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Sjöberg, S., Yu, C., Stairs, C. W., Allard, B., Hallberg, R., Henriksson, S., . . . Dupraz, C. (2021). Microbe-Mediated Mn Oxidation-A Proposed Model of Mineral Formation. Minerals, 11(10), Article ID 1146.
Open this publication in new window or tab >>Microbe-Mediated Mn Oxidation-A Proposed Model of Mineral Formation
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2021 (English)In: Minerals, E-ISSN 2075-163X, Vol. 11, no 10, article id 1146Article in journal (Refereed) Published
Abstract [en]

Manganese oxides occur in a wide range of environmental settings either as coatings on rocks, sediment, and soil particles, or as discrete grains. Although the production of biologically mediated Mn oxides is well established, relatively little is known about microbial-specific strategies for utilizing Mn in the environment and how these affect the morphology, structure, and chemistry of associated mineralizations. Defining such strategies and characterizing the associated mineral properties would contribute to a better understanding of their impact on the local environment and possibly facilitate evaluation of biogenicity in recent and past Mn accumulations. Here, we supplement field data from a Mn rock wall deposit in the Ytterby mine, Sweden, with data retrieved from culturing Mn oxidizers isolated from this site. Microscopic and spectroscopic techniques are used to characterize field site products and Mn precipitates generated by four isolated bacteria (Hydrogenophaga sp., Pedobacter sp., Rhizobium sp., and Nevskia sp.) and one fungal-bacterial co-culture (Cladosporium sp.—Hydrogenophaga sp. Rhizobium sp.—Nevskia sp.). Two of the isolates (Pedobacter sp. and Nevskia sp.) are previously unknown Mn oxidizers. At the field site, the onset of Mn oxide mineralization typically occurs in areas associated with globular wad-like particles and microbial traces. The particles serve as building blocks in the majority of the microstructures, either forming the base for further growth into laminated dendrites-botryoids or added as components to an existing structure. The most common nanoscale structures are networks of Mn oxide sheets structurally related to birnessite. The sheets are typically constructed of very few layers and elongated along the octahedral chains. In places, the sheets bend and curl under to give a scroll-like appearance. Culturing experiments show that growth conditions (biofilm or planktonic) affect the ability to oxidize Mn and that taxonomic affiliation influences crystallite size, structure, and average oxidation state as well as the onset location of Mn precipitation.

Keywords
Hydrogenophaga, Pedobacter, Nevskia, Rhizobium, Cladosporium, Ytterby mine, Mn oxidizers, Mn mineralization, biofilm, birnessite
National Category
Earth and Related Environmental Sciences
Identifiers
urn:nbn:se:su:diva-199857 (URN)10.3390/min11101146 (DOI)000715479000001 ()
Available from: 2022-01-10 Created: 2022-01-10 Last updated: 2025-02-07Bibliographically approved
Sjöberg, S., Stairs, C., Allard, B., Hallberg, R., Homa, F., Martin, T., . . . Dupraz, C. (2020). Bubble biofilm: Bacterial colonization of air-air interface. Biofilm, 2, Article ID 100030.
Open this publication in new window or tab >>Bubble biofilm: Bacterial colonization of air-air interface
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2020 (English)In: Biofilm, E-ISSN 2590-2075, Vol. 2, article id 100030Article in journal (Refereed) Published
Abstract [en]

Microbial mats or biofilms are known to colonize a wide range of substrates in aquatic environments. These dense benthic communities efficiently recycle nutrients and often exhibit high tolerance to environmental stressors, characteristics that enable them to inhabit harsh ecological niches. In some special cases, floating biofilms form at the air-water interface residing on top of a hydrophobic microlayer. Here, we describe biofilms that reside at the air-air interface by forming gas bubbles (bubble biofilms) in the former Ytterby mine, Sweden. The bubbles are built by micrometer thick membrane-like biofilm that holds enough water to sustain microbial activity. Molecular identification shows that the biofilm communities are dominated by the neuston bacterium Nevskia. Gas bubbles contain mostly air with a slightly elevated concentration of carbon dioxide. Biofilm formation and development was monitored in situ using a time-lapse camera over one year, taking one image every second hour. The bubbles were stable over long periods of time (weeks, even months) and gas build-up occurred in pulses as if the bedrock suddenly exhaled. The result was however not a passive inflation of a dying biofilm becoming more fragile with time (as a result of overstretching of the organic material). To the contrary, microbial growth lead to a more robust, hydrophobic bubble biofilm that kept the bubbles inflated for extended periods (several weeks, and in some cases even months).

Keywords
Biofilm, Neuston, Nevskia, Air-air interface, Shallow subsurface, Ytterby mine
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-196441 (URN)10.1016/j.bioflm.2020.100030 (DOI)000658274500020 ()33447815 (PubMedID)
Available from: 2021-09-08 Created: 2021-09-08 Last updated: 2023-01-25Bibliographically approved
Sjöberg, S., Stairs, C. W., Allard, B., Homa, F., Martin, T., Sjöberg, V., . . . Dupraz, C. (2020). Microbiomes in a manganese oxide producing ecosystem in the Ytterby mine, Sweden: impact on metal mobility. FEMS Microbiology Ecology, 96(11), Article ID fiaa169.
Open this publication in new window or tab >>Microbiomes in a manganese oxide producing ecosystem in the Ytterby mine, Sweden: impact on metal mobility
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2020 (English)In: FEMS Microbiology Ecology, ISSN 0168-6496, E-ISSN 1574-6941, Vol. 96, no 11, article id fiaa169Article in journal (Refereed) Published
Abstract [en]

Microbe-mediated precipitation of Mn-oxides enriched in rare earth elements (REE) and other trace elements was discovered in tunnels leading to the main shaft of the Ytterby mine, Sweden. Defining the spatial distribution of microorganisms and elements in this ecosystem provide a better understanding of specific niches and parameters driving the emergence of these communities and associated mineral precipitates. Along with elemental analyses, high-throughput sequencing of the following four subsystems were conducted: (i) water seeping from a rock fracture into the tunnel, (ii) Mn-oxides and associated biofilm; referred to as the Ytterby Black Substance (YBS) biofilm (iii) biofilm forming bubbles on the Mn-oxides; referred to as the bubble biofilm and (iv) fracture water that has passed through the biofilms. Each subsystem hosts a specific collection of microorganisms. Differentially abundant bacteria in the YBS biofilm were identified within the Rhizobiales (e.g. Pedomicrobium), PLTA13 Gammaproteobacteria, Pirellulaceae, Hyphomonadaceae, Blastocatellia and Nitrospira. These taxa, likely driving the Mn-oxide production, were not detected in the fracture water. This biofilm binds Mn, REE and other trace elements in an efficient, dynamic process, as indicated by substantial depletion of these metals from the fracture water as it passes through the Mn deposit zone. Microbe-mediated oxidation of Mn(II) and formation of Mn(III/IV)-oxides can thus have considerable local environmental impact by removing metals from aquatic environments.

Keywords
Mn-oxidizers, bimessite, ecosystem, biofilms, shallow subsurface, REE fractionation, Ytterby mine
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-188757 (URN)10.1093/femsec/fiaa169 (DOI)000593018400006 ()32815988 (PubMedID)
Available from: 2021-01-18 Created: 2021-01-18 Last updated: 2022-02-25Bibliographically approved
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ORCID iD: ORCID iD iconorcid.org/0000-0001-6650-0970

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