Contrasting models predict two different climate change scenarios for the Southern Ocean (SO), forecasting either less or stronger vertical mixing of the water column. To investigate the responses of SO phytoplankton to these future conditions, we sampled a natural diatom dominated (63%) community from today's relatively moderately mixed Drake Passage waters with both low availabilities of iron (Fe) and light. The phytoplankton community was then incubated at these ambient open ocean conditions (low Fe and low light, moderate mixing treatment), representing a control treatment. In addition, the phytoplankton was grown under two future mixing scenarios based on current climate model predictions. Mixing was simulated by changes in light and F...
The high nutrient low chlorophyll (HNLC) conditions of the Southern Ocean were explored with an ecol...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
Phytoplankton contribute to the Southern Ocean’s (SO) ability to absorb atmospheric CO2 and shape th...
Contrasting models predict two different climate change scenarios for the Southern Ocean (SO), forec...
The rise in anthropogenic CO2 and the associated ocean acidification (OA) will change trace metal so...
Model projections for the Southern Ocean indicate that light, iron (Fe) availability, temperature an...
Southern Ocean phytoplankton have been shown to overcome the low light and low iron (Fe) environment...
International audienceUnder present climatic conditions, primary production in the Southern Ocean is...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
We investigated the responses of the ecologically dominant Antarctic phytoplankton species Phaeocyst...
The high nutrient low chlorophyll (HNLC) conditions of the Southern Ocean were explored with an ecol...
We examined phytoplankton community responses to natural iron fertilisation at 32 sites over and dow...
The high nutrient low chlorophyll (HNLC) conditions of the Southern Ocean were explored with an ecol...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
Phytoplankton contribute to the Southern Ocean’s (SO) ability to absorb atmospheric CO2 and shape th...
Contrasting models predict two different climate change scenarios for the Southern Ocean (SO), forec...
The rise in anthropogenic CO2 and the associated ocean acidification (OA) will change trace metal so...
Model projections for the Southern Ocean indicate that light, iron (Fe) availability, temperature an...
Southern Ocean phytoplankton have been shown to overcome the low light and low iron (Fe) environment...
International audienceUnder present climatic conditions, primary production in the Southern Ocean is...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
We investigated the responses of the ecologically dominant Antarctic phytoplankton species Phaeocyst...
The high nutrient low chlorophyll (HNLC) conditions of the Southern Ocean were explored with an ecol...
We examined phytoplankton community responses to natural iron fertilisation at 32 sites over and dow...
The high nutrient low chlorophyll (HNLC) conditions of the Southern Ocean were explored with an ecol...
The potential interactive effects of iron (Fe) limitation and Ocean Acidification in the Southern Oc...
Phytoplankton contribute to the Southern Ocean’s (SO) ability to absorb atmospheric CO2 and shape th...