The elemental ratios of marine phytoplankton emerge from complex interactions between the biotic and abiotic components of the ocean, and reflect the plastic response of individuals to changes in their environment. The stoichiometry of phytoplankton is, thus, dynamic and dependent on the physiological state of the cell. We present a theoretical model for the dynamics of the carbon, nitrogen and phosphorus contents of a phytoplankton population. By representing the regulatory processes controlling nutrient uptake, and focusing on the relation between nutrient content and protein synthesis, our model qualitatively replicates existing experimental observations for nutrient content and ratios. The population described by our model takes up nutr...
Aims: We describe the different nutrients that phytoplankton require, their variation among phytopla...
The stoichiometric coupling of carbon to limiting nutrients in marine phytoplankton regulates the ma...
International audienceOcean biogeochemical models are integral components of Earth system models use...
The elemental ratios of marine phytoplankton emerge from complex interactions between the biotic and...
Phytoplankton growth and stoichiometry depend on the availability of multiple nutrients. We use a ma...
Abstract Because phytoplankton live at the interface between the abiotic and the biotic compartments...
The controls on the 'Redfield' N:P stoichiometry of marine phytoplankton and hence the N:P ratio of ...
The metabolic machinery of marine microbes can be remarkably plastic, allowing organisms to persist ...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
Marine phytoplankton are a taxonomically and functionally diverse group of organisms that are key pl...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
AbstractCurrent parameterization of several important physiological rates using rectangular hyperbol...
Aims: We describe the different nutrients that phytoplankton require, their variation among phytopla...
The stoichiometric coupling of carbon to limiting nutrients in marine phytoplankton regulates the ma...
International audienceOcean biogeochemical models are integral components of Earth system models use...
The elemental ratios of marine phytoplankton emerge from complex interactions between the biotic and...
Phytoplankton growth and stoichiometry depend on the availability of multiple nutrients. We use a ma...
Abstract Because phytoplankton live at the interface between the abiotic and the biotic compartments...
The controls on the 'Redfield' N:P stoichiometry of marine phytoplankton and hence the N:P ratio of ...
The metabolic machinery of marine microbes can be remarkably plastic, allowing organisms to persist ...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
Marine phytoplankton are a taxonomically and functionally diverse group of organisms that are key pl...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
AbstractCurrent parameterization of several important physiological rates using rectangular hyperbol...
Aims: We describe the different nutrients that phytoplankton require, their variation among phytopla...
The stoichiometric coupling of carbon to limiting nutrients in marine phytoplankton regulates the ma...
International audienceOcean biogeochemical models are integral components of Earth system models use...