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Ocean acidification with (de)eutrophication will alter future phytoplankton growth and succession
Authors:Kevin J. Flynn  Darren R. Clark  Aditee Mitra  Heiner Fabian  Per J. Hansen  Patricia M. Glibert  Glen L. Wheeler  Diane K. Stoecker  Jerry C. Blackford  Colin Brownlee
Affiliation:1Centre for Sustainable Aquatic Research, Swansea University, Swansea SA2 8PP, UK;2Plymouth Marine Laboratory, Prospect Place, Plymouth PL1 3DH, UK;3Marine Biological Section, University of Copenhagen, Strandpromenaden 5, 3000 Helsingør, Denmark;4University of Maryland Center for Environmental Science, Horn Point Laboratory, PO Box 775, Cambridge, MD 21613, USA;5Marine Biological Association, Citadel Hill, Plymouth PL1 2PB, UK
Abstract:Human activity causes ocean acidification (OA) though the dissolution of anthropogenically generated CO2 into seawater, and eutrophication through the addition of inorganic nutrients. Eutrophication increases the phytoplankton biomass that can be supported during a bloom, and the resultant uptake of dissolved inorganic carbon during photosynthesis increases water-column pH (bloom-induced basification). This increased pH can adversely affect plankton growth. With OA, basification commences at a lower pH. Using experimental analyses of the growth of three contrasting phytoplankton under different pH scenarios, coupled with mathematical models describing growth and death as functions of pH and nutrient status, we show how different conditions of pH modify the scope for competitive interactions between phytoplankton species. We then use the models previously configured against experimental data to explore how the commencement of bloom-induced basification at lower pH with OA, and operating against a background of changing patterns in nutrient loads, may modify phytoplankton growth and competition. We conclude that OA and changed nutrient supply into shelf seas with eutrophication or de-eutrophication (the latter owing to pollution control) has clear scope to alter phytoplankton succession, thus affecting future trophic dynamics and impacting both biogeochemical cycling and fisheries.
Keywords:ocean acidification   eutrophication   primary production   plankton succession   food security
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