Iron is known to limit primary production in the Southern Ocean (SO). To cope with the lack of this micronutrient, diatoms, a dominant phytoplankton group in this oceanic region, have been shown in cultures to have developed an original adaptation strategy to maintain efficient growth rates despite very low cellular iron quotas, even in low light conditions. Using a global ocean biogeochemical model, we explored the consequences of this physiological adaptation for the biological pump and the seasonal variability of both surface chlorophyll concentrations and surface partial pressure of carbon dioxide (pCO(2)) in this key region for global climate. In the model, we implemented a low intracellular Fe:C requirement in the SO for diatoms uniqu...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
Previous field studies in the Southern Ocean (SO) indicated an increased occurrence and dominance of...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
Iron is known to limit primary production in the Southern Ocean (SO). To cope with the lack of this ...
Southern Ocean phytoplankton have been shown to overcome the low light and low iron (Fe) environment...
Phytoplankton productivity in the polar Southern Ocean (SO) plays an important role in the transfer ...
Long-term phytoplankton monitoring studies, specifically in the coastal areas of the Western Antarct...
Climate change-mediated alteration of Southern Ocean primary productivity is projected to have bioge...
The Southern Ocean (SO) is a major sink for anthropogenic atmospheric carbon dioxide(CO2), potential...
Model projections for the Southern Ocean indicate that light, iron (Fe) availability, temperature an...
The Southern Ocean is responsible for approximately 40% of oceanic carbon uptake through biological ...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
Previous field studies in the Southern Ocean (SO) indicated an increased occurrence and dominance of...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
Iron is known to limit primary production in the Southern Ocean (SO). To cope with the lack of this ...
Southern Ocean phytoplankton have been shown to overcome the low light and low iron (Fe) environment...
Phytoplankton productivity in the polar Southern Ocean (SO) plays an important role in the transfer ...
Long-term phytoplankton monitoring studies, specifically in the coastal areas of the Western Antarct...
Climate change-mediated alteration of Southern Ocean primary productivity is projected to have bioge...
The Southern Ocean (SO) is a major sink for anthropogenic atmospheric carbon dioxide(CO2), potential...
Model projections for the Southern Ocean indicate that light, iron (Fe) availability, temperature an...
The Southern Ocean is responsible for approximately 40% of oceanic carbon uptake through biological ...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
Previous field studies in the Southern Ocean (SO) indicated an increased occurrence and dominance of...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...