The controls on the 'Redfield' N:P stoichiometry of marine phytoplankton and hence the N:P ratio of the deep ocean remain incompletely understood. Here, we use a model for phytoplankton ecophysiology and growth, based on functional traits and resource-allocation trade-offs, to show how environmental filtering, biotic interactions, and element cycling in a global ecosystem model determine phytoplankton biogeography, growth strategies and macromolecular composition. Emergent growth strategies capture major observed patterns in marine biomes. Using a new synthesis of experimental RNA and protein measurements to constrain per-ribosome translation rates, we determine a spatially variable lower limit on adaptive rRNA:protein allocation and hence ...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
A diverse microbial assemblage in the ocean is responsible for nearly half of global primary product...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
The elemental ratios of marine phytoplankton emerge from complex interactions between the biotic and...
We re-examine what controls the deep ocean N:P ratio in the light of recent findings that the C:N:P ...
The similarity of the average ratios of nitrogen (N) and phosphorus (P) in marine dissolved inorgani...
Marine phytoplankton are responsible for ~50% of the CO2 that is fixed annually, worldwide, and cont...
There is a long-established, remarkable correspondence between the nitrogen-to-phosphorus ratio N:P~...
Abstract Because phytoplankton live at the interface between the abiotic and the biotic compartments...
Abstract. Marine microbial communities mediate many biogeochemical transformations in the ocean. Con...
It is widely recognized that the stoichiometry of nutrient elements in phytoplankton varies within t...
Marine microbial communities mediate many biogeochemical transformations in the ocean. Consequently,...
Modelers of global ocean biogeochemistry are beginning to represent a phenomenon that biologists hav...
Marine microbial communities mediate many biogeochemical transformations in the ocean. Consequently,...
The stoichiometric coupling of carbon to limiting nutrients in marine phytoplankton regulates the ma...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
A diverse microbial assemblage in the ocean is responsible for nearly half of global primary product...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
The elemental ratios of marine phytoplankton emerge from complex interactions between the biotic and...
We re-examine what controls the deep ocean N:P ratio in the light of recent findings that the C:N:P ...
The similarity of the average ratios of nitrogen (N) and phosphorus (P) in marine dissolved inorgani...
Marine phytoplankton are responsible for ~50% of the CO2 that is fixed annually, worldwide, and cont...
There is a long-established, remarkable correspondence between the nitrogen-to-phosphorus ratio N:P~...
Abstract Because phytoplankton live at the interface between the abiotic and the biotic compartments...
Abstract. Marine microbial communities mediate many biogeochemical transformations in the ocean. Con...
It is widely recognized that the stoichiometry of nutrient elements in phytoplankton varies within t...
Marine microbial communities mediate many biogeochemical transformations in the ocean. Consequently,...
Modelers of global ocean biogeochemistry are beginning to represent a phenomenon that biologists hav...
Marine microbial communities mediate many biogeochemical transformations in the ocean. Consequently,...
The stoichiometric coupling of carbon to limiting nutrients in marine phytoplankton regulates the ma...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...
A diverse microbial assemblage in the ocean is responsible for nearly half of global primary product...
The factors that control elemental ratios within phytoplankton, like carbon:nitrogen:phosphorus (C:N...