Seawater carbonate chemistry and tissue biomass composition, calcification of a reef coral

Ocean acidification (OA) is predicted to reduce reef coral calcification rates and threaten the long-term growth of coral reefs under climate change. Reduced coral growth at elevated pCO2 may be buffered by sufficiently high irradiances; however, the interactive effects of OA and irradiance on other fundamental aspects of coral physiology, such as the composition and energetics of coral biomass, remain largely unexplored. This study tested the effects of two light treatments (7.5 versus 15.7 mol photons/m**2/d) at ambient or elevated pCO2 (435 versus 957 µatm) on calcification, photopigment and symbiont densities, biomass reserves (lipids, carbohydrates, proteins), and biomass energy content (kJ) of the reef coral Pocillopora acuta from Kāne'ohe Bay, Hawai'i. While pCO2 and light had no effect on either area- or biomass-normalized calcification, tissue lipids/gdw and kJ/gdw were reduced 15% and 14% at high pCO2, and carbohydrate content increased 15% under high light. The combination of high light and high pCO2 reduced protein biomass (per unit area) by approximately 20%. Thus, under ecologically relevant irradiances, P. acuta in Kāne'ohe Bay does not exhibit OA-driven reductions in calcification reported for other corals; however, reductions in tissue lipids, energy content and protein biomass suggest OA induced an energetic deficit and compensatory catabolism of tissue biomass. The null effects of OA on calcification at two irradiances support a growing body of work concluding some reef corals may be able to employ compensatory physiological mechanisms that maintain present-day levels of calcification under OA. However, negative effects of OA on P. acuta biomass composition and energy content may impact the long-term performance and scope for growth of this species in a high pCO2 world.

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Wall, Christopher B, Mason, R A B, Ellis, W R, Cunning, Ross, Gates, Ruth D (2017). Dataset: Seawater carbonate chemistry and tissue biomass composition, calcification of a reef coral. https://doi.org/10.1594/PANGAEA.892313

DOI retrieved: 2017

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.892313
Author Wall, Christopher B
Given Name Christopher B
Family Name Wall
More Authors
Mason, R A B
Ellis, W R
Cunning, Ross
Gates, Ruth D
Source Creation 2017
Publication Year 2017
Resource Type text/tab-separated-values - filename: Wall-etal_2018_RSOS
Subject Areas
Name: BiologicalClassification

Name: Chemistry

Related Identifiers
Title: Elevated pCO2 affects tissue biomass composition, but not calcification, in a reef coral under two light regimes
Identifier: https://doi.org/10.1098/rsos.170683
Type: DOI
Relation: IsSupplementTo
Year: 2017
Source: Royal Society Open Science
Authors: Wall Christopher B , Mason R A B , Ellis W R , Cunning Ross , Gates Ruth D .

Title: Data from: Elevated pCO2 affects tissue biomass composition, but not calcification, in a reef coral under two light regimes
Identifier: https://doi.org/10.5061/dryad.5vg70
Type: DOI
Relation: References
Source: Dryad Digital Repository
Authors: Wall Christopher B , Mason Robert W , Ellis W R , Cunning Ross , Gates Ruth D , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James C , Gentili Bernard , Proye Aurélien , Soetaert Karline , Rae James .

Title: seacarb: seawater carbonate chemistry with R. R package version 3.1
Identifier: https://cran.r-project.org/package=seacarb
Type: DOI
Relation: References
Year: 2016
Authors: Wall Christopher B , Mason Robert W , Ellis W R , Cunning Ross , Gates Ruth D , Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James C , Gentili Bernard , Proye Aurélien , Soetaert Karline , Rae James .