{"refrec":{"BRefID":334753,"RR":"<b>Williford, T.; Amon, R.M.W.; Benner, R.; Kaiser, K.; Bauch, D.; Stedmon, C.; Yan, G.; Walker, S.A.; van der Loeff, M.R.; Klunder, M.B.</b> (2021). Insights into the origins, molecular characteristics and distribution of iron-binding ligands in the Arctic Ocean. <i>Mar. Chem. 231</i>: 103936. <a href=\"https://doi.org/10.1016/j.marchem.2021.103936\" target=\"_blank\">https://doi.org/10.1016/j.marchem.2021.103936</a>","BEntID":331309,"PublicFlag":1,"CheckedFlag":0,"wosflag":1,"vabbflag":1,"RefStringPartII":". <i>Mar. Chem. 231</i>: 103936. <a href=\"https://doi.org/10.1016/j.marchem.2021.103936\" target=\"_blank\">https://doi.org/10.1016/j.marchem.2021.103936</a>","DocTypID":8,"DocType":"Journal article","MarineFlag":0,"FreshFlag":0,"BrackishFlag":0,"TerrestrialFlag":0,"Authorstring":"Williford, T.; Amon, R.M.W.; Benner, R.; Kaiser, K.; Bauch, D.; Stedmon, C.; Yan, G.; Walker, S.A.; van der Loeff, M.R.; Klunder, M.B.","OrigTitleTranslFlag":0,"Authorstringtrunc":"Williford, T. <i>et al.</i>","Englishabstract":"<p>    Dissolved lignin phenols, chromophoric dissolved organic matter (DOM), and    in situ fluorescence were determined in waters of the Laptev Sea and major    Arctic basins, and they were compared with dissolved iron (dFe)    distributions to elucidate the sources, molecular characteristics and    distributions of iron-binding ligands in the    <a        href=\"https://www.sciencedirect.com/topics/earth-and-planetary-sciences/arctic-ocean\"        title=\"Learn more about Arctic Ocean from ScienceDirect's AI-generated Topic Pages\"    >        Arctic Ocean    </a>    . In the Transpolar Drift region (TPD), concentrations of dFe were    positively correlated with concentrations of lignin phenols and multiple    optical proxies of DOM composition and source. Strong relationships between    dFe and visible and ultraviolet wavelength fluorescent DOM indicated that    vascular plant and algal-derived DOM contributed to the dFe-ligand pool.    These observations are consistent with previous studies suggesting the    association of dFe with humic terrigenous and marine organic ligands. The    primary sources of iron-binding ligands appear to be the riverine discharge    of terrigenous DOM, marine organic matter produced on the shelves, and    <a        href=\"https://www.sciencedirect.com/topics/earth-and-planetary-sciences/degradation-product\"        title=\"Learn more about degradation products from ScienceDirect's AI-generated Topic Pages\"    >        degradation products    </a>    of plankton-derived organic matter in the    <a        href=\"https://www.sciencedirect.com/topics/earth-and-planetary-sciences/shelf-sediment\"        title=\"Learn more about shelf sediments from ScienceDirect's AI-generated Topic Pages\"    >        shelf sediments    </a>    . A stronger relationship between dFe and visible wavelength CDOM    fluorescence than with lignin phenols suggested the presence of multiple    terrigenous ligands, such as aromatic tannins. The aromatic nature of these    terrigenous ligands was indicated by a strong relationship between dFe and    the absorption coefficient at 254 nm. A strong negative correlation between    the p-hydroxyl to vanillyl lignin phenols ratio and dissolved iron    concentrations indicated recently-discharged terrigenous DOM (tDOM) was an    important source of iron-binding ligands. Given the strong relationships of    marine and terrigenous DOM with dissolved iron, iron-binding functional    groups appear to occur in diverse molecules of multiple sources. Examples    of such iron-binding functional groups included catechols and carboxylates    found in lignins and tannins of terrigenous origins and carboxyl-rich    <a        href=\"https://www.sciencedirect.com/topics/chemistry/alicyclics\"        title=\"Learn more about alicyclic from ScienceDirect's AI-generated Topic Pages\"    >        alicyclic    </a>    molecules (CRAM) of terrigenous and marine origins. The observed dFe    distributions in the Arctic Ocean could not be explained by the presence of    a single ligand type, but rather by a potpourri of ligand molecules of    varying concentrations and binding strengths. This molecular diversity of    ligands and associated binding strengths ultimately controls the    <a        href=\"https://www.sciencedirect.com/topics/chemistry/transport-and-distribution\"        title=\"Learn more about distribution and transport from ScienceDirect's AI-generated Topic Pages\"    >        distribution and transport    </a>    of dFe in the Arctic Ocean and beyond.</p>","AbstractOtherLang":null,"BibLvlCode":"AS","StandardTitle":"Insights into the origins, molecular characteristics and distribution of iron-binding ligands in the Arctic Ocean","OrigTitleLangCode":"en","OrigTitleLangCodeExtended":"eng","OrigTitleLangID":15,"DateLastModified":{"date":"2026-04-21 01:32:58.707522","timezone_type":1,"timezone":"+02:00"},"UserAccessRight":null,"UserAccID":null,"AuthorKeywords":"Dissolved organic matter; Iron; Organic ligands; Complexation; Biomarkers; Optical properties; CDOM; Arctic Ocean","OtherDescriptors":null,"Notes":null,"AnaPub":2021,"MonPub":null,"DateUpdate":"2021-03-10","DateCreate":"2021-03-10","SecASFANote":null,"ConfID":null,"PeerRev":1,"VlizCoreFlag":1,"WoScode":"WOS:000640108900005","VABBcode":null,"OpenAcc":0,"DOI":"10.1016/j.marchem.2021.103936"},"refs":null,"anarec":{"AnaID":334753,"PubliDate":2021,"Pagination":"103936","XtraPublOfAnaID":null,"ISBN":null,"Volume":"231","Issue":null,"BRefMon":null,"BRefMonRR":null,"BRefXtra":null,"BRefXtraRR":null,"SerBRefID":43353,"SerRR":"Marine Chemistry. 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