Seawater carbonate chemistry and growth of Prochlorococcus and Synechococcus strains

Anthropogenic CO2 emissions are projected to lower the pH of the ocean 0.3 units by 2100. Previous studies suggested that Prochlorococcus and Synechococcus, the numerically dominant phytoplankton in the oceans, have different responses to elevated CO2 that may result in a dramatic shift in their relative abundances in future oceans. Here we showed that the exponential growth rates of these two genera respond to future CO2 conditions in a manner similar to other cyanobacteria, but Prochlorococcus strains had significantly lower realized growth rates under elevated CO2 regimes due to poor survival after exposure to fresh culture media. Despite this, a Synechococcus strain was unable to outcompete a Prochlorococcus strain in co‐culture at elevated CO2. Under these conditions, Prochlorococcus' poor response to elevated CO2 disappeared, and Prochlorococcus' relative fitness showed negative frequency dependence, with both competitors having significant fitness advantages when initially rare. These experiments suggested that the two strains should be able to co‐exist indefinitely in co‐culture despite sharing nearly identical nutritional requirements. We speculate that negative frequency dependence exists due to reductive Black Queen evolution that has resulted in a passively mutualistic relationship analogous to that connecting Prochlorococcus with the “helper” heterotrophic microbes in its environment.

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Cite this as

Knight, Margaret A, Morris, J Jeffrey (2020). Dataset: Seawater carbonate chemistry and growth of Prochlorococcus and Synechococcus strains. https://doi.org/10.1594/PANGAEA.930555

DOI retrieved: 2020

Additional Info

Field Value
Imported on November 29, 2024
Last update November 30, 2024
License CC-BY-4.0
Source https://doi.org/10.1594/PANGAEA.930555
Author Knight, Margaret A
Given Name Margaret A
Family Name Knight
More Authors
Morris, J Jeffrey
Source Creation 2020
Publication Year 2020
Resource Type text/tab-separated-values - filename: Knight-etal_2020_EM
Subject Areas
Name: BiologicalClassification

Name: Biosphere

Name: Chemistry

Related Identifiers
Title: Co-culture with Synechococcus facilitates growth of Prochlorococcus under ocean acidification conditions
Identifier: https://doi.org/10.1111/1462-2920.15277
Type: DOI
Relation: References
Year: 2020
Source: Environmental Microbiology
Authors: Knight Margaret A , Morris J Jeffrey , Morris J Jeffrey , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James .

Title: Data on laboratory cultures and statistical analysis code associated with the paper "Co-culture with Synechococcus facilitates the growth of Prochlorococcus under ocean acidification conditions" published in Environmental Microbiology
Identifier: https://doi.org/10.26008/1912/bco-dmo.839925.1
Type: DOI
Relation: References
Year: 2021
Source: Biological and Chemical Oceanography Data Management Office (BCO-DMO)
Authors: Knight Margaret A , 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: Knight Margaret A , Morris J Jeffrey , Morris J Jeffrey , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James .