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Dawber, Caroline F; Branson, O; Elderfield, Henry; Harper, Elizabeth M; Greaves, Mervyn; Gazeau, Frédéric; Gattuso, Jean-Pierre; Middelburg, Jack J (2011): Element ratio (Sr/Ca, Ba/Ca, B/Ca, and Mg/Ca) profiles throughout the larval life stage of Mytilus edulis, 2011 [dataset]. Department of Earth Sciences, University of Cambridge, PANGAEA, https://doi.org/10.1594/PANGAEA.769719

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Abstract:
Rising anthropogenic CO2 in the surface ocean has raised serious concerns for the ability of calcifying organisms to secrete their shells and skeletons. Previous mollusc carbonate perturbation experiments report deleterious effects at lowered pH (7.8-7.4 pH units), including reduced shell length and thickness and deformed shell morphology. It is not clear whether the reduced shell growth results from a decrease in calcification rate due to lowered aragonite saturation or from an indirect effect on mollusc metabolism. We take a novel approach to discerning between these two processes by examining the impact of lowered pH on the 'vital-effect' associated with element ratios. Reported herein are the first element ratio (Sr/Ca, Ba/Ca, B/Ca, Mg/Ca and Mn/Ca) profiles throughout the larval life stage of Mytilus edulis. Element ratio data for individuals reared in ambient conditions provide new insights into biomineralization during larval development. Sr/Ca ratios are consistent with Sr incorporation in the mineral phase. Mg and Mn are likely hosted in an organic phase. The Ba partition coefficient of early larval shells is one of the highest reported in biogenic aragonite. The reason for the high Ba concentrations is unknown, but may reflect the assimilation of Ba from food and/or Ba concentration in an organic or amorphous carbonate phase. There is no observable difference in the way the studied elements are incorporated into the shells of individuals reared in ambient and lowered pH conditions. The reduced growth rate at lower pH may be a consequence of a disruption to the larval mollusc metabolism.
Funding:
Seventh Framework Programme (FP7), grant/award no. 211384: European Project on Ocean Acidification
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1SpeciesSpeciesDawber, Caroline F
2Sample IDSample IDDawber, Caroline F
3CalciumCamg/kgDawber, Caroline FInductively coupled plasma-quadrupole-mass spectrometry (ICP-Q-MS)
4Boron/Calcium ratioB/Caµmol/molDawber, Caroline FInductively coupled plasma-quadrupole-mass spectrometry (ICP-Q-MS)
5Magnesium/Calcium ratioMg/Cammol/molDawber, Caroline FInductively coupled plasma-quadrupole-mass spectrometry (ICP-Q-MS)
6Strontium/Calcium ratioSr/Cammol/molDawber, Caroline FInductively coupled plasma-quadrupole-mass spectrometry (ICP-Q-MS)
7Barium/Calcium ratioBa/Caµmol/molDawber, Caroline FInductively coupled plasma-quadrupole-mass spectrometry (ICP-Q-MS)
8Mytilus edulis, weight, shellM. edulis W shellmgDawber, Caroline FInductively coupled plasma-quadrupole-mass spectrometry (ICP-Q-MS)half larvae
License:
Licensing unknown: Please contact principal investigator/authors to gain access and request licensing terms (UNKNOWN)
Size:
240 data points

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