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Probing the Bioavailability of Dissolved Iron to Marine Eukaryotic Phytoplankton Using In Situ Single Cell Iron Quotas

We present a new approach for quantifying the bioavailability of dissolved iron (dFe) to oceanic phytoplankton. Bioavailability is defined using an uptake rate constant (k(in‐app)) computed by combining data on: (a) Fe content of individual in situ phytoplankton cells; (b) concurrently determined se...

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Autores principales: Shaked, Yeala, Twining, Benjamin S., Tagliabue, Alessandro, Maldonado, Maria T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9286392/
https://www.ncbi.nlm.nih.gov/pubmed/35865367
http://dx.doi.org/10.1029/2021GB006979
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author Shaked, Yeala
Twining, Benjamin S.
Tagliabue, Alessandro
Maldonado, Maria T.
author_facet Shaked, Yeala
Twining, Benjamin S.
Tagliabue, Alessandro
Maldonado, Maria T.
author_sort Shaked, Yeala
collection PubMed
description We present a new approach for quantifying the bioavailability of dissolved iron (dFe) to oceanic phytoplankton. Bioavailability is defined using an uptake rate constant (k(in‐app)) computed by combining data on: (a) Fe content of individual in situ phytoplankton cells; (b) concurrently determined seawater dFe concentrations; and (c) growth rates estimated from the PISCES model. We examined 930 phytoplankton cells, collected between 2002 and 2016 from 45 surface stations during 11 research cruises. This approach is only valid for cells that have upregulated their high‐affinity Fe uptake system, so data were screened, yielding 560 single cell k (in‐app) values from 31 low‐Fe stations. We normalized k (in‐app) to cell surface area (S.A.) to account for cell‐size differences. The resulting bioavailability proxy (k (in‐app)/S.A.) varies among cells, but all values are within bioavailability limits predicted from defined Fe complexes. In situ dFe bioavailability is higher than model Fe‐siderophore complexes and often approaches that of highly available inorganic Fe′. Station averaged k (in‐app)/S.A. are also variable but show no systematic changes across location, temperature, dFe, and phytoplankton taxa. Given the relative consistency of k (in‐app)/S.A. among stations (ca. five‐fold variation), we computed a grand‐averaged dFe availability, which upon normalization to cell carbon (C) yields k (in‐app)/C of 42,200 ± 11,000 L mol C(−1) d(−1). We utilize k (in‐app)/C to calculate dFe uptake rates and residence times in low Fe oceanic regions. Finally, we demonstrate the applicability of k (in‐app)/C for constraining Fe uptake rates in earth system models, such as those predicting climate mediated changes in net primary production in the Fe‐limited Equatorial Pacific.
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spelling pubmed-92863922022-07-19 Probing the Bioavailability of Dissolved Iron to Marine Eukaryotic Phytoplankton Using In Situ Single Cell Iron Quotas Shaked, Yeala Twining, Benjamin S. Tagliabue, Alessandro Maldonado, Maria T. Global Biogeochem Cycles Research Article We present a new approach for quantifying the bioavailability of dissolved iron (dFe) to oceanic phytoplankton. Bioavailability is defined using an uptake rate constant (k(in‐app)) computed by combining data on: (a) Fe content of individual in situ phytoplankton cells; (b) concurrently determined seawater dFe concentrations; and (c) growth rates estimated from the PISCES model. We examined 930 phytoplankton cells, collected between 2002 and 2016 from 45 surface stations during 11 research cruises. This approach is only valid for cells that have upregulated their high‐affinity Fe uptake system, so data were screened, yielding 560 single cell k (in‐app) values from 31 low‐Fe stations. We normalized k (in‐app) to cell surface area (S.A.) to account for cell‐size differences. The resulting bioavailability proxy (k (in‐app)/S.A.) varies among cells, but all values are within bioavailability limits predicted from defined Fe complexes. In situ dFe bioavailability is higher than model Fe‐siderophore complexes and often approaches that of highly available inorganic Fe′. Station averaged k (in‐app)/S.A. are also variable but show no systematic changes across location, temperature, dFe, and phytoplankton taxa. Given the relative consistency of k (in‐app)/S.A. among stations (ca. five‐fold variation), we computed a grand‐averaged dFe availability, which upon normalization to cell carbon (C) yields k (in‐app)/C of 42,200 ± 11,000 L mol C(−1) d(−1). We utilize k (in‐app)/C to calculate dFe uptake rates and residence times in low Fe oceanic regions. Finally, we demonstrate the applicability of k (in‐app)/C for constraining Fe uptake rates in earth system models, such as those predicting climate mediated changes in net primary production in the Fe‐limited Equatorial Pacific. John Wiley and Sons Inc. 2021-08-25 2021-08 /pmc/articles/PMC9286392/ /pubmed/35865367 http://dx.doi.org/10.1029/2021GB006979 Text en © 2021. The Authors. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Article
Shaked, Yeala
Twining, Benjamin S.
Tagliabue, Alessandro
Maldonado, Maria T.
Probing the Bioavailability of Dissolved Iron to Marine Eukaryotic Phytoplankton Using In Situ Single Cell Iron Quotas
title Probing the Bioavailability of Dissolved Iron to Marine Eukaryotic Phytoplankton Using In Situ Single Cell Iron Quotas
title_full Probing the Bioavailability of Dissolved Iron to Marine Eukaryotic Phytoplankton Using In Situ Single Cell Iron Quotas
title_fullStr Probing the Bioavailability of Dissolved Iron to Marine Eukaryotic Phytoplankton Using In Situ Single Cell Iron Quotas
title_full_unstemmed Probing the Bioavailability of Dissolved Iron to Marine Eukaryotic Phytoplankton Using In Situ Single Cell Iron Quotas
title_short Probing the Bioavailability of Dissolved Iron to Marine Eukaryotic Phytoplankton Using In Situ Single Cell Iron Quotas
title_sort probing the bioavailability of dissolved iron to marine eukaryotic phytoplankton using in situ single cell iron quotas
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9286392/
https://www.ncbi.nlm.nih.gov/pubmed/35865367
http://dx.doi.org/10.1029/2021GB006979
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