Greenland Ice Sheet exports labile organic carbon to the Arctic oceans
Runoff from small glacier systems contains dissolved organic carbon (DOC) rich in protein-like, low molecular weight (LMW) compounds, designating glaciers as an important source of bioavailable carbon for downstream heterotrophic activity. Fluxes of DOC and particulate organic carbon (POC) exported...
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ftcopernicus:oai:publications.copernicus.org:bg22986 2023-05-15T15:00:36+02:00 Greenland Ice Sheet exports labile organic carbon to the Arctic oceans Lawson, E. C. Wadham, J. L. Tranter, M. Stibal, M. Lis, G. P. Butler, C. E. H. Laybourn-Parry, J. Nienow, P. Chandler, D. Dewsbury, P. 2018-09-27 application/pdf https://doi.org/10.5194/bg-11-4015-2014 https://www.biogeosciences.net/11/4015/2014/ eng eng doi:10.5194/bg-11-4015-2014 https://www.biogeosciences.net/11/4015/2014/ eISSN: 1726-4189 Text 2018 ftcopernicus https://doi.org/10.5194/bg-11-4015-2014 2019-12-24T09:54:19Z Runoff from small glacier systems contains dissolved organic carbon (DOC) rich in protein-like, low molecular weight (LMW) compounds, designating glaciers as an important source of bioavailable carbon for downstream heterotrophic activity. Fluxes of DOC and particulate organic carbon (POC) exported from large Greenland catchments, however, remain unquantified, despite the Greenland Ice Sheet (GrIS) being the largest source of global glacial runoff (ca. 400 km 3 yr −1 ). We report high and episodic fluxes of POC and DOC from a large (>600 km 2 ) GrIS catchment during contrasting melt seasons. POC dominates organic carbon (OC) export (70–89% on average), is sourced from the ice sheet bed, and contains a significant bioreactive component (9% carbohydrates). A major source of the "bioavailable" (free carbohydrate) LMW–DOC fraction is microbial activity on the ice sheet surface, with some further addition of LMW–DOC to meltwaters by biogeochemical processes at the ice sheet bed. The bioavailability of the exported DOC (26–53%) to downstream marine microorganisms is similar to that reported from other glacial watersheds. Annual fluxes of DOC and free carbohydrates during two melt seasons were similar, despite the approximately two-fold difference in runoff fluxes, suggesting production-limited DOC sources. POC fluxes were also insensitive to an increase in seasonal runoff volumes, indicating a supply limitation in suspended sediment in runoff. Scaled to the GrIS, the combined DOC (0.13–0.17 Tg C yr −1 (±13%)) and POC fluxes (mean = 0.36–1.52 Tg C yr −1 (±14%)) are of a similar order of magnitude to a large Arctic river system, and hence may represent an important OC source to the near-coastal North Atlantic, Greenland and Labrador seas. Text Arctic glacier Greenland Ice Sheet North Atlantic Copernicus Publications: E-Journals Arctic Greenland Biogeosciences 11 14 4015 4028 |
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Copernicus Publications: E-Journals |
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ftcopernicus |
language |
English |
description |
Runoff from small glacier systems contains dissolved organic carbon (DOC) rich in protein-like, low molecular weight (LMW) compounds, designating glaciers as an important source of bioavailable carbon for downstream heterotrophic activity. Fluxes of DOC and particulate organic carbon (POC) exported from large Greenland catchments, however, remain unquantified, despite the Greenland Ice Sheet (GrIS) being the largest source of global glacial runoff (ca. 400 km 3 yr −1 ). We report high and episodic fluxes of POC and DOC from a large (>600 km 2 ) GrIS catchment during contrasting melt seasons. POC dominates organic carbon (OC) export (70–89% on average), is sourced from the ice sheet bed, and contains a significant bioreactive component (9% carbohydrates). A major source of the "bioavailable" (free carbohydrate) LMW–DOC fraction is microbial activity on the ice sheet surface, with some further addition of LMW–DOC to meltwaters by biogeochemical processes at the ice sheet bed. The bioavailability of the exported DOC (26–53%) to downstream marine microorganisms is similar to that reported from other glacial watersheds. Annual fluxes of DOC and free carbohydrates during two melt seasons were similar, despite the approximately two-fold difference in runoff fluxes, suggesting production-limited DOC sources. POC fluxes were also insensitive to an increase in seasonal runoff volumes, indicating a supply limitation in suspended sediment in runoff. Scaled to the GrIS, the combined DOC (0.13–0.17 Tg C yr −1 (±13%)) and POC fluxes (mean = 0.36–1.52 Tg C yr −1 (±14%)) are of a similar order of magnitude to a large Arctic river system, and hence may represent an important OC source to the near-coastal North Atlantic, Greenland and Labrador seas. |
format |
Text |
author |
Lawson, E. C. Wadham, J. L. Tranter, M. Stibal, M. Lis, G. P. Butler, C. E. H. Laybourn-Parry, J. Nienow, P. Chandler, D. Dewsbury, P. |
spellingShingle |
Lawson, E. C. Wadham, J. L. Tranter, M. Stibal, M. Lis, G. P. Butler, C. E. H. Laybourn-Parry, J. Nienow, P. Chandler, D. Dewsbury, P. Greenland Ice Sheet exports labile organic carbon to the Arctic oceans |
author_facet |
Lawson, E. C. Wadham, J. L. Tranter, M. Stibal, M. Lis, G. P. Butler, C. E. H. Laybourn-Parry, J. Nienow, P. Chandler, D. Dewsbury, P. |
author_sort |
Lawson, E. C. |
title |
Greenland Ice Sheet exports labile organic carbon to the Arctic oceans |
title_short |
Greenland Ice Sheet exports labile organic carbon to the Arctic oceans |
title_full |
Greenland Ice Sheet exports labile organic carbon to the Arctic oceans |
title_fullStr |
Greenland Ice Sheet exports labile organic carbon to the Arctic oceans |
title_full_unstemmed |
Greenland Ice Sheet exports labile organic carbon to the Arctic oceans |
title_sort |
greenland ice sheet exports labile organic carbon to the arctic oceans |
publishDate |
2018 |
url |
https://doi.org/10.5194/bg-11-4015-2014 https://www.biogeosciences.net/11/4015/2014/ |
geographic |
Arctic Greenland |
geographic_facet |
Arctic Greenland |
genre |
Arctic glacier Greenland Ice Sheet North Atlantic |
genre_facet |
Arctic glacier Greenland Ice Sheet North Atlantic |
op_source |
eISSN: 1726-4189 |
op_relation |
doi:10.5194/bg-11-4015-2014 https://www.biogeosciences.net/11/4015/2014/ |
op_doi |
https://doi.org/10.5194/bg-11-4015-2014 |
container_title |
Biogeosciences |
container_volume |
11 |
container_issue |
14 |
container_start_page |
4015 |
op_container_end_page |
4028 |
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1766332680084914176 |