ 1785023441737351168
author Campbell, Matthew A.
Bauersachs, Thorsten
Schwark, Lorenz
Proemse, Bernadette C.
Eberhard, Rolan S.
Coolen, Marco J. L.
Grice, Kliti
author_facet Campbell, Matthew A.
Bauersachs, Thorsten
Schwark, Lorenz
Proemse, Bernadette C.
Eberhard, Rolan S.
Coolen, Marco J. L.
Grice, Kliti
author_sort Campbell, Matthew A.
collection PubMed
description N(2)‐fixing heterocytous cyanobacteria are considered to play a minor role in sustaining coastal microbial mat communities developing under normal marine to hypersaline conditions. Here, we investigated microbial mats growing under different salinities from freshwater mats of Giblin River (Tasmania) to metahaline and hypersaline mats of Shark Bay (Western Australia). Analyses of genetic (rRNA and mRNA) and biological markers (heterocyte glycolipids) revealed an unexpectedly large diversity of heterocytous cyanobacteria in all the studied microbial mat communities. It was observed that the taxonomic distribution as well as abundance of cyanobacteria is strongly affected by salinity. Low salinity favoured the presence of heterocytous cyanobacteria in freshwater mats, while mats thriving in higher salinities mainly supported the growth unicellular and filamentous non‐heterocytous genera. However, even though mRNA transcripts derived from heterocytous cyanobacteria were lower in Shark Bay (<6%) microbial mats, functional analyses revealed that these diazotrophs were transcribing a substantial proportion of the genes involved in biofilm formation and nitrogen fixation. Overall, our data reveal an unexpectedly high diversity of heterocytous cyanobacteria (e.g. Calothrix, Scytonema, Nodularia, Gloeotrichia, Stigonema, Fischerella and Chlorogloeopsis) that had yet to be described in metahaline and hypersaline microbial mats from Shark Bay and that they play a vital role in sustaining the ecosystem functioning of coastal‐marine microbial mat systems.
format Online
Article
Text
id pubmed-10092834
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher John Wiley & Sons, Inc.
record_format MEDLINE/PubMed
spelling pubmed-100928342023-04-13 Salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in Australian freshwater and coastal‐marine microbial mats Campbell, Matthew A. Bauersachs, Thorsten Schwark, Lorenz Proemse, Bernadette C. Eberhard, Rolan S. Coolen, Marco J. L. Grice, Kliti Environ Microbiol Research Articles N(2)‐fixing heterocytous cyanobacteria are considered to play a minor role in sustaining coastal microbial mat communities developing under normal marine to hypersaline conditions. Here, we investigated microbial mats growing under different salinities from freshwater mats of Giblin River (Tasmania) to metahaline and hypersaline mats of Shark Bay (Western Australia). Analyses of genetic (rRNA and mRNA) and biological markers (heterocyte glycolipids) revealed an unexpectedly large diversity of heterocytous cyanobacteria in all the studied microbial mat communities. It was observed that the taxonomic distribution as well as abundance of cyanobacteria is strongly affected by salinity. Low salinity favoured the presence of heterocytous cyanobacteria in freshwater mats, while mats thriving in higher salinities mainly supported the growth unicellular and filamentous non‐heterocytous genera. However, even though mRNA transcripts derived from heterocytous cyanobacteria were lower in Shark Bay (<6%) microbial mats, functional analyses revealed that these diazotrophs were transcribing a substantial proportion of the genes involved in biofilm formation and nitrogen fixation. Overall, our data reveal an unexpectedly high diversity of heterocytous cyanobacteria (e.g. Calothrix, Scytonema, Nodularia, Gloeotrichia, Stigonema, Fischerella and Chlorogloeopsis) that had yet to be described in metahaline and hypersaline microbial mats from Shark Bay and that they play a vital role in sustaining the ecosystem functioning of coastal‐marine microbial mat systems. John Wiley & Sons, Inc. 2022-10-10 2022-12 /pmc/articles/PMC10092834/ /pubmed/36156347 http://dx.doi.org/10.1111/1462-2920.16225 Text en © 2022 The Authors. Environmental Microbiology published by Society for Applied Microbiology and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Campbell, Matthew A.
Bauersachs, Thorsten
Schwark, Lorenz
Proemse, Bernadette C.
Eberhard, Rolan S.
Coolen, Marco J. L.
Grice, Kliti
Salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in Australian freshwater and coastal‐marine microbial mats
title Salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in Australian freshwater and coastal‐marine microbial mats
title_full Salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in Australian freshwater and coastal‐marine microbial mats
title_fullStr Salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in Australian freshwater and coastal‐marine microbial mats
title_full_unstemmed Salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in Australian freshwater and coastal‐marine microbial mats
title_short Salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in Australian freshwater and coastal‐marine microbial mats
title_sort salinity‐driven ecology and diversity changes of heterocytous cyanobacteria in australian freshwater and coastal‐marine microbial mats
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10092834/
https://www.ncbi.nlm.nih.gov/pubmed/36156347
http://dx.doi.org/10.1111/1462-2920.16225
work_keys_str_mv AT campbellmatthewa salinitydrivenecologyanddiversitychangesofheterocytouscyanobacteriainaustralianfreshwaterandcoastalmarinemicrobialmats
AT bauersachsthorsten salinitydrivenecologyanddiversitychangesofheterocytouscyanobacteriainaustralianfreshwaterandcoastalmarinemicrobialmats
AT schwarklorenz salinitydrivenecologyanddiversitychangesofheterocytouscyanobacteriainaustralianfreshwaterandcoastalmarinemicrobialmats
AT proemsebernadettec salinitydrivenecologyanddiversitychangesofheterocytouscyanobacteriainaustralianfreshwaterandcoastalmarinemicrobialmats
AT eberhardrolans salinitydrivenecologyanddiversitychangesofheterocytouscyanobacteriainaustralianfreshwaterandcoastalmarinemicrobialmats
AT coolenmarcojl salinitydrivenecologyanddiversitychangesofheterocytouscyanobacteriainaustralianfreshwaterandcoastalmarinemicrobialmats
AT gricekliti salinitydrivenecologyanddiversitychangesofheterocytouscyanobacteriainaustralianfreshwaterandcoastalmarinemicrobialmats