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Dark matters: Contrasting responses of stream biofilm to browning and loss of riparian shading

Concentrations of terrestrial‐derived dissolved organic carbon (DOC) in freshwater ecosystems have increased consistently, causing freshwater browning. The mechanisms behind browning are complex, but in forestry‐intensive regions browning is accelerated by land drainage. Forestry actions in streamsi...

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Autores principales: Jyväsjärvi, Jussi, Rajakallio, Maria, Brüsecke, Joanna, Huttunen, Kaisa‐Leena, Huusko, Ari, Muotka, Timo, Taipale, Sami J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9545655/
https://www.ncbi.nlm.nih.gov/pubmed/35624548
http://dx.doi.org/10.1111/gcb.16279
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author Jyväsjärvi, Jussi
Rajakallio, Maria
Brüsecke, Joanna
Huttunen, Kaisa‐Leena
Huusko, Ari
Muotka, Timo
Taipale, Sami J.
author_facet Jyväsjärvi, Jussi
Rajakallio, Maria
Brüsecke, Joanna
Huttunen, Kaisa‐Leena
Huusko, Ari
Muotka, Timo
Taipale, Sami J.
author_sort Jyväsjärvi, Jussi
collection PubMed
description Concentrations of terrestrial‐derived dissolved organic carbon (DOC) in freshwater ecosystems have increased consistently, causing freshwater browning. The mechanisms behind browning are complex, but in forestry‐intensive regions browning is accelerated by land drainage. Forestry actions in streamside riparian forests alter canopy shading, which together with browning is expected to exert a complex and largely unpredictable control over key ecosystem functions. We conducted a stream mesocosm experiment with three levels of browning (ambient vs. moderate vs. high, with 2.7 and 5.5‐fold increase, respectively, in absorbance) crossed with two levels of riparian shading (70% light reduction vs. open canopy) to explore the individual and combined effects of browning and loss of shading on the quantity (algal biomass) and nutritional quality (polyunsaturated fatty acid and sterol content) of the periphytic biofilm. We also conducted a field survey of differently colored (4.7 to 26.2 mg DOC L(−1)) streams to provide a ‘reality check’ for our experimental findings. Browning reduced greatly the algal biomass, suppressed the availability of essential polyunsaturated fatty acids, especially eicosapentaenoic acid (EPA), and sterols, but increased the availability of terrestrial‐derived long‐chain saturated fatty acids (LSAFA). In contrast, loss of shading increased primary productivity, which resulted in elevated sterol and EPA contents of the biofilm. The field survey largely repeated the same pattern: biofilm nutritional quality decreased significantly with increasing DOC, as indicated particularly by a decrease of the ω‐3:ω‐6 ratio and increase in LSAFA content. Algal biomass, in contrast, was mainly controlled by dissolved inorganic nitrogen (DIN) concentration, while DOC concentration was of minor importance. The ongoing browning process is inducing a dramatic reduction in the nutritional quality of the stream biofilm. Such degradation of the major high‐quality food source available for stream consumers may reduce the trophic transfer efficiency in stream ecosystems, potentially extending across the stream‐forest ecotone.
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spelling pubmed-95456552022-10-14 Dark matters: Contrasting responses of stream biofilm to browning and loss of riparian shading Jyväsjärvi, Jussi Rajakallio, Maria Brüsecke, Joanna Huttunen, Kaisa‐Leena Huusko, Ari Muotka, Timo Taipale, Sami J. Glob Chang Biol Research Articles Concentrations of terrestrial‐derived dissolved organic carbon (DOC) in freshwater ecosystems have increased consistently, causing freshwater browning. The mechanisms behind browning are complex, but in forestry‐intensive regions browning is accelerated by land drainage. Forestry actions in streamside riparian forests alter canopy shading, which together with browning is expected to exert a complex and largely unpredictable control over key ecosystem functions. We conducted a stream mesocosm experiment with three levels of browning (ambient vs. moderate vs. high, with 2.7 and 5.5‐fold increase, respectively, in absorbance) crossed with two levels of riparian shading (70% light reduction vs. open canopy) to explore the individual and combined effects of browning and loss of shading on the quantity (algal biomass) and nutritional quality (polyunsaturated fatty acid and sterol content) of the periphytic biofilm. We also conducted a field survey of differently colored (4.7 to 26.2 mg DOC L(−1)) streams to provide a ‘reality check’ for our experimental findings. Browning reduced greatly the algal biomass, suppressed the availability of essential polyunsaturated fatty acids, especially eicosapentaenoic acid (EPA), and sterols, but increased the availability of terrestrial‐derived long‐chain saturated fatty acids (LSAFA). In contrast, loss of shading increased primary productivity, which resulted in elevated sterol and EPA contents of the biofilm. The field survey largely repeated the same pattern: biofilm nutritional quality decreased significantly with increasing DOC, as indicated particularly by a decrease of the ω‐3:ω‐6 ratio and increase in LSAFA content. Algal biomass, in contrast, was mainly controlled by dissolved inorganic nitrogen (DIN) concentration, while DOC concentration was of minor importance. The ongoing browning process is inducing a dramatic reduction in the nutritional quality of the stream biofilm. Such degradation of the major high‐quality food source available for stream consumers may reduce the trophic transfer efficiency in stream ecosystems, potentially extending across the stream‐forest ecotone. John Wiley and Sons Inc. 2022-06-15 2022-09 /pmc/articles/PMC9545655/ /pubmed/35624548 http://dx.doi.org/10.1111/gcb.16279 Text en © 2022 The Authors. Global Change Biology published by John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Jyväsjärvi, Jussi
Rajakallio, Maria
Brüsecke, Joanna
Huttunen, Kaisa‐Leena
Huusko, Ari
Muotka, Timo
Taipale, Sami J.
Dark matters: Contrasting responses of stream biofilm to browning and loss of riparian shading
title Dark matters: Contrasting responses of stream biofilm to browning and loss of riparian shading
title_full Dark matters: Contrasting responses of stream biofilm to browning and loss of riparian shading
title_fullStr Dark matters: Contrasting responses of stream biofilm to browning and loss of riparian shading
title_full_unstemmed Dark matters: Contrasting responses of stream biofilm to browning and loss of riparian shading
title_short Dark matters: Contrasting responses of stream biofilm to browning and loss of riparian shading
title_sort dark matters: contrasting responses of stream biofilm to browning and loss of riparian shading
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9545655/
https://www.ncbi.nlm.nih.gov/pubmed/35624548
http://dx.doi.org/10.1111/gcb.16279
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