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A national baseline for methane sink habitats and methanotroph diversity

Knudsen, K. S.; Sereika, M.; Jensen, T. B.; Delogu, F.; Schmider, T.; Jiang, C.; Kirkegaard, R.; Tveit, A. T.; Nielsen, P. H.; Albertsen, M.; Singleton, C. M.

2026-02-02 microbiology
10.64898/2026.02.02.703227 bioRxiv
Show abstract

Methane emissions account for nearly a third of the Earths effective radiative forcing, with methanotrophs playing a critical role in mitigating emissions by oxidising methane in diverse environments1. Despite their ecological importance, methanotrophic diversity and environmental distribution remain incompletely characterised due to cultivation challenges, incomplete or low-quality metagenome-assembled genomes, and limited taxonomic resolution in marker gene surveys. Here, we present a national study of the biogeography of novel and known methanotrophs across Denmarks major natural, urban and agricultural habitats, using genome-resolved classification of 10,683 metagenomes2 and 102 new methanotrophic species3. By linking metabolic potential to habitat-specific distributions, we reveal uncharacterised methanotrophs as dominant in natural ecosystems. These findings provide a comprehensive baseline of methanotroph diversity, reveal clear contrasts between natural and disturbed habitats, and highlight candidate species and habitats for future methane-mitigation strategies.

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