ArticleMicrobiome2024
Giant viral signatures on the Greenland ice sheet.
Article in Microbiome, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 18 papers.
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Who cites it
18 citing papers in PubMed.
- Genomic catalogue of giant viruses reveals expanded diversity and functional potential.Nature microbiology · 2026Article
- Highly stable active core microbiomes in Greenland cryoconite holes during the bare ice period.FEMS microbiology ecology · 2026Article
- Giant viruses of the polar regions: diversity, endemism, adaptation and ecological structuring.FEMS microbiology ecology · 2026Review
- Cold comfort for change: Stream mats as biological indicators of ecosystem processes in the McMurdo Dry Valleys, Antarctica.Journal of phycology · 2026Review
- Current and projected effects of climate change in cryosphere microbial ecosystems.Nature reviews. Microbiology · 2026Review
- Unveiling the biodiversity of large DNA viruses in intertidal mudflats via metagenomics.Nature communications · 2026Article
- The diversity and abundance of chytrids on the Greenland Ice Sheet.Scientific reports · 2026Article
- Ablation provides key macronutrients (nitrogen and phosphorous) to glacier ice algae in NW Greenland.Nature communications · 2026Article
- Ubiquitous and expanding glacier algal blooms modelled around the Greenland Ice Sheet.Communications earth & environment · 2026Article
- Host-virome associations in the weathering crust of a rapidly retreating temperate Alpine glacier.Microbial genomics · 2025Article
- Giant endogenous viral elements in the genome of the model protistJournal of virology · 2025Article
- Linking extreme light availability to cellular function in algae-dominated communities on the Greenland Ice Sheet.FEMS microbiology ecology · 2025Article
- Algae-dominated metaproteomes uncover cellular adaptations to life on the Greenland Ice Sheet.NPJ biofilms and microbiomes · 2025Article
- Genomic and structural insights into Jyvaskylavirus, the first giant virus isolated from Finland.eLife · 2025Article
- Extraction Strategies for Profiling the Molecular Composition of Particulate Organic Matter on Glacier Surfaces.Environmental science & technology · 2025Article
- Article
- Single-cell imaging reveals efficient nutrient uptake and growth of microalgae darkening the Greenland Ice Sheet.Nature communications · 2025Article
- Vertical transport and spatiotemporal dynamics of giant viruses in the North Pacific subtropical gyre.The ISME journal · 2025Article
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Authors and funding
10 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
backgroundDark pigmented snow and glacier ice algae on glaciers and ice sheets contribute to accelerating melt. The biological controls on these algae, particularly the role of viruses, remain poorly understood. Giant viruses, classified under the nucleocytoplasmic large DNA viruses (NCLDV) supergroup (phylum Nucleocytoviricota), are diverse and globally distributed. NCLDVs are known to infect eukaryotic cells in marine and freshwater environments, providing a biological control on the algal population in these ecosystems. However, there is very limited information on the diversity and ecosystem function of NCLDVs in terrestrial icy habitats.
resultsIn this study, we investigate for the first time giant viruses and their host connections on ice and snow habitats, such as cryoconite, dark ice, ice core, red and green snow, and genomic assemblies of five cultivated Chlorophyta snow algae. Giant virus marker genes were present in almost all samples; the highest abundances were recovered from red snow and the snow algae genomic assemblies, followed by green snow and dark ice. The variety of active algae and protists in these GrIS habitats containing NCLDV marker genes suggests that infection can occur on a range of eukaryotic hosts. Metagenomic data from red and green snow contained evidence of giant virus metagenome-assembled genomes from the orders Imitervirales, Asfuvirales, and Algavirales.
conclusionOur study highlights NCLDV family signatures in snow and ice samples from the Greenland ice sheet. Giant virus metagenome-assembled genomes (GVMAGs) were found in red snow samples, and related NCLDV marker genes were identified for the first time in snow algal culture genomic assemblies; implying a relationship between the NCLDVs and snow algae. Metatranscriptomic viral genes also aligned with metagenomic sequences, suggesting that NCLDVs are an active component of the microbial community and are potential "top-down" controls of the eukaryotic algal and protistan members. This study reveals the unprecedented presence of a diverse community of NCLDVs in a variety of glacial habitats dominated by algae.
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