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January 22, 2026ISME Communications0 citationsOpen Access

Cultivation and genomic characterization of novel methanogens from arid desert biocrust

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WTWeitao TianEPEva PetrováSSSanae Sakai

Key Points

  • Explore the diversity and genomic characteristics of methanogens found in arid desert biocrusts.
  • Enriched and characterized seven methanogenic cultures from desert biocrusts.
  • Performed phylogenomic analyses to assess genetic relationships among cultures.
  • Conducted comparative genomics to identify antioxidant and desiccation-resistance genes.
  • Executed a global metagenomic survey to assess methanogen detection in dryland soils.
  • Six of the new enrichment cultures represent novel species of methanogens.
  • Phylogenomic analysis showed close relationships with anoxic methanogens without evolutionary distinctions.
  • Unique genes for membrane functions and non-functional stress-related genes were identified in the pangenome analysis.
  • Methanobacterium spp exhibited the lowest gene abundance for oxygen and desiccation tolerance.

Abstract

Abstract Methanogens are strictly anaerobic archaea capable of energy conservation by methane production, yet their presence in oxic and arid environments challenges existing paradigms. In this study, we enriched and genomically characterized seven methanogenic cultures from desert biocrusts, affiliated with the genera Methanobacterium, Methanosarcina, and Methanocella. Six of these new enrichment cultures represent new species. Nonetheless, phylogenomic analyses revealed close genetic relationships with organisms from anoxic environments, indicating the absence of an evolutionary distinction. Comparative genomics exposed diverse though non-unique repertories of antioxidant (e.g. catalase, superoxide dismutase and desulfoferrodoxin), and desiccation-resistance genes (including genes for maintaining osmotic pressure and repair of cell wall and membrane), with Methanobacterium spp possessing the lowest gene abundance and diversity for oxygen and desiccation tolerance. Nevertheless, the occurrence of a Class I methanogen such as Methanobacterium in arid soils challenges the notion that members of this class are less oxygen tolerant than Class II. Pangenome analysis further uncovered unique genes enriched in membrane-associated functions and potentially non-functional stress-related genes. Via a global metagenomic survey we find that methanogens are underdetected in dryland soils, likely due to sequencing depth limitations. Our findings highlight previously overlooked methanogen diversity and ecological plasticity in oxic and desiccated habitats, and emphasize the need for further studies to elucidate their survival strategies.

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Cite This Study

Tian et al. (2026) studied this question.

synapsesocial.com/papers/6971be8d642b1836717e3418https://doi.org/10.1093/ismeco/ycag013
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