Kelp deposition changes mineralization pathways and microbial communities in a sandy beach
Autor: | Dirk de Beer, Dimitri V. Meier, Marit R. van Erk, Ingeborg Bussmann, Timothy G. Ferdelman, Jens Harder |
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Rok vydání: | 2020 |
Předmět: |
0106 biological sciences
Denitrification 010504 meteorology & atmospheric sciences biology Chemistry Methanogenesis 010604 marine biology & hydrobiology Kelp Sulfur cycle Aquatic Science Oceanography biology.organism_classification 01 natural sciences Mineralization (biology) Total inorganic carbon Microbial population biology 13. Climate action Environmental chemistry 14. Life underwater Deposition (chemistry) 0105 earth and related environmental sciences |
Zdroj: | Limnology and Oceanography. 65:3066-3084 |
ISSN: | 1939-5590 0024-3590 |
Popis: | We investigated the impact of kelp deposition on the geochemistry and microbial community composition of beach sands on the island of Helgoland (North Sea). The composition of the microbial community at a beach with regular kelp deposition appeared shaped by this regular input of organic material, as indicated by significantly higher proportions of aerobic degraders, fermenters, and sulfur cycling microorganisms. Rapid degradation of deposited kelp by this community leads to high levels of dissolved organic and inorganic carbon and nutrients, a lower pH and anoxia. Aerobic respiration, fermentation, Fe- and SO42- reduction and methanogenesis were strongly enhanced, with SO42- reduction being the main process in kelp degradation. SO42- reduction rates increased 20 to 25-fold upon addition of kelp. The main route of electrons from kelp to SO42- was not via CO and H2, as expected, but via organic fermentation products. O2 supply by the tides was not sufficient and reduced intermediates escaped from the sediment with tidal water retraction. The resulting extremely high levels of free sulfide (>10 mmol L-1) lead to abundant filamentous growth of sulfur-oxidizing bacteria largely composed of a rare O2-adapted Sulfurovum lacking the expected denitrification genes. Our results show that regular kelp deposition strongly enhances the thermodynamic disequilibrium in the beach sand habitat, leading to a dramatic enhancement of the sulfur cycle. |
Databáze: | OpenAIRE |
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