Calcification repsonse of m,arione bivalves to changed carbonate chemistry


Autoria(s): Thomsen, Jörn; Haynert, Kristin; Wegner, K Mathias; Melzner, Frank
Data(s)

13/01/2016

Resumo

Bivalve calcification, particularly of the early larval stages, is highly sensitive to the change in ocean carbonate chemistry resulting from atmospheric CO2 uptake. Earlier studies suggested that declining seawater [CO32-] and thereby lowered carbonate saturation affect shell production. However, disturbances of physiological processes such as acid-base regulation by adverse seawater pCO2 and pH can affect calcification in a secondary fashion. In order to determine the exact carbonate system component by which growth and calcification are affected it is necessary to utilize more complex carbonate chemistry manipulations. As single factors, pCO2 had no effects and [HCO3-] and pH had only limited effects on shell growth, while lowered [CO32-] strongly impacted calcification. Dissolved inorganic carbon (CT) limiting conditions led to strong reductions in calcification, despite high [CO32-], indicating that [HCO3-] rather than [CO32-] is the inorganic carbon source utilized for calcification by mytilid mussels. However, as the ratio [HCO3-] / [H+] is linearly correlated with [CO32-] it is not possible to differentiate between these under natural seawater conditions. An equivalent of about 80 µmol kg-1 [CO32-] is required to saturate inorganic carbon supply for calcification in bivalves. Below this threshold biomineralization rates rapidly decline. A comparison of literature data available for larvae and juvenile mussels and oysters originating from habitats differing substantially with respect to prevailing carbonate chemistry conditions revealed similar response curves. This suggests that the mechanisms which determine sensitivity of calcification in this group are highly conserved. The higher sensitivity of larval calcification seems to primarily result from the much higher relative calcification rates in early life stages. In order to reveal and understand the mechanisms that limit or facilitate adaptation to future ocean acidification, it is necessary to better understand the physiological processes and their underlying genetics that govern inorganic carbon assimilation for calcification.

Formato

application/zip, 4 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.856883

doi:10.1594/PANGAEA.856883

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Thomsen, Jörn; Haynert, Kristin; Wegner, K Mathias; Melzner, Frank (2015): Impact of seawater carbonate chemistry on the calcification of marine bivalves. Biogeosciences, 12(14), 4209-4220, doi:10.5194/bg-12-4209-2015

Palavras-Chave #[CO3]2-; [DIC]/[H+] mol/µmol; [HCO3]-; [HCO3-]/[H+] mol/µmol; Alkalinity, total; Aragonite Omega; Aragonite saturation state; AT; Bicarbonate ion; BIOACID; Biological Impacts of Ocean Acidification; Calcification rate; Calc rate; Carbon, inorganic, dissolved; Carbonate ion; CO3 2-; Ct; Description; DIC; Fig; Figure; HCO3; l; Label; Length; Mean; Mean, statistical; Omega Arg; Partial pressure of carbon dioxide (water) at sea surface temperature (wet air); pCO2; pCO2 / CO3; pCO2water_SST_wet; Perc; Percentage; pH; Ratio; Reference; Reference/source; Respiration rate, oxygen, per individual; Resp O2/ind; Sal; Salinity; Sample code/label; shell length % of control; Species; Stage; Standard deviation; Std dev; Temp; Temperature; Temperature, water; total scale; Treatm; Treatment
Tipo

Dataset