Diatom-mediated food web functioning under ocean artificial upwelling.

Goldenberg, Silvan U., Spisla, Carsten, Sanchez, Nicolas Smith, Taucher, Jan , Spilling, Kristian, Sswat, Michael , Fiesinger, Anna, Fernandez-Mendez, Mar, Krock, Bernd, Hauss, Helena , Haussmann, Jacqueline and Riebesell, Ulf (2024) Diatom-mediated food web functioning under ocean artificial upwelling. Open Access Scientific Reports, 14 (1). Art.Nr. 3955 (2024). DOI 10.1038/s41598-024-54345-w.

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Abstract

Enhancing ocean productivity by artificial upwelling is evaluated as a nature-based solution for food security and climate change mitigation. Fish production is intended through diatom-based plankton food webs as these are assumed to be short and efficient. However, our findings from mesocosm experiments on artificial upwelling in the oligotrophic ocean disagree with this classical food web model. Here, diatoms did not reduce trophic length and instead impaired the transfer of primary production to crustacean grazers and small pelagic fish. The diatom-driven decrease in trophic efficiency was likely mediated by changes in nutritional value for the copepod grazers. Whilst diatoms benefitted the availability of essential fatty acids, they also caused unfavorable elemental compositions via high carbon-to-nitrogen ratios (i.e. low protein content) to which the grazers were unable to adapt. This nutritional imbalance for grazers was most pronounced in systems optimized for CO 2 uptake through carbon-to-nitrogen ratios well beyond Redfield. A simultaneous enhancement of fisheries production and carbon sequestration via artificial upwelling may thus be difficult to achieve given their opposing stoichiometric constraints. Our study suggest that food quality can be more critical than quantity to maximize food web productivity during shorter-term fertilization of the oligotrophic ocean.

Document Type: Article
Funder compliance: BMBF: 03F0897A ; info:eu-repo/grantAgreement/EC/H2020/695094
Research affiliation: OceanRep > GEOMAR > FB2 Marine Biogeochemistry > FB2-BM Biogeochemical Modeling
OceanRep > GEOMAR > FB2 Marine Biogeochemistry > FB2-BI Biological Oceanography
OceanRep > GEOMAR > FB3 Marine Ecology > FB3-OEB Ökosystembiologie des Ozeans
HGF-AWI
Main POF Topic: PT6: Marine Life
Refereed: Yes
Open Access Journal?: Yes
Publisher: Nature Research
Related URLs:
Projects: CDRmare, Test-ArtUp, Ocean artUp, AQUACOSM
Expeditions/Models/Experiments:
Date Deposited: 23 Feb 2024 08:09
Last Modified: 14 Jan 2025 13:57
URI: https://oceanrep.geomar.de/id/eprint/60020

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