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January 25, 2026FEMS Microbiology Ecology0 citationsOpen Access

Seasons and vertical dynamics influence community composition in a flooded and abandoned mica mine

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ELElise LhosteDJDavid JaclinVPViolaine Ponsin

Key Points

  • The study aims to investigate how seasonal variations and water depth influence microbial community composition in an abandoned mica mine.
  • Collected water and biofilm samples from varying depths (up to 52 m) during spring, summer, and autumn of 2021–2022.
  • Analyzed samples using 16S/18S rRNA gene sequencing to identify microbial taxa.
  • Assessed physicochemical parameters to determine their relationship with microbial communities.
  • Seasonal changes had minimal impact on physicochemical parameters but significantly altered microbial community composition.
  • Depth strongly influenced community dynamics, revealing three ecological zones based on oxygen profiles.
  • Archaea were more stable across depths compared to bacteria and eukaryotes, highlighting distinct community structures.

Abstract

Abstract Artificial lakes formed from past mining activities represent unique but underexplored ecosystems that support diverse microbial communities. This study examined how seasonal variation and depth influence bacterial, archaeal, and microeukaryotic assemblages in the stratified water column of the Blackburn mine (Outaouais, Quebec, Canada). Water and biofilm samples were collected by technical divers from the surface to 52 m during spring, summer, and autumn of 2021–2022, and analysed by 16S/18S rRNA gene sequencing. Seasonal changes had little effect on physicochemical parameters but strongly shaped microbial community composition, together with depth. Archaeal taxa displayed greater stability across depths compared to bacteria and eukaryotes. Oxygen profiles defined three ecological zones: an oxic layer dominated by Actinobacteria and the methanogen Methanosarcina; a transition zone enriched in Chlorobium and methanogens such as Methanospirillum and Methanosaeta; and an anoxic layer containing sulfur-reducing (Desulfomonile and Desulfobacca), sulfur-oxidizing (Sulfuricurvum), and methane-cycling archaea. Eukaryotic communities included algae, particularly Chrysophyceae, and diverse protists. These findings suggest that microbial communities in the mine are integral to sulfur and carbon cycling, emphasizing the ecological significance of such stratified, mining-associated aquatic systems. The Blackburn mine provides valuable insight into how anthropogenic legacies shape microbial diversity and ecosystem functioning in artificial aquatic environments.

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Cite This Study

Lhoste et al. (2026) studied this question.

synapsesocial.com/papers/6975b4fd5a65d392b01e5d5bhttps://doi.org/10.1093/femsec/fiaf131
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