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  • Articles  (4)
  • Open Access-Papers  (4)
  • BLACKWELL PUBLISHING  (1)
  • Cambridge University Press  (1)
  • Elementa: Science of the Anthropocene  (1)
  • John Wiley & sons  (1)
  • 1
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    Cambridge University Press
    In:  EPIC3Life in extreme environments - Insights in biological capability, Ecological Reviews, Cambridge, Cambridge University Press, 16 p., pp. 218-233, ISBN: 978-1-108-72420-3
    Publication Date: 2020-10-05
    Repository Name: EPIC Alfred Wegener Institut
    Type: Inbook , peerRev
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  • 2
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    Elementa: Science of the Anthropocene
    In:  EPIC3Elementa: Science of the Anthropocene, Elementa: Science of the Anthropocene, pp. 1-11, ISSN: 3: 000080
    Publication Date: 2016-01-05
    Description: The objective of this study was to assess the O2 budget in the water under sea ice combining observations and modelling. Modelling was used to discriminate between physical processes, gas-specific transport (i.e., ice-atmosphere gas fluxes and gas bubble buoyancy) and bacterial respiration (BR) and to constrain bacterial growth efficiency (BGE). A module describing the changes of the under-ice water properties, due to brine rejection and temperature-dependent BR, was implemented in the one-dimensional halo-thermodynamic sea ice model LIM1D. Our results show that BR was the dominant biogeochemical driver of O2 concentra- tion in the water under ice (in a system without primary producers), followed by gas specific transport. The model suggests that the actual contribution of BR and gas specific transport to the change in seawater O2 concentration was 37% during ice growth and 48% during melt. BGE in the water under sea ice, as retrieved from the simulated O2 budget, was found to be between 0.4 and 0.5, which is in line with published BGE values for cold marine waters. Given the importance of BR to seawater O2 in the present study, it can be assumed that bacteria contribute substantially to organic matter consumption and gas fluxes in ice-covered polar oceans. In addition, we propose a parameterization of polar marine bacterial respiration, based on the strong temperature dependence of bacterial respiration and the high growth efficiency observed here, for further biogeochemical ocean modelling applications, such as regional or large-scale Earth System models
    Repository Name: EPIC Alfred Wegener Institut
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  • 3
    Publication Date: 2019-07-17
    Description: The structure of sea-ice bacterial communities is frequently different from that in seawater. Bacterial entrainment in sea ice has been studied with traditional microbiological, bacterial abundance, and bacterial production methods. However, the dynamics of the changes in bacterial communities during the transition from open water to frozen sea ice is largely unknown. Given previous evidence that the nutritional status of the parent water may affect bacterial communities during ice formation, bacterial succession was studied in under ice water and sea ice in two series of mesocosms: the first containing seawater from the North Sea and the second containing seawater enriched with algal-derived dissolved organic matter (DOM). The composition and dynamics of bacterial communities were investigated with terminal restriction fragment length polymorphism (T-RFLP), and cloning alongside bacterial production (thymidine and leucine uptake) and abundance measurements (measured by flow cytometry). Enriched and active sea-ice bacterial communities developed in ice formed in both unenriched and DOM-enriched seawater (0–6 days). γ-Proteobacteria dominated in the DOM-enriched samples, indicative of their capability for opportunistic growth in sea ice. The bacterial communities in the unenriched waters and ice consisted of the classes Flavobacteria, α- and γ-Proteobacteria, which are frequently found in natural sea ice in polar regions. Furthermore, the results indicate that seawater bacterial communities are able to adapt rapidly to sudden environmental changes when facing considerable physicochemical stress such as the changes in temperature, salinity, nutrient status, and organic matter supply during ice formation.
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  • 4
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    BLACKWELL PUBLISHING
    In:  EPIC3Oxford, UK, BLACKWELL PUBLISHING, 402 p., ISBN: 0-632-05808-0
    Publication Date: 2023-06-21
    Repository Name: EPIC Alfred Wegener Institut
    Type: Book , peerRev
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