Seawater carbonate chemistry and dissolution rates by boring microflora during ex situ experiments with dead corals (Porites lobata), 2009

Eight-month-old blocks of the coral Porites lobata colonized by natural Hawaiian euendolithic and epilithic communities were experimentally exposed to two different aqueous pCO2 treatments, 400 ppmv and 750 ppmv, for 3 months. The chlorophyte Ostreobium quekettii dominated communities at the start and at the end of the experiment (65-90%). There were no significant differences in the relative abundance of euendolithic species, nor were there any differences in bioeroded area at the surface of blocks (27%) between pCO2 treatments. The depth of penetration of filaments of O. quekettii was, however, significantly higher under 750 ppmv (1.4 mm) than under 400 ppmv (1 mm). Consequently, rates of carbonate dissolution measured under elevated pCO2 were 48% higher than under ambient pCO2 (0.46 kg CaCO3 dissolved m2/a versus 0.31 kg /m2/a). Thus, biogenic dissolution of carbonates by euendoliths in coral reefs may be a dominant mechanism of carbonate dissolution in a more acidic ocean.

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Cite this as

Tribollet, Aline, Godinot, Claire, Atkinson, M J, Langdon, Chris (2009). Dataset: Seawater carbonate chemistry and dissolution rates by boring microflora during ex situ experiments with dead corals (Porites lobata), 2009. https://doi.org/10.1594/PANGAEA.755150

DOI retrieved: 2009

Additional Info

Field Value
Imported on November 30, 2024
Last update November 30, 2024
License CC-BY-3.0
Source https://doi.org/10.1594/PANGAEA.755150
Author Tribollet, Aline
Given Name Aline
Family Name Tribollet
More Authors
Godinot, Claire
Atkinson, M J
Langdon, Chris
Source Creation 2009
Publication Year 2009
Resource Type text/tab-separated-values - filename: C_chem_compilation_Tribollet_2009
Subject Areas
Name: Atmosphere

Name: Chemistry

Name: Ecology

Name: Lithosphere

Related Identifiers
Title: Effects of elevated pCO2 on dissolution of coral carbonates by microbial euendoliths
Identifier: https://doi.org/10.1029/2008GB003286
Type: DOI
Relation: IsSupplementTo
Year: 2009
Source: Global Biogeochemical Cycles
Authors: Tribollet Aline , Godinot Claire , Atkinson M J , Langdon Chris .