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O2 partitioning of sulfur oxidizing bacteria drives acidity and thiosulfate distributions in mining waters.
Whaley-Martin, Kelly J; Chen, Lin-Xing; Nelson, Tara Colenbrander; Gordon, Jennifer; Kantor, Rose; Twible, Lauren E; Marshall, Stephanie; McGarry, Sam; Rossi, Laura; Bessette, Benoit; Baron, Christian; Apte, Simon; Banfield, Jillian F; Warren, Lesley A.
Affiliation
  • Whaley-Martin KJ; University of Toronto, Toronto, ON, Canada.
  • Chen LX; Environmental Resources management (ERM), Toronto, ON, Canada.
  • Nelson TC; Department of Earth and Planetary Science, University of California, Berkeley, CA, USA.
  • Gordon J; University of Toronto, Toronto, ON, Canada.
  • Kantor R; University of Toronto, Toronto, ON, Canada.
  • Twible LE; Department of Earth and Planetary Science, University of California, Berkeley, CA, USA.
  • Marshall S; University of Toronto, Toronto, ON, Canada.
  • McGarry S; Environmental Resources management (ERM), Toronto, ON, Canada.
  • Rossi L; McMaster University, Hamilton, ON, Canada.
  • Bessette B; Glencore, Sudbury Integrated Nickel Operations, Sudbury, ON, Canada.
  • Baron C; McMaster University, Hamilton, ON, Canada.
  • Apte S; Université de Montréal, Montréal, Montréal, QC, Canada.
  • Banfield JF; Université de Montréal, Montréal, Montréal, QC, Canada.
  • Warren LA; CSIRO Land and Water, Clayton, NSW, Australia.
Nat Commun ; 14(1): 2006, 2023 04 10.
Article in En | MEDLINE | ID: mdl-37037821
ABSTRACT
The acidification of water in mining areas is a global environmental issue primarily catalyzed by sulfur-oxidizing bacteria (SOB). Little is known about microbial sulfur cycling in circumneutral pH mine tailing impoundment waters. Here we investigate biological sulfur oxidation over four years in a mine tailings impoundment water cap, integrating aqueous sulfur geochemistry, genome-resolved metagenomics and metatranscriptomics. The microbial community is consistently dominated by neutrophilic, chemolithoautotrophic SOB (relative abundances of ~76% in 2015, ~55% in 2016/2017 and ~60% in 2018). Results reveal two SOB strategies alternately dominate across the four years, influencing acid generation and sulfur speciation. Under oxic conditions, novel Halothiobacillus drive lower pH conditions (as low as 4.3) and lower [S2O32-] via the complete Sox pathway coupled to O2. Under anoxic conditions, Thiobacillus spp. dominate in activity, via the incomplete Sox and rDSR pathways coupled to NO3-, resulting in higher [S2O32-] and no net significant acidity generation. This study provides genomic evidence explaining acidity generation and thiosulfate accumulation patterns in a circumneutral mine tailing impoundment and has significant environmental applications in preventing the discharge of sulfur compounds that can impact downstream environments. These insights illuminate opportunities for in situ biotreatment of reduced sulfur compounds and prediction of acidification events using gene-based monitoring and in situ RNA detection.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Thiosulfates / Bacteria Language: En Journal: Nat Commun Year: 2023 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Thiosulfates / Bacteria Language: En Journal: Nat Commun Year: 2023 Document type: Article