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Oura, M.

Publications and source records attributed to Oura, M..

2 recordsLinked to original sources

Deep Microbial Colonization in 2-Billion-Year-Old Ultramafic Rock from the Bushveld Complex

Archean cratons may provide stable microbial habitats in the deep subsurface, as evidenced by the discovery of billion-year-old crustal fluids1,2. However, the long-term habitability of these cratonic environments is uncertain, as polymetamorphic evolution in most cratons typically destroys microbial habitats through mineral reactions and porosity loss3,4. Preservation of deep microbial habitats is more likely where mantle-derived magma intruded the craton after metamorphic overprinting4. Here we report the discovery of dense microbial colonization at 814 m depth within the 2.05-billion-year-old, unmetamorphosed Bushveld Igneous Complex intrusion, South Africa5. Using advanced contamination-control protocols6,7 and synchrotron-based X-ray spectroscopy, we identified indigenous microbial cells localized at the rims of phlogopite, a hydrous phyllosilicate mineral. Our study reveals that microbial colonization is associated with Fe(III) derived from the structure of phlogopite, where the dehydrogenation likely oxidizes Fe(II) to Fe(III) coupled to H2 generation8. Despite the absence of fracture-driven fluid ingress in the unfractured rock matrix, aqueous alteration evidenced at the rims by potassium removal indicates a self-sustaining habitat driven by an internal redox gradient9. These findings demonstrate that aqueous alteration of ultramafic rocks can sustain isolated microbial life over geological timescales, significantly expanding the potential for long-term habitability on both Earth and Mars4,10.

microbiology↗

Genome-resolved meta-omics unveils rock-hosted lifestyle of enigmatic DPANN archaea

Recent successes in the cultivation of DPANN archaea with their hosts have demonstrated an episymbiotic lifestyle, whereas the lifestyle of DPANN archaea in natural habitats remains controversial. A free-living lifestyle is speculated in oxygen-deprived fluids circulated through rock fractures, where apparent hosts of DPANN archaea are lacking. Alternatively, DPANN archaea may be isolated from their hosts attached to rock surfaces. To understand the ecology of rock-hosted DPANN archaea, rocks rather than fluids should be directly characterized. Here, we show the dominance of Pacearchaeota, one of the widespread and enigmatic lineages of DPANN archaea, in a deep-sea hydrothermal vent chimney. Metagenomic analysis of the rock sample revealed a symbiotic lifestyle of the chimney Pacearchaeota, based on the lack of biosynthetic genes for nucleotides, amino acids, cofactors, and lipids. Genome-resolved metaproteomic analysis clarified the co-occurrence of bacteria actively fixing carbon and nitrogen and thermophilic archaea in the rock habitat. Pacearchaeota has ecological advantages in colonizing the chimney rock interior, because the availability of nutrients and space is limited by silica deposition from hydrothermal fluids. We propose that the diversification of rock-hosted DPANN archaea could be profoundly influenced by coexisting microbes and minerals.

microbiology↗