Influence of temperature and CO2 on the strontium and magnesium composition of coccolithophore calcite

Müller, Marius N;Lebrato, Mario;Riebesell, Ulf;Barcelos e Ramos, Joana;Schulz, Kai Georg;Blanco-Ameijeiras, S;Sett, Scarlett;Eisenhauer, Anton;Stoll, Heather M

Description

Marine calcareous sediments provide a fundamental basis for palaeoceanographic studies aiming to reconstruct past oceanic conditions and understand key biogeochemical element cycles. Calcifying unicellular phytoplankton (coccolithophores) are a major contributor to both carbon and calcium cycling by photosynthesis and the production of calcite (coccoliths) in the euphotic zone, and the subsequent long-term deposition and burial into marine sediments. Here we present data from controlled laboratory experiments on four coccolithophore species and elucidate the relation between the divalent cation (Sr, Mg and Ca) partitioning in coccoliths and cellular physiology (growth, calcification and photosynthesis). Coccolithophores were cultured under different seawater temperature and carbonate chemistry conditions. The partition coefficient of strontium (DSr) was positively correlated with both carbon dioxide (pCO2) and temperature but displayed no coherent relation to particulate organic and inorganic carbon production rates. Furthermore, DSr correlated positively with cellular growth rates when driven by temperature but no correlation was present when changes in growth rates were pCO2-induced. Our results demonstrate the complex interaction between environmental forcing and physiological control on the strontium partitioning in coccolithophore calcite and challenge interpretations of the coccolith Sr / Ca ratio from high-pCO2 environments (e.g. Palaeocene-Eocene thermal maximum). The partition coefficient of magnesium (DMg) displayed species-specific differences and elevated values under nutrient limitation. No conclusive correlation between coccolith DMg and temperature was observed but pCO2 induced a rising trend in coccolith DMg. Interestingly, the best correlation was found between coccolith DMg and chlorophyll a production, suggesting that chlorophyll a and calcite associated Mg originate from the same intracellular pool. These and previous findings indicate that Mg is transported into the cell and to the site of calcification via different pathways than Ca and Sr. Consequently, the coccolith Mg / Ca ratio should be decoupled from the seawater Mg / Ca ratio. This study gives an extended insight into the driving factors influencing the coccolith Mg / Ca ratio and should be considered for future palaeoproxy calibrations.

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Metrics

Dataset Index

1.0

FAIR Score

92%

Citations

1

Mentions

0

Metrics Over Time

Publication Details

DOI

Publisher

PANGAEA

License

Creative Commons Attribution 3.0 Unported

Assigned Domain

Subfield

Biomaterials

Field

Materials Science

Domain

Physical Sciences

Confidence Score

56%

Source

Scholar Data Model

Keywords

Biomass/Abundance/Elemental compositionBottles or small containers/Aquaria (<20 L)Calcidiscus quadriperforatusChromistaCoccolithus braarudiiEmiliania huxleyiGephyrocapsa oceanicaHaptophytaLaboratory experimentLaboratory strainsNot applicablePelagosPhytoplanktonSingle speciesExperimentSpeciesTemperature, waterPartial pressure of carbon dioxide (water) at sea surface temperature (wet air)Partial pressure of carbon dioxide, standard deviationStrontium/Calcium ratioStrontium, partition coefficientMagnesium/Calcium ratioMagnesium distribution coefficientPhosphorus/Calcium ratioIron/Calcium ratioIrradianceLight:Dark cycleStrontium/Calcium ratio, standard deviationMagnesium/Calcium ratio, standard deviationSalinitypH, total scalepH, standard deviationCalcite saturation stateCalcite saturation state, standard deviationCarbon, inorganic, dissolvedCarbon, inorganic, dissolved, standard deviationAlkalinity, totalAlkalinity, total, standard deviationCarbon dioxideCarbon dioxide, standard deviationBicarbonate ionBicarbonate ion, standard deviationCarbonate ionCarbonate ion, standard deviationGrowth rateGrowth rate, standard deviationCarbon, organic, particulate, production per cellCarbon, organic, particulate, production, standard deviationCarbon, inorganic, particulate, production per cellCarbon, inorganic, particulate, production, standard deviationNitrogen, total, particulate, production per cellNitrogen, total, particulate production, standard deviationChlorophyll a production per cellChlorophyll a, production, standard deviationParticulate inorganic carbon/particulate organic carbon ratioParticulate inorganic carbon/particulate organic carbon ratio, standard deviationCarbon, organic, particulate/Nitrogen, particulate ratioCarbon, organic, particulate/Nitrogen, particulate ratio, standard deviationCarbonate system computation flagFugacity of carbon dioxide (water) at sea surface temperature (wet air)Aragonite saturation stateCalculated using CO2SYSCoulometric titrationPotentiometric titrationCalculated using seacarb after Nisumaa et al. (2010)Ocean Acidification International Coordination Centre (OA-ICC)

Normalization Factors

FT

43.27

CTw

1.00

MTw

1.00