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Influence of increased carbon availability on nitrogen processing in Arctic headwater streams
Department of Natural Resources and the Environment, University of New Hampshire, NH, Durham, United States.
Integrative Freshwater Ecology Group, Center for Advanced Studies of Blanes, Blanes, Spain.
Integrative Freshwater Ecology Group, Center for Advanced Studies of Blanes, Blanes, Spain.
Integrative Freshwater Ecology Group, Center for Advanced Studies of Blanes, Blanes, Spain.
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2026 (English)In: Freshwater Science, ISSN 2161-9549, E-ISSN 2161-9565, Vol. 45, no 3, p. 443-457Article in journal (Refereed) Published
Abstract [en]

The structure and function of Arctic stream ecosystems are changing because of climate warming, with landscape shifts such as permafrost thaw and shrub expansion altering C and N inputs to receiving waters. Changes in the form and relative availability of C and N are likely to have implications for stream metabolism and nutrient cycling. Here, we assess how future increases in C availability may influence N uptake in Arctic headwater streams by combining solute additions, metabolic tracers, and other ancillary measurements. We conducted 4 short-term, constant-rate solute additions in 2 streams in which we added NH4+ and NO3 individually, with and without a co-release of labile C (acetate). To better understand the response of metabolic and biogeochemical processes to changes in C and N availability, we also measured resazurin-resorufin transformation, N to Ar ratios, and greenhouse gas concentrations. Additions of labile C increased NH4+ uptake by 61 to 63% but had variable effects on NO3 uptake, ranging from a 24% decrease to a 14% increase. Our combined data on resazurin and greenhouse gas concentrations suggest that heterotrophic assimilation may be a dominant pathway for dissolved inorganic N uptake in Arctic stream ecosystems. When combined with data on N uptake across Arctic and non-Arctic biomes, we found that higher ratios of dissolved organic C to dissolved inorganic N (DOC∶DIN) corresponded with higher rates of NO3 uptake globally, whereas NH4+ uptake showed no consistent relationship with DOC∶DIN. Collectively, our results suggest that future increases in C availability in Arctic streams may have more immediate and short-term effects on NH4+ cycling, but as DOC∶DIN ratios shift over longer time periods we can expect a corresponding shift in the capacity for stream biota to process NO3. Such changes may alter the retention and downstream export of biologically available N, with implications for nutrient availability, primary production, and ecosystem functioning across Arctic freshwater ecosystems.

Place, publisher, year, edition, pages
University of Chicago Press, 2026. Vol. 45, no 3, p. 443-457
Keywords [en]
dissolved organic matter, nitrate uptake, ammonium uptake, nutrient spiraling, ecosystem metabolism, resazurin tracer, greenhouse gases, benthic processes
National Category
Ecology Environmental Sciences
Identifiers
URN: urn:nbn:se:umu:diva-257554DOI: 10.1086/742743ISI: 001834317100001Scopus ID: 2-s2.0-105046442669OAI: oai:DiVA.org:umu-257554DiVA, id: diva2:2092131
Available from: 2026-08-13 Created: 2026-08-13 Last updated: 2026-09-10Bibliographically approved

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