Microbial adaptations and biogeochemical cycling of uranium in polymetallic tailings

Santonu K. Sanyal, Barbara Etschmann, Stephen B. Hore, Jeremiah Shuster, Joël Brugger

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7 Citations (Scopus)

Abstract

Microorganisms inhabiting uranium (U)-rich environments have specific physiological and biochemical coping mechanisms to deal with U toxicity, and thereby play a crucial role in the U biogeochemical cycling as well as associated heavy metals. We investigated the diversity and functional capabilities of indigenous bacterial communities inhabiting historic U- and Rare-Earth-Elements-rich polymetallic tailings from the Mount Painter Inlier, Northern Flinders Ranges, South Australia. Bacterial diversity profiling identified Actinobacteria as the predominant phylum in all samples. GeoChip analyses revealed the presence of diverse functional genes associated with biogenic element cycling, metal homeostasis/resistance, stress response, and secondary metabolism. The high abundance of metal-resistance and stress-tolerance genes indicates the adaptation of bacterial communities to the “harsh” environmental (metal-rich and semi-arid) conditions of the Northern Flinders Ranges. Additionally, a viable bacterial consortium was enriched from polymetallic tailings. Laboratory experiments demonstrated that the consortium scrubbed uranyl from solution by precipitating a uranyl phosphate biomineral (chernikovite), thus contributing to U biogeochemical cycling. These specialised microbial communities reflect the high specificity of the mineralogy/geochemistry, and biogeography of these U-rich settings. This study provides the fundamental knowledge to develop future applications in securing long-term stability of polymetallic mine waste, and for reprocessing this “waste” to further extract critical minerals.

Original languageEnglish
Article number133334
Number of pages13
JournalJournal of Hazardous Materials
Volume465
DOIs
Publication statusPublished - 5 Mar 2024

Keywords

  • Actinobacteria & biogeochemistry
  • Microbiomes
  • Rare earth elements
  • Uranium

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