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Gallionella and Sulfuricella populations are dominant during the transition of boreal potential to actual acid sulfate soils

Hogfors-Ronnholm, Eva (author)
Nov Univ Appl Sci, Finland,Research and Development, Novia University of Applied Sciences, Vaasa, Finland
Lundin, Daniel, 1965- (author)
Linnéuniversitetet,Institutionen för biologi och miljö (BOM),Vatten,Ctr Ecol & Evolut Microbial Model Syst EEMiS,Centre for Ecology and Evolution in Microbial Model Systems (EEMiS), Linnaeus University, Kalmar, Sweden,EcoChange
Brambilla, Diego (author)
Linnéuniversitetet,Institutionen för biologi och miljö (BOM),Ctr Ecol & Evolut Microbial Model Syst EEMiS,Centre for Ecology and Evolution in Microbial Model Systems (EEMiS), Linnaeus University, Kalmar, Sweden
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Christel, Stephan (author)
Linnéuniversitetet,Institutionen för biologi och miljö (BOM),Cemvita Factory, USA,Ctr Ecol & Evolut Microbial Model Syst EEMiS,Centre for Ecology and Evolution in Microbial Model Systems (EEMiS), Linnaeus University, Kalmar, Sweden
Lopez-Fernandez, Margarita (author)
Linnéuniversitetet,Institutionen för biologi och miljö (BOM),Univ Granada, Spain,Ctr Ecol & Evolut Microbial Model Syst EEMiS,Centre for Ecology and Evolution in Microbial Model Systems (EEMiS), Linnaeus University, Kalmar, Sweden
Lillhonga, Tom (author)
Nov Univ Appl Sci, Finland,Research and Development, Novia University of Applied Sciences, Vaasa, Finland
Engblom, Sten (author)
Nov Univ Appl Sci, Finland,Research and Development, Novia University of Applied Sciences, Vaasa, Finland
Österholm, Peter (author)
Åbo Akad Univ, Finland,Department of Geology and Mineralogy, Åbo Akademi University, Turku, Finland
Dopson, Mark, 1970- (author)
Linnéuniversitetet,Institutionen för biologi och miljö (BOM),Ctr Ecol & Evolut Microbial Model Syst EEMiS,Centre for Ecology and Evolution in Microbial Model Systems (EEMiS), Linnaeus University, Kalmar, Sweden
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 (creator_code:org_t)
2022-12-01
2022
English.
In: Communications Earth & Environment. - : Springer Nature. - 2662-4435. ; 3:1
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Acid sulfate soils release metal laden, acidic waters that affect the environment, buildings, and human health. In this study, 16S rRNA gene amplicons, metagenomes, and metatranscriptomes all demonstrated distinct microbial communities and activities in the unoxidized potential acid sulfate soil, the overlying transition zone, and uppermost oxidized actual acid sulfate soil. Assembled genomes and mRNA transcripts also suggested abundant oxidized acid sulfate soil populations that aligned within the Gammaproteobacteria and Terracidiphilus. In contrast, potentially acid tolerant or moderately acidophilic iron oxidizing Gallionella and sulfur metabolizing Sulfuricella dominated the transition zone during catalysis of metal sulfide oxidation to form acid sulfate soil. Finally, anaerobic oxidation of methane coupled to nitrate, sulfate, and ferric reduction were suggested to occur in the reduced parent sediments. In conclusion, despite comparable metal sulfide dissolution processes e.g., biomining, Gallionella and Sulfuricella dominated the community and activities during conversion of potential to actual acid sulfate soils.

Subject headings

NATURVETENSKAP  -- Biologi -- Mikrobiologi (hsv//swe)
NATURAL SCIENCES  -- Biological Sciences -- Microbiology (hsv//eng)
LANTBRUKSVETENSKAPER  -- Lantbruksvetenskap, skogsbruk och fiske -- Markvetenskap (hsv//swe)
AGRICULTURAL SCIENCES  -- Agriculture, Forestry and Fisheries -- Soil Science (hsv//eng)

Keyword

Mikrobiologi
Microbiology

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