Marine phytoplankton and heterotrophic bacteria rapidly adapt to future pCO2 conditions in experimental co-cultures
Lu, Z.; Entwistle, E.; Kuhl, M. D.; Durrant, A. R.; Filho, M. M. B.; Goswami, A.; Morris, J.
Show abstract
The CO2 content of Earths atmosphere is rapidly increasing due to human consumption of fossil fuels. Models based on short-term culture experiments predict that major changes will occur in marine phytoplankton communities in the future ocean, but these models rarely consider how the evolutionary potential of phytoplankton or interactions within marine microbial communities may influence these changes. Here we experimentally evolved representatives of four phytoplankton functional types (silicifiers, calcifiers, coastal cyanobacteria, and oligotrophic cyanobacteria) in co-culture with a heterotrophic bacterium, Alteromonas, under either present-day or predicted future pCO2 conditions. Growth rates of cyanobacteria generally increased under both conditions, and the growth defects observed in ancestral Prochlorococcus cultures at elevated pCO2 and in axenic culture were diminished after evolution, possibly due to regulatory mutations in antioxidant genes. Except for Prochlorococcus, mutational profiles suggested phytoplankton experienced primarily purifying selection, but most Alteromonas lineages showed evidence of directional selection, especially when co-cultured with eukaryotic phytoplankton, where evolution appeared to favor a broad metabolic switch from growth on small organic acids to catabolism of more complex carbon substrates. Evolved Alteromonas were also poorer "helpers" for Prochlorococcus, supporting the assertion that the interaction between Prochlorococcus and heterotrophic bacteria is not a true mutualism but rather a competitive interaction stabilized by Black Queen processes. This work provides new insights on how phytoplankton will respond to anthropogenic change and on the evolutionary mechanisms governing the structure and function of marine microbial communities.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Microbial invasion of a toxic medium is facilitated by a resident community but inhibited as the community co-evolves 95%
- Differential global distribution of marine picocyanobacteria gene clusters reveals distinct niche-related adaptive strategies 94%
- Phototroph-heterotroph interactions during growth and long-term starvation across Prochlorococcus and Alteromonas diversity 94%
Similar papers in this journal
- Prochlorococcus exudate stimulates heterotrophic bacterial competition with rival phytoplankton for available nitrogen 96%
- Prochlorococcus rely on microbial interactions rather than on chlorotic resting stages to survive long-term nutrient starvation 96%
- Genome evolution in bacteria isolated from million-year-old subseafloor sediments 96%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.