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Effect of calcium carbonate saturation state on the calcification rate of an experimental coral reef
Author(s) -
Langdon Chris,
Takahashi Taro,
Sweeney Colm,
Chipman Dave,
Goddard John,
Marubini Francesca,
Aceves Heather,
Barnett Heidi,
Atkinson Marlin J.
Publication year - 2000
Publication title -
global biogeochemical cycles
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.512
H-Index - 187
eISSN - 1944-9224
pISSN - 0886-6236
DOI - 10.1029/1999gb001195
Subject(s) - saturation (graph theory) , ocean acidification , aragonite , alkalinity , calcium carbonate , mesocosm , coral , carbonate , coral reef , calcification , seawater , oceanography , bicarbonate , reef , salinity , chemistry , mineralogy , environmental chemistry , geology , nutrient , medicine , mathematics , organic chemistry , pathology , combinatorics
The concentration of CO 2 in the atmosphere is projected to reach twice the preindustrial level by the middle of the 21st century. This increase will reduce the concentration of CO 3 2− of the surface ocean by 30% relative to the preindustrial level and will reduce the calcium carbonate saturation state of the surface ocean by an equal percentage. Using the large 2650 m 3 coral reef mesocosm at the BIOSPHERE‐2 facility near Tucson, Arizona, we investigated the effect of the projected changes in seawater carbonate chemistry on the calcification of coral reef organisms at the community scale. Our experimental design was to obtain a long (3.8 years) time series of the net calcification of the complete system and all relevant physical and chemical variables (temperature, salinity, light, nutrients, Ca 2+ , p CO 2 , T CO 2 , and total alkalinity). Periodic additions of NaHCO 3 , Na 2 CO 3 , and/or CaCl 2 were made to change the calcium carbonate saturation state of the water. We found that there were consistent and reproducible changes in the rate of calcification in response to our manipulations of the saturation state. We show that the net community calcification rate responds to manipulations in the concentrations of both Ca 2+ and CO 3 2− and that the rate is well described as a linear function of the ion concentration product, [Ca 2+ ] 0.69 [CO 3 2− ]. This suggests that saturation state or a closely related quantity is a primary environmental factor that influences calcification on coral reefs at the ecosystem level. We compare the sensitivity of calcification to short‐term (days) and long‐term (months to years) changes in saturation state and found that the response was not significantly different. This indicates that coral reef organisms do not seem to be able to acclimate to changing saturation state. The predicted decrease in coral reef calcification between the years 1880 and 2065 A.D. based on our long‐term results is 40%. Previous small‐scale, short‐term organismal studies predicted a calcification reduction of 14‐30%. This much longer, community‐scale study suggests that the impact on coral reefs may be greater than previously suspected. In the next century coral reefs will be less able to cope with rising sea level and other anthropogenic stresses.