Whole-Genome Metagenomics Insights Revealed a Uranium Bio-remediating Cross-Domain Microbiome in the Dhala Impact Structure, India
Meteorite impact structures on earth represent unique terrestrial analogues of extreme planetary environments where fractured lithologies, hydrothermal alteration, elevated concentrations of radionuclides, and prolonged water-rock interactions create ecological niches for specialized microbial communities. The Palaeoproterozoic Dhala impact structure in north-central India is characterized by uranium-bearing impactites and possesses a very high concentration of Uranium (up to 99.5 ppm) that makes it a unique natural laboratory to investigate microbial adaptation to radioactive and metal-rich geological environments. In addition, the Dhala structure harbors specialized radiotoxic hydrothermal mineral phases such as coffinite and pitchblende, which show a globally distinct and biologically unexplored niche. The present investigation is the first in-depth, whole-genome metagenomic study of soil and water samples of uranium-rich sites from the Dhala structure, exploring the whole microbial community (Bacteria, Archaea, Eukaryotes, and Viruses) up to the species level present in the samples. The cross-domain metagenomics analysis identified a highly unique and resilient microbiome that consists of bacteria, archaea, eukaryotes, and viruses, coevolved under prolonged radiological and multiple metal stress. Functional metagenomic analysis revealed numerous metabolic adaptations responsible for their survival, homeostasis, and biomineralization in situ. The deep sequencing method further enabled the identification of 58 functional genes directly involved in uranium bioremediation. Furthermore, this study revealed important pathways for radionuclide reduction, cellular efflux, and biotransformation. Novel findings of the present study point out the in-depth evolutionary relations of biosphere-geosphere interaction within an ancient hypervelocity impact-generated ecosystem. In a nutshell, the Dhala extremophiles with novel genetic makeup present an untapped and promising reservoir for the development of eco-friendly, next-generation microbial bioremediation strategies to efficiently tackle the global anthropogenic contamination of uranium and the challenges of nuclear waste management. Thus, the present study establishes Dhala structure as an unparalleled site for environmental geomicrobiology, microbial evolution, and astrobiology.