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Ocean Acidification and Short‐Term Organic Matter Enrichment Alter Coral Reef Sediment Metabolism Through Different Pathways
Author(s) -
Lantz Coulson A.,
Schulz Kai G.,
Eyre Bradley D.
Publication year - 2020
Publication title -
journal of geophysical research: biogeosciences
Language(s) - English
Resource type - Journals
eISSN - 2169-8961
pISSN - 2169-8953
DOI - 10.1029/2019jg005453
Subject(s) - ocean acidification , sediment , eutrophication , coral reef , organic matter , water column , aragonite , reef , coral , environmental chemistry , oceanography , carbonate , seawater , chemistry , environmental science , ecology , geology , biology , nutrient , paleontology , organic chemistry
Ocean acidification (OA) and organic matter (OM) enrichment (due to coastal eutrophication) could act in concert to shift coral reef carbonate sediments from a present state of net calcification to a future state of net dissolution, but no studies have examined the combined effect of these stressors on sediment metabolism and dissolution. This study used 22‐h incubations in flume aquaria with captive sediment communities to measure the combined effect of elevated pCO 2 (representing Ocean Acidification) and particulate organic carbon (representing coastal eutrophication) on coral reef sediment gross primary productivity (GPP), respiration (R), and net calcification (G net ). Relative to control sediment communities, both OA (pCO 2 ~ 1,000 μatm) and OM enrichment (~ +40 μmol C L −1 ) significantly decreased rates of sediment G net by 1.16 and 0.18 mmol CaCO 3 m −2 h −1 , respectively, but the mechanism behind this decrease differed. The OA‐mediated transition to net dissolution was physiochemical, as rates of GPP and R remained unaffected and dissolution was solely enhanced by a decline in the aragonite saturation state (Ω arg ) of the overlying water column and the physical factors governing the pore water exchange rate with this overlying water column. In contrast, the OM‐mediated decline in G net was due to a decline in the overlying seawater Ω arg due to the increased respiratory addition of CO 2 . The decrease in G net in response to a combination of both stressors was additive (−0.09 mmol CaCO 3 m −2 h −1 relative to OA alone), but this decrease did not significantly differ from the individual effect of either stressor. In this study OA was the primary driver of future carbonate sediment dissolution, but longer‐term experiments with chronic organic matter enrichment are required.