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Delving deeper: Metabolic processes in the metalimnion of stratified lakes

  • Many lakes exhibit seasonal stratification, during which they develop strong thermal and chemical gradients. An expansion of depth-integrated monitoring programs has provided insight into the importance of organic carbon processing that occurs below the upper mixed layer. However, the chemical and physical drivers of metabolism and metabolic coupling remain unresolved, especially in the metalimnion. In this depth zone, sharp gradients in key resources such as light and temperature co-occur with dynamic physical conditions that influence metabolic processes directly and simultaneously hamper the accurate tracing of biological activity. We evaluated the drivers of metalimnetic metabolism and its associated uncertainty across 10 stratified lakes in Europe and North America. We hypothesized that the metalimnion would contribute highly to whole-lake functioning in clear oligotrophic lakes, and that metabolic rates would be highly variable in unstable polymictic lakes. Depth-integrated rates of gross primary production (GPP) and ecosystemMany lakes exhibit seasonal stratification, during which they develop strong thermal and chemical gradients. An expansion of depth-integrated monitoring programs has provided insight into the importance of organic carbon processing that occurs below the upper mixed layer. However, the chemical and physical drivers of metabolism and metabolic coupling remain unresolved, especially in the metalimnion. In this depth zone, sharp gradients in key resources such as light and temperature co-occur with dynamic physical conditions that influence metabolic processes directly and simultaneously hamper the accurate tracing of biological activity. We evaluated the drivers of metalimnetic metabolism and its associated uncertainty across 10 stratified lakes in Europe and North America. We hypothesized that the metalimnion would contribute highly to whole-lake functioning in clear oligotrophic lakes, and that metabolic rates would be highly variable in unstable polymictic lakes. Depth-integrated rates of gross primary production (GPP) and ecosystem respiration (ER) were modelled from diel dissolved oxygen curves using a Bayesian approach. Metabolic estimates were more uncertain below the epilimnion, but uncertainty was not consistently related to lake morphology or mixing regime. Metalimnetic rates exhibited high day-to-day variability in all trophic states, with the metalimnetic contribution to daily whole-lake GPP and ER ranging from 0% to 87% and < 1% to 92%, respectively. Nonetheless, the metalimnion of low-nutrient lakes contributed strongly to whole-lake metabolism on average, driven by a collinear combination of highlight, low surface-water phosphorous concentration and high metalimnetic volume. Consequently, a single-sensor approach does not necessarily reflect whole-ecosystem carbon dynamics in stratified lakes.show moreshow less

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Author details:Darren P. Giling, Peter A. Staehr, Hans-Peter GrossartORCiDGND, Mikkel Rene Andersen, Bertram BoehrerORCiD, Carmelo Escot, Fatih Evrendilek, Lluis Gomez-Gener, Mark Honti, Ian D. Jones, Nusret Karakaya, Alo LaasORCiD, Enrique Moreno-Ostos, Karsten Rinke, Ulrike Scharfenberger, Silke R. Schmidt, Michael Weber, R. Iestyn Woolway, Jacob A. Zwart, Biel ObradorORCiD
DOI:https://doi.org/10.1002/lno.10504
ISSN:0024-3590
ISSN:1939-5590
Title of parent work (English):Limnology and oceanography
Publisher:Wiley
Place of publishing:Hoboken
Publication type:Article
Language:English
Year of first publication:2017
Publication year:2017
Release date:2020/04/20
Volume:62
Number of pages:19
First page:1288
Last Page:1306
Funding institution:European Corporation in Science and Technology (COST) action [ES1201]; German Federal Ministry of Education and Research (BMBF) [033L041B]; German Research Foundation (DFG) [GE 1775/2-1]; Leibniz Association (CLEAR); Scientific and Technological Research Council of Turkey (TUBITAK) [111Y059]; EMASESA; Great Lakes Restoration Initiative; New York State Department of Conservation; Great Lakes Fishery Commission; [EUENV/UK/000604]; [CGL2005-04070]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Biochemie und Biologie
Peer review:Referiert
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