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Shift towards larger diatoms in a natural phytoplankton assemblage under combined high-CO2 and warming conditions
Author(s) -
Scarlett Sett,
Kai G. Schulz,
Lennart T. Bach,
Ulf Riebesell
Publication year - 2018
Publication title -
journal of plankton research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.87
H-Index - 93
eISSN - 1464-3774
pISSN - 0142-7873
DOI - 10.1093/plankt/fby018
Subject(s) - diatom , mesocosm , phytoplankton , biogeochemical cycle , environmental science , bloom , biomass (ecology) , nutrient , oceanography , plankton , ecology , biology , geology
An indoor mesocosm experiment was carried out to investigate the combined effects of ocean acidification and warming on the species composition and biogeochemical element cycling during a winter/spring bloom with a natural phytoplankton assemblage from the Kiel fjord, Germany. The experimental setup consisted of a "Control" (ambient temperature of ~4.8 °C and ~535 ± 25 μatm p CO 2 ), a "High-CO 2 " treatment (ambient temperature and initially 1020 ± 45 μatm p CO 2 ) and a "Greenhouse" treatment (~8.5 °C and initially 990 ± 60 μatm p CO 2 ). Nutrient replete conditions prevailed at the beginning of the experiment and light was provided at in situ levels upon reaching p CO 2 target levels. A diatom-dominated bloom developed in all treatments with Skeletonema costatum as the dominant species but with an increased abundance and biomass contribution of larger diatom species in the Greenhouse treatment. Conditions in the Greenhouse treatment accelerated bloom development with faster utilization of inorganic nutrients and an earlier peak in phytoplankton biomass compared to the Control and High CO 2 but no difference in maximum concentration of particulate organic matter (POM) between treatments. Loss of POM in the Greenhouse treatment, however, was twice as high as in the Control and High CO 2 treatment at the end of the experiment, most likely due to an increased proportion of larger diatom species in that treatment. We hypothesize that the combination of warming and acidification can induce shifts in diatom species composition with potential feedbacks on biogeochemical element cycling.

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