Background Alpine freshwater habitats are biodiversity hotspots, home to uniquely adapted microbial communities. However, our understanding of how taxonomic composition and metabolic potential of microbial communities varies across habitat type and physiography remains limited. Results Using metagenomic sequencing, we examined microbial diversity and functions in sediment and water habitats across a physiographic gradient, including deep and shallow lakes, pasture ponds, ponds and peat bogs. Overall, sediments supported more diverse and even microbial communities. Conversely, waters displayed higher heterogeneity across the physiographic gradient in both taxonomic and functional composition. Notably, water communities from small water bodies, especially peat bogs and ponds, showed comparable diversity to their respective sediment communities, with higher taxonomic richness than aquatic communities from larger water bodies. Sediment microbial communities showed higher functional potential for nitrogen and methane metabolism, a pattern related to the likely anoxic conditions. By contrast, water bodies favored higher potential for carbohydrate metabolism, carbon oxidation and photosynthesis. Lastly, we recovered 496 bacterial and archaeal metagenome-assembled genomes and found that 73% could not be assigned at the species level. Conclusions Our findings shed new light on the microbial diversity and metabolic potential of alpine freshwater ecosystems, highlighting the vast and unknown diversity harbored by these fragile alpine ecosystems

Gattei, A.; Vettorazzo, S.; Pindo, M.; Salmaso, N.; Manghi, P.; Larsen, S.; Donati, C. (9999). Metagenomics identifies distinct functional and taxonomic profiles between freshwaters and associated sediments in alpine habitats. ENVIRONMENTAL MICROBIOME. doi: 10.1186/s40793-026-00931-6 handle: https://hdl.handle.net/10449/97575

Metagenomics identifies distinct functional and taxonomic profiles between freshwaters and associated sediments in alpine habitats

Gattei, A.
Primo
;
Vettorazzo, S.;Pindo, M.;Salmaso, N.;Manghi, P.;Larsen, S.;Donati, C.
Ultimo
In corso di stampa

Abstract

Background Alpine freshwater habitats are biodiversity hotspots, home to uniquely adapted microbial communities. However, our understanding of how taxonomic composition and metabolic potential of microbial communities varies across habitat type and physiography remains limited. Results Using metagenomic sequencing, we examined microbial diversity and functions in sediment and water habitats across a physiographic gradient, including deep and shallow lakes, pasture ponds, ponds and peat bogs. Overall, sediments supported more diverse and even microbial communities. Conversely, waters displayed higher heterogeneity across the physiographic gradient in both taxonomic and functional composition. Notably, water communities from small water bodies, especially peat bogs and ponds, showed comparable diversity to their respective sediment communities, with higher taxonomic richness than aquatic communities from larger water bodies. Sediment microbial communities showed higher functional potential for nitrogen and methane metabolism, a pattern related to the likely anoxic conditions. By contrast, water bodies favored higher potential for carbohydrate metabolism, carbon oxidation and photosynthesis. Lastly, we recovered 496 bacterial and archaeal metagenome-assembled genomes and found that 73% could not be assigned at the species level. Conclusions Our findings shed new light on the microbial diversity and metabolic potential of alpine freshwater ecosystems, highlighting the vast and unknown diversity harbored by these fragile alpine ecosystems
Freshwater microbial ecology
Metagenomics
Biodiversity monitoring
Metagenome-assembled genomes
Functional analysis
Settore BIOS-15/A - Microbiologia
In corso di stampa
Gattei, A.; Vettorazzo, S.; Pindo, M.; Salmaso, N.; Manghi, P.; Larsen, S.; Donati, C. (9999). Metagenomics identifies distinct functional and taxonomic profiles between freshwaters and associated sediments in alpine habitats. ENVIRONMENTAL MICROBIOME. doi: 10.1186/s40793-026-00931-6 handle: https://hdl.handle.net/10449/97575
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