We studied the effects of future climate change scenarios on plankton communities of a Norwegian fjord using a mesocosm approach. After the spring bloom, natural plankton were enclosed and treated in duplicates with inorganic nutrients elevated to pre-bloom conditions (N, P, Si; eutrophication), lowering of 0.4 pH units (acidification), and rising 3°C temperature (warming). All nutrient-amended treatments resulted in phytoplankton blooms dominated by chain-forming diatoms, and reached 13–16 μg chlorophyll (chl) a l−1. In the control mesocosms, chl a remained below 1 μg l−1. Acidification and warming had contrasting effects on the phenology and bloom-dynamics of autotrophic and heterotrophic microplankton. Bacillariophyceae, prymnesiophyceae...
Ocean warming can modify the ecophysiology and distribution of marine organisms, and relationships b...
Aquatic ecosystems face a multitude of environmental stressors, including warming and acidification....
Every year, the oceans absorb about 30% of anthropogenic carbon dioxide (CO2) leading to a re-equili...
We studied the effects of future climate change scenarios on plankton communities of a Norwegian fjo...
We studied the effects of future climate change scenarios on plankton communities of a Norwegian fjo...
Climate change scenarios project that precipitation will increase in northern Europe, causing amplif...
AbstractGlobal change puts coastal marine systems under pressure, affecting community structure and ...
1365-2486Ocean warming can modify the ecophysiology and distribution of marine organisms, and relati...
Among the most important stressors for aquatic ecosystems in the future are global warming and ocean...
The focus of this project was on the pivotal role of microzooplankton (MZP) as trophic intermediary ...
Global warming has already and is continuing to impact the global oceans. Half of the global primary...
Aquatic ecosystems face a multitude of environmental stressors, including warming and acidification....
Global warming and ocean acidification are among the most important stressors for aquatic ecosystems...
Within the BIOACID framework, the effects of elevated CO2 levels on microzooplankton were investigat...
Every year, the oceans absorb about 30% of anthropogenic carbon dioxide (CO2) leading to a re-equili...
Ocean warming can modify the ecophysiology and distribution of marine organisms, and relationships b...
Aquatic ecosystems face a multitude of environmental stressors, including warming and acidification....
Every year, the oceans absorb about 30% of anthropogenic carbon dioxide (CO2) leading to a re-equili...
We studied the effects of future climate change scenarios on plankton communities of a Norwegian fjo...
We studied the effects of future climate change scenarios on plankton communities of a Norwegian fjo...
Climate change scenarios project that precipitation will increase in northern Europe, causing amplif...
AbstractGlobal change puts coastal marine systems under pressure, affecting community structure and ...
1365-2486Ocean warming can modify the ecophysiology and distribution of marine organisms, and relati...
Among the most important stressors for aquatic ecosystems in the future are global warming and ocean...
The focus of this project was on the pivotal role of microzooplankton (MZP) as trophic intermediary ...
Global warming has already and is continuing to impact the global oceans. Half of the global primary...
Aquatic ecosystems face a multitude of environmental stressors, including warming and acidification....
Global warming and ocean acidification are among the most important stressors for aquatic ecosystems...
Within the BIOACID framework, the effects of elevated CO2 levels on microzooplankton were investigat...
Every year, the oceans absorb about 30% of anthropogenic carbon dioxide (CO2) leading to a re-equili...
Ocean warming can modify the ecophysiology and distribution of marine organisms, and relationships b...
Aquatic ecosystems face a multitude of environmental stressors, including warming and acidification....
Every year, the oceans absorb about 30% of anthropogenic carbon dioxide (CO2) leading to a re-equili...