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Iron Biogeochemistry in Aquatic Systems: From Source to Bioavailability
Author(s) -
Louiza Norman,
Damien J E Cabanesa,
Sonia BlancoAmeijeiras,
Sophie Moisset,
Christel Hassler
Publication year - 2014
Publication title -
chimia
Language(s) - English
Resource type - Journals
eISSN - 2673-2424
pISSN - 0009-4293
DOI - 10.2533/chimia.2014.764
Subject(s) - biogeochemistry , phytoplankton , aquatic ecosystem , environmental chemistry , biogeochemical cycle , remineralisation , bioavailability , environmental science , chemical oceanography , carbon cycle , aquatic science , ocean acidification , oceanography , chemistry , earth science , climate change , ecology , nutrient , ecosystem , biology , geology , inorganic chemistry , bioinformatics , microorganism , genetics , fluoride , microbial biodegradation , bacteria
Iron (Fe) is an essential trace element for several key metabolic processes in phytoplankton; however Fe is present in low concentration in many aquatic systems including vast oceanic regions and large lakes. In these systems, Fe can limit the growth of phytoplankton and atmospheric carbon dioxide biological fixation. Indeed Fe limitation exerts a global impact on the carbon cycle and the imprint of aquatic systems on our climate. In order to understand how aquatic systems function and increase our ability to predict their response to changing conditions, it is therefore paramount to understand when and how Fe controls operate. This review presents the complex relationship between Fe chemistry and the biology of surface waters to highlight the parameters defining the forms of Fe that are accessible for phytoplankton growth (or bioavailable). Particular attention is given to the identification of Fe sources and Fe organic complexation as these, in conjunction with biological recycling and remineralisation, mostly control Fe residence time, chemistry and bioavailability.

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