bioRxiv · 10.1101/2025.03.05.641783
National-scale biogeography and function of river and stream bacterial biofilm communities
Abstract
Biofilm-dwelling microorganisms coat the surfaces of stones in river and stream ecosystems, forming diverse communities that are fundamental to biogeochemical processes and ecosystem functioning1,2. Flowing water (lotic) ecosystems are under pressure from a wide range of interacting stressors including changes in land use, chemical pollution, and climate3. Despite their ecological importance, the taxonomic and functional diversity of river biofilms and their responses to environmental change are limited by a lack of understanding of their taxonomic composition and physicochemical drivers across large spatial scales. We conducted a national-scale assessment of bacterial diversity and function using metagenomic sequencing from rivers and streams across England, analogous to other large-scale efforts to understand microbial biogeography across diverse environments4,5,6,7. We recovered 1,014 metagenome-assembled genomes (MAGs) from 450 biofilms collected across Englands extensive river network, revealing substantial taxonomic novelty, with [~]20% of the MAGs representing novel genera. We demonstrated that biofilm communities, dominated by generalist bacteria, exhibit remarkable functional diversity and metabolic versatility, and play a significant role in nutrient cycling with the potential for contaminant transformation. Environmental drivers, most notably geology, land cover, and nutrients, explained up to 90% of the variation in community composition. These findings highlight the importance of river biofilms and establish a foundation for future research on the roles of biofilms in ecosystem health and resilience to environmental change.
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Thorpe, A. C., Busi, S. B., Warren, J., Hunt, L. H., Walsh, K., Read, D. S.. 2025-03-10. National-scale biogeography and function of river and stream bacterial biofilm communities. https://doi.org/10.1101/2025.03.05.641783
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