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  • Alkalinity, total; Aragonite saturation state; Bicarbonate ion; BIOACID; Biological Impacts of Ocean Acidification; Bottles or small containers/Aquaria (〈20 L); Calcification/Dissolution; Calcite saturation state; Calculated; Calculated using CO2SYS; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbon, inorganic, particulate, production per cell; Carbon, organic, particulate, production per cell; Carbonate ion; Carbonate system computation flag; Carbon dioxide; Chlorophyll a production per cell; Chromista; Emiliania huxleyi; Emiliania huxleyi, diameter; EPOCA; EUR-OCEANS; European network of excellence for Ocean Ecosystems Analysis; European Project on Ocean Acidification; Experimental treatment; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Fugacity of carbon dioxide in seawater, standard deviation; Growth/Morphology; Growth rate; Haptophyta; Laboratory experiment; Laboratory strains; Light:Dark cycle; Measured; North Atlantic; OA-ICC; Ocean Acidification International Coordination Centre; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); Particulate inorganic carbon/particulate organic carbon ratio; Pelagos; pH; Photometry; Phytoplankton; Pigments, Turner fluorometer; Potentiometric open-cell titration; Primary production/Photosynthesis; Radiation, photosynthetically active; Salinity; Scanning electron microscope (SEM); Single species; Temperature, water; Titration potentiometric  (1)
  • BIOACID; Biological Impacts of Ocean Acidification; Chrysophyta, biomass; Chrysophyta, biovolume; Cryptophyta, biomass; Cryptophyta, biovolume; Diatoms, biomass as carbon; Diatoms, centrales, biovolume; Dinoflagellates, autotrophic, biomass as carbon; Dinoflagellates, biomass as carbon; Dinoflagellates, biovolume; Dinoflagellates, heterotrophic, biomass as carbon; Experimental treatment; Experiment day; Flagellates, biovolume; Green algae, biomass as carbon; Green algae, biovolume; Microscopy; Ochromonas marina, biomass; Ochromonas marina, biovolume  (1)
  • Alkalinity, total; Aragonite saturation state; Bicarbonate ion; BIOACID; Biological Impacts of Ocean Acidification; Bottles or small containers/Aquaria (〈20 L); Calcification/Dissolution; Calcite saturation state; Calculated; Calculated using CO2SYS; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbonate ion; Carbonate system computation flag; Carbon dioxide; Chlorophyll a production per cell; Chromista; Emiliania huxleyi; Emiliania huxleyi, diameter; EPOCA; EUR-OCEANS; European network of excellence for Ocean Ecosystems Analysis; European Project on Ocean Acidification; Experimental treatment; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Fugacity of carbon dioxide in seawater, standard deviation; Growth/Morphology; Growth rate; Haptophyta; Laboratory experiment; Laboratory strains; Light:Dark cycle; Measured; North Atlantic; OA-ICC; Ocean Acidification International Coordination Centre; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); Particulate inorganic carbon/particulate organic carbon ratio; Particulate inorganic carbon production per cell; Particulate organic carbon production per cell; Pelagos; pH; Photometry; Phytoplankton; Pigments, Turner fluorometer; Potentiometric open-cell titration; Primary production/Photosynthesis; Radiation, photosynthetically active; Salinity; Scanning electron microscope (SEM); Single species; Temperature, water; Titration potentiometric
  • 2010-2014  (2)
Document type
Keywords
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  • 2010-2014  (2)
Year
  • 1
    Publication Date: 2023-07-09
    Keywords: BIOACID; Biological Impacts of Ocean Acidification; Chrysophyta, biomass; Chrysophyta, biovolume; Cryptophyta, biomass; Cryptophyta, biovolume; Diatoms, biomass as carbon; Diatoms, centrales, biovolume; Dinoflagellates, autotrophic, biomass as carbon; Dinoflagellates, biomass as carbon; Dinoflagellates, biovolume; Dinoflagellates, heterotrophic, biomass as carbon; Experimental treatment; Experiment day; Flagellates, biovolume; Green algae, biomass as carbon; Green algae, biovolume; Microscopy; Ochromonas marina, biomass; Ochromonas marina, biovolume
    Type: Dataset
    Format: text/tab-separated-values, 3238 data points
    Location Call Number Limitation Availability
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  • 2
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    PANGAEA
    In:  Supplement to: Bach, Lennart Thomas; Riebesell, Ulf; Schulz, Kai Georg (2011): Distinguishing between the effects of ocean acidification and ocean carbonation in the coccolithophore Emiliania huxleyi. Limnology and Oceanography, 56(6), 2040-2050, https://doi.org/10.4319/lo.2011.56.6.2040
    Publication Date: 2024-05-27
    Description: The coccolithophore Emiliania huxleyi was cultured under a broad range of carbonate chemistry conditions to distinguish the effects of individual carbonate system parameters on growth, primary production, and calcification. In the first experiment, alkalinity was kept constant and the fugacity of CO2(fCO2) varied from 2 to 600 Pa (1Pa ~ 10 µatm). In the second experiment, pH was kept constant (pHfree = 8) with fCO2 varying from 4 to 370 Pa. Results of the constant-alkalinity approach revealed physiological optima for growth, calcification, and organic carbon production at fCO2 values of ~20Pa, ~40 Pa, and ~80 Pa, respectively. Comparing this with the constant-pH approach showed that growth and organic carbon production increased similarly from low to intermediate CO2 levels but started to diverge towards higher CO2 levels. In the high CO2 range, growth rates and organic carbon production decreased steadily with declining pH at constant alkalinity while remaining consistently higher at constant pH. This suggests that growth and organic carbon production rates are directly related to CO2 at low (sub-saturating) concentrations, whereas towards higher CO2 levels they are adversely affected by the associated decrease in pH. A pH dependence at high fCO2 is also indicated for calcification rates, while the key carbonate system parameter determining calcification at low fCO2 remains unclear. These results imply that key metabolic processes in coccolithophores have their optima at different carbonate chemistry conditions and are influenced by different parameters of the carbonate system at both sides of the optimum.
    Keywords: Alkalinity, total; Aragonite saturation state; Bicarbonate ion; BIOACID; Biological Impacts of Ocean Acidification; Bottles or small containers/Aquaria (〈20 L); Calcification/Dissolution; Calcite saturation state; Calculated; Calculated using CO2SYS; Calculated using seacarb after Nisumaa et al. (2010); Carbon, inorganic, dissolved; Carbon, inorganic, particulate, production per cell; Carbon, organic, particulate, production per cell; Carbonate ion; Carbonate system computation flag; Carbon dioxide; Chlorophyll a production per cell; Chromista; Emiliania huxleyi; Emiliania huxleyi, diameter; EPOCA; EUR-OCEANS; European network of excellence for Ocean Ecosystems Analysis; European Project on Ocean Acidification; Experimental treatment; Fugacity of carbon dioxide (water) at sea surface temperature (wet air); Fugacity of carbon dioxide in seawater, standard deviation; Growth/Morphology; Growth rate; Haptophyta; Laboratory experiment; Laboratory strains; Light:Dark cycle; Measured; North Atlantic; OA-ICC; Ocean Acidification International Coordination Centre; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); Particulate inorganic carbon/particulate organic carbon ratio; Pelagos; pH; Photometry; Phytoplankton; Pigments, Turner fluorometer; Potentiometric open-cell titration; Primary production/Photosynthesis; Radiation, photosynthetically active; Salinity; Scanning electron microscope (SEM); Single species; Temperature, water; Titration potentiometric
    Type: Dataset
    Format: text/tab-separated-values, 1396 data points
    Location Call Number Limitation Availability
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