Fundamental drivers of dissolved organic matter composition across an Arctic effective precipitation gradient

Abstract The standard model for aquatic ecosystems is to link hydrologic connectivity to dissolved organic carbon (DOC) concentration and dissolved organic matter (DOM) composition and, ultimately, reactivity. Studies across effective precipitation gradients have been suggested as models for predict...

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Published in:Limnology and Oceanography
Main Authors: Kellerman, Anne M., Arellano, Ana, Podgorski, David C., Martin, Ellen E., Martin, Jonathan B., Deuerling, Kelly M., Bianchi, Thomas S., Spencer, Robert G. M.
Other Authors: Division of Arctic Sciences, Division of Materials Research, National Geographic Society
Format: Article in Journal/Newspaper
Language:English
Published: Wiley 2019
Subjects:
Online Access:http://dx.doi.org/10.1002/lno.11385
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spelling crwiley:10.1002/lno.11385 2024-06-23T07:50:13+00:00 Fundamental drivers of dissolved organic matter composition across an Arctic effective precipitation gradient Kellerman, Anne M. Arellano, Ana Podgorski, David C. Martin, Ellen E. Martin, Jonathan B. Deuerling, Kelly M. Bianchi, Thomas S. Spencer, Robert G. M. Division of Arctic Sciences Division of Materials Research National Geographic Society 2019 http://dx.doi.org/10.1002/lno.11385 https://api.wiley.com/onlinelibrary/tdm/v1/articles/10.1002%2Flno.11385 https://onlinelibrary.wiley.com/doi/pdf/10.1002/lno.11385 https://onlinelibrary.wiley.com/doi/full-xml/10.1002/lno.11385 https://aslopubs.onlinelibrary.wiley.com/doi/am-pdf/10.1002/lno.11385 https://aslopubs.onlinelibrary.wiley.com/doi/pdf/10.1002/lno.11385 en eng Wiley http://onlinelibrary.wiley.com/termsAndConditions#am http://onlinelibrary.wiley.com/termsAndConditions#vor Limnology and Oceanography volume 65, issue 6, page 1217-1234 ISSN 0024-3590 1939-5590 journal-article 2019 crwiley https://doi.org/10.1002/lno.11385 2024-06-11T04:43:57Z Abstract The standard model for aquatic ecosystems is to link hydrologic connectivity to dissolved organic carbon (DOC) concentration and dissolved organic matter (DOM) composition and, ultimately, reactivity. Studies across effective precipitation gradients have been suggested as models for predicting how carbon cycling will change in Arctic aquatic ecosystems with projected drying (i.e., reduced hydrologic connectivity). To evaluate links between DOM dynamics and hydrologic connectivity, 41 stream samples from Greenland were analyzed across an effective precipitation gradient for DOM optical properties and elemental composition using ultrahigh‐resolution mass spectrometry. Sites with negative effective precipitation and decreased hydrologic connectivity exhibited elevated specific conductivity (SpC) and DOC concentrations as well as DOM composition indicative of decreased hydrologic connectivity, for example, lower aromaticity, assessed using carbon‐specific UV absorbance at 254 nm, decreased relative abundances of polyphenolic and condensed aromatic compounds, and increased relative abundances of highly unsaturated and phenolic compounds. Allochthonous inputs decreased as the summer progressed as exhibited by decreases in aromatic compounds. A decrease in molecular richness and N‐containing compounds coincided with the decrease in allochthonous inputs. DOC concentrations increased over the summer but more slowly than SpC, suggesting degradation processes outweighed combined evapoconcentration and production. The patterns in DOM composition suggest evapoconcentration and photodegradation are dominant controls. However, when hydrologic connectivity was high, regardless of effective precipitation, DOM reflected allochthonous sources such as snowmelt‐fed wetlands. These results highlight the challenges of modeling carbon cycling in aquatic ecosystems across effective precipitation gradients, particularly those with strong seasonality and regional variability in hydrologic inputs. Article in Journal/Newspaper Arctic Greenland Wiley Online Library Arctic Greenland Limnology and Oceanography 65 6 1217 1234
institution Open Polar
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description Abstract The standard model for aquatic ecosystems is to link hydrologic connectivity to dissolved organic carbon (DOC) concentration and dissolved organic matter (DOM) composition and, ultimately, reactivity. Studies across effective precipitation gradients have been suggested as models for predicting how carbon cycling will change in Arctic aquatic ecosystems with projected drying (i.e., reduced hydrologic connectivity). To evaluate links between DOM dynamics and hydrologic connectivity, 41 stream samples from Greenland were analyzed across an effective precipitation gradient for DOM optical properties and elemental composition using ultrahigh‐resolution mass spectrometry. Sites with negative effective precipitation and decreased hydrologic connectivity exhibited elevated specific conductivity (SpC) and DOC concentrations as well as DOM composition indicative of decreased hydrologic connectivity, for example, lower aromaticity, assessed using carbon‐specific UV absorbance at 254 nm, decreased relative abundances of polyphenolic and condensed aromatic compounds, and increased relative abundances of highly unsaturated and phenolic compounds. Allochthonous inputs decreased as the summer progressed as exhibited by decreases in aromatic compounds. A decrease in molecular richness and N‐containing compounds coincided with the decrease in allochthonous inputs. DOC concentrations increased over the summer but more slowly than SpC, suggesting degradation processes outweighed combined evapoconcentration and production. The patterns in DOM composition suggest evapoconcentration and photodegradation are dominant controls. However, when hydrologic connectivity was high, regardless of effective precipitation, DOM reflected allochthonous sources such as snowmelt‐fed wetlands. These results highlight the challenges of modeling carbon cycling in aquatic ecosystems across effective precipitation gradients, particularly those with strong seasonality and regional variability in hydrologic inputs.
author2 Division of Arctic Sciences
Division of Materials Research
National Geographic Society
format Article in Journal/Newspaper
author Kellerman, Anne M.
Arellano, Ana
Podgorski, David C.
Martin, Ellen E.
Martin, Jonathan B.
Deuerling, Kelly M.
Bianchi, Thomas S.
Spencer, Robert G. M.
spellingShingle Kellerman, Anne M.
Arellano, Ana
Podgorski, David C.
Martin, Ellen E.
Martin, Jonathan B.
Deuerling, Kelly M.
Bianchi, Thomas S.
Spencer, Robert G. M.
Fundamental drivers of dissolved organic matter composition across an Arctic effective precipitation gradient
author_facet Kellerman, Anne M.
Arellano, Ana
Podgorski, David C.
Martin, Ellen E.
Martin, Jonathan B.
Deuerling, Kelly M.
Bianchi, Thomas S.
Spencer, Robert G. M.
author_sort Kellerman, Anne M.
title Fundamental drivers of dissolved organic matter composition across an Arctic effective precipitation gradient
title_short Fundamental drivers of dissolved organic matter composition across an Arctic effective precipitation gradient
title_full Fundamental drivers of dissolved organic matter composition across an Arctic effective precipitation gradient
title_fullStr Fundamental drivers of dissolved organic matter composition across an Arctic effective precipitation gradient
title_full_unstemmed Fundamental drivers of dissolved organic matter composition across an Arctic effective precipitation gradient
title_sort fundamental drivers of dissolved organic matter composition across an arctic effective precipitation gradient
publisher Wiley
publishDate 2019
url http://dx.doi.org/10.1002/lno.11385
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ISSN 0024-3590 1939-5590
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