Although phenotypic plasticity is a widespread phenomenon, its implications for species responses to climate change are not well understood. For example, toxic cyanobacteria can form dense surface blooms threatening water quality in many eutrophic lakes, yet a theoretical framework to predict how phenotypic plasticity affects bloom development at elevated pCO2 is still lacking. We measured phenotypic plasticity of the carbon fixation rates of the common bloom-forming cyanobacterium Microcystis. Our results revealed a 1.8- to 5-fold increase in the maximum CO2 uptake rate of Microcystis at elevated pCO2, which exceeds CO2 responses reported for other phytoplankton species. The observed plasticity was incorporated into a mathematical model to...
Elevated pCO2 may promote phytoplankton growth, and potentially alleviate carbon limitation during d...
Constraints on inorganic carbon (C(i)) availability stimulated buoyancy in natural, photosynthetical...
It is important to understand how marine calcifying organisms may acclimatize to ocean acidification...
Climate change is likely to stimulate the development of harmful cyanobacterial blooms in eutrophic ...
Climate change is likely to stimulate the development of harmful cyanobacterial blooms in eutrophic ...
Rising CO2 concentrations may have large effects on aquatic microorganisms. In this study, we invest...
The waters of our planet are full with cyanobacteria that use CO₂, water and light for photosynthesi...
Rising atmospheric carbon dioxide (CO2) may stimulate the proliferation of cyanobacteria. To investi...
Phytoplankton photosynthesis strongly relies on the operation of carbon‐concentrating mechanisms (CC...
Phytoplankton blooms are increasing in frequency, intensity, and duration in aquatic ecosystems worl...
Harmful algal blooms threaten the water quality of many eutrophic and hypertrophic lakes and cause s...
Phytoplankton photosynthesis strongly relies on the operation of carbon‐concentrating mechanisms (CC...
Harmful algal blooms threaten the water quality of many eutrophic and hypertrophic lakes and cause s...
Elevated pCO2 may promote phytoplankton growth, and potentially alleviate carbon limitation during d...
Cyanobacteria can form dense and sometimes toxic blooms in freshwater and marine environments, which...
Elevated pCO2 may promote phytoplankton growth, and potentially alleviate carbon limitation during d...
Constraints on inorganic carbon (C(i)) availability stimulated buoyancy in natural, photosynthetical...
It is important to understand how marine calcifying organisms may acclimatize to ocean acidification...
Climate change is likely to stimulate the development of harmful cyanobacterial blooms in eutrophic ...
Climate change is likely to stimulate the development of harmful cyanobacterial blooms in eutrophic ...
Rising CO2 concentrations may have large effects on aquatic microorganisms. In this study, we invest...
The waters of our planet are full with cyanobacteria that use CO₂, water and light for photosynthesi...
Rising atmospheric carbon dioxide (CO2) may stimulate the proliferation of cyanobacteria. To investi...
Phytoplankton photosynthesis strongly relies on the operation of carbon‐concentrating mechanisms (CC...
Phytoplankton blooms are increasing in frequency, intensity, and duration in aquatic ecosystems worl...
Harmful algal blooms threaten the water quality of many eutrophic and hypertrophic lakes and cause s...
Phytoplankton photosynthesis strongly relies on the operation of carbon‐concentrating mechanisms (CC...
Harmful algal blooms threaten the water quality of many eutrophic and hypertrophic lakes and cause s...
Elevated pCO2 may promote phytoplankton growth, and potentially alleviate carbon limitation during d...
Cyanobacteria can form dense and sometimes toxic blooms in freshwater and marine environments, which...
Elevated pCO2 may promote phytoplankton growth, and potentially alleviate carbon limitation during d...
Constraints on inorganic carbon (C(i)) availability stimulated buoyancy in natural, photosynthetical...
It is important to understand how marine calcifying organisms may acclimatize to ocean acidification...