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Seawater carbonate chemistry and Synechococcus growth from pCO2 experiments

Many microbial photoautotrophs depend on heterotrophic bacteria for accomplishing essential functions. Environmental changes, however, could alter or eliminate such interactions. We investigated the effects of changing pCO2 on gene transcription in co-cultures of 3 strains of picocyanobacteria (Synechococcus strains CC9311 and WH8102 and Prochlorococcus strain MIT9312) paired with the 'helper' bacterium Alteromonas macleodii EZ55. Co-culture with cyanobacteria resulted in a much higher number of up- and down-regulated genes in EZ55 than pCO2 by itself. Pathway analysis revealed significantly different transcription of genes involved in carbohydrate metabolism, stress response, and chemotaxis, with different patterns of up- or down-regulation in co-culture with different cyanobacterial strains. Gene transcription patterns of organic and inorganic nutrient transporter and catabolism genes in EZ55 suggested resources available in the culture media were altered under elevated (800 ppm) pCO2 conditions. Altogether, changing transcription patterns were consistent with the possibility that the composition of cyanobacterial excretions changed under the two pCO2 regimes, causing extensive ecophysiological changes in both members of the co-cultures. Additionally, significant downregulation of oxidative stress genes in MIT9312/EZ55 cocultures at 800 ppm pCO2 were consistent with a link between the predicted reduced availability of photorespiratory byproducts (i.e., glycolate/2PG) under this condition and observed reductions in internal oxidative stress loads for EZ55, providing a possible explanation for the previously observed lack of “help” provided by EZ55 to MIT9312 under elevated pCO2. If similar broad alterations in microbial ecophysiology occur in the ocean as atmospheric pCO2 increases, they could lead to substantially altered ecosystem functioning and community composition.

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Barreto Filho, Marcelo Malisano, Lu, Zhiying, Walker, Melissa, Morris, J Jeffrey (2022). Dataset: Seawater carbonate chemistry and Synechococcus growth from pCO2 experiments. https://doi.org/10.1594/PANGAEA.955830

DOI retrieved: 2022

Additional Info

Field Value
Imported on November 30, 2024
Last update November 30, 2024
License CC-BY-4.0
Source https://doi.org/10.1594/PANGAEA.955830
Author Barreto Filho, Marcelo Malisano
Given Name Marcelo Malisano
Family Name Barreto Filho
More Authors
Lu, Zhiying
Walker, Melissa
Morris, J Jeffrey
Source Creation 2022
Publication Year 2022
Resource Type text/tab-separated-values - filename: Barreto_Filho-etal_2022_ISME
Subject Areas
Name: BiologicalClassification

Name: Chemistry

Related Identifiers
Title: Community context and pCO2 impact the transcriptome of the “helper” bacterium Alteromonas in co-culture with picocyanobacteria
Identifier: https://doi.org/10.1038/s43705-022-00197-2
Type: DOI
Relation: References
Year: 2022
Source: ISME Communications
Authors: Barreto Filho Marcelo Malisano , Lu Zhiying , Walker Melissa , Morris J Jeffrey , Morris J Jeffrey , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James .

Title: Synechococcus (WH8102 and CC9311) growth and genetic sequence accessions from experiments with variable pCO2 treatments from 2016 to 2018
Identifier: https://doi.org/10.26008/1912/bco-dmo.882390.1
Type: DOI
Relation: References
Year: 2022
Source: Biological and Chemical Oceanography Data Management Office (BCO-DMO)
Authors: Barreto Filho Marcelo Malisano , Lu Zhiying , Walker Melissa , Morris J Jeffrey , Morris J Jeffrey , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James .

Title: seacarb: seawater carbonate chemistry with R. R package version 3.2.16
Identifier: https://cran.r-project.org/web/packages/seacarb/index.html
Type: DOI
Relation: References
Year: 2021
Authors: Barreto Filho Marcelo Malisano , Lu Zhiying , Walker Melissa , Morris J Jeffrey , Morris J Jeffrey , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James .