Reconsidering the role of carbonate ion concentration in calcification by marine organisms

Bach, Lennart T. (2015) Reconsidering the role of carbonate ion concentration in calcification by marine organisms Biogeosciences (BG), 12 . pp. 4939-4951. DOI 10.5194/bg-12-4939-2015.

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Abstract

Marine organisms precipitate 0.5–2.0 Gt of carbon as calcium carbonate (CaCO3) every year with a profound impact on global biogeochemical element cycles. Biotic calcification relies on calcium ions (Ca2+) and generally on bicarbonate ions (HCO3−) as CaCO3 substrates and can be inhibited by high proton (H+) concentrations. The seawater concentration of carbonate ions (CO32−) and the CO32−-dependent CaCO3 saturation state (ΩCaCO3) seem to be irrelevant in this production process. Nevertheless, calcification rates and the success of calcifying organisms in the oceans often correlate surprisingly well with these two carbonate system parameters. This study addresses this dilemma through rearrangement of carbonate system equations which revealed an important proportionality between [CO32−] or ΩCaCO3 and the ratio of [HCO3−] to [H+]. Due to this proportionality, calcification rates will always correlate equally well with [HCO3−]/[H+] as with [CO32−] or ΩCaCO3 when temperature, salinity, and pressure are constant. Hence, [CO32−] and ΩCaCO3 may simply be very good proxies for the control by [HCO3−]/[H+] where [HCO3−] would be the inorganic carbon substrate and [H+] would function as calcification inhibitor. If the "substrate-inhibitor ratio" (i.e. [HCO3−]/[H+]) rather than [CO32−] or ΩCaCO3 controls CaCO3 formation then some of the most common paradigms in ocean acidification research need to be reviewed. For example, the absence of a latitudinal gradient in [HCO3−]/[H+] in contrast to [CO32−] and ΩCaCO3 could modify the common assumption that high latitudes are affected most severely by ocean acidification.

Document Type: Article
Additional Information: WOS:000360294800005
Keywords: COCCOLITHOPHORE EMILIANIA-HUXLEYI; OCEAN ACIDIFICATION; INORGANIC CARBON; CORAL CALCIFICATION; SEAWATER ACIDIFICATION; MOLECULAR-MECHANISMS; CALCIFYING ORGANISMS; SATURATION-STATE; INTRACELLULAR PH; SEA-WATER
Research affiliation: OceanRep > GEOMAR > FB2 Marine Biogeochemistry > FB2-BI Biological Oceanography
Refereed: Yes
Open Access Journal?: Yes
DOI etc.: 10.5194/bg-12-4939-2015
ISSN: 1726-4170
Projects: BIOACID
Date Deposited: 22 May 2015 08:09
Last Modified: 12 Apr 2017 09:09
URI: http://oceanrep.geomar.de/id/eprint/28810

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