The impact of oyster aquaculture on the estuarine carbonate system
Author:
Liberti Catherine M.1, Gray Matthew W.2, Mayer Lawrence M.1, Testa Jeremy M.3, Liu Wei3, Brady Damian C.1
Affiliation:
1. Darling Marine Center, University of Maine School of Marine Sciences, Walpole, ME, USA 2. Horn Point Laboratory, University of Maryland Center for Environmental Science, Cambridge, MD, USA 3. Chesapeake Biological Laboratory, University of Maryland Center for Environmental Science, Solomons, MD, USA
Abstract
Many studies have examined the vulnerability of calcifying organisms, such as the eastern oyster (Crassostrea virginica), to externally forced ocean acidification, but the opposite interaction whereby oysters alter their local carbonate conditions has received far less attention. We present an exploratory model for isolating the impact that net calcification and respiration of aquacultured eastern oysters can have on calcite and aragonite saturation states, in the context of varying temperature, ocean-estuary mixing, and air-sea gas exchange. We apply the model to the Damariscotta River Estuary in Maine which has experienced rapid expansion of oyster aquaculture in the last decade. Our model uses oyster shell growth over the summer season and a previously derived relationship between net calcification and respiration to quantify impacts of net oyster calcification and gross metabolism on carbonate saturation states in open tidal waters. Under 2018 industry size and climate conditions, we estimate that oysters can lower carbonate saturation states by up to 5% (i.e., 0.17 and 0.11 units on calcite and aragonite saturation states, respectively) per day in late summer, with an average of 3% over the growing season. Perturbations from temperature and air-sea exchange are similar in magnitude. Under 2050 climate conditions and 2018 industry size, calcite saturation state will decrease by up to an additional 0.54 units. If the industry expands 3-fold by 2050, the calcite and aragonite saturation states may decrease by 0.73 and 0.47 units, respectively, on average for the latter half of the growing season when compared to 2018 climate conditions and industry size. Collectively, our results indicate that dense aggregations of oysters can have a significant role on estuarine carbonate chemistry.
Publisher
University of California Press
Subject
Atmospheric Science,Geology,Geotechnical Engineering and Engineering Geology,Ecology,Environmental Engineering,Oceanography
Reference104 articles.
1. Adams, CM, Mayer, LM, Rawson, P, Brady, DC, Newell, C. 2019. Detrital protein contributes to oyster nutrition and growth in the Damariscotta Estuary, Maine, USA. Aquaculture Environment Interactions11: 521–536. DOI: http://dx.doi.org/10.3354/aei00330. 2. Ahmed, N, Bunting, SW, Glaser, M, Flaherty, MS, Diana, JS. 2017. Can greening of aquaculture sequester blue carbon?Ambio46(4): 468–477. DOI: http://dx.doi.org/10.1007/s13280-016-0849-7. 3. Beniash, E, Ivanina, A, Lieb, N, Kurochkin, I, Sokolova, I. 2010. Elevated level of carbon dioxide affects metabolism and shell formation in oysters Crassostrea virginica. Marine Ecology Progress Series419: 95–108. DOI: http://dx.doi.org/10.3354/meps08841. 4. Brickman, D, Alexander, MA, Pershing, A, Scott, JD, Wang, Z. 2021. Projections of physical conditions in the Gulf of Maine in 2050. Elementa Science of the Anthropocene9(00055). DOI: http://dx.doi.org/10.1525/elementa.2020.20.00055. 5. Byron, C, Link, J, Costa-Pierce, B, Bengtson, D. 2011. Calculating ecological carrying capacity of shellfish aquaculture using mass-balance modeling: Narragansett Bay, Rhode Island. Ecological Modelling222(10): 1743–1755. DOI: http://dx.doi.org/10.1016/j.ecolmodel.2011.03.010.
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