<p><b>Table 1.</b> Primer sets used for qPCR of 16S rRNA and <em>amoA</em> genes from the cryoconite samples. </p> <p><strong>Abstract</strong></p> <p>The aggregation of surface debris particles on melting glaciers into larger units (cryoconite) provides microenvironments for various microorganisms and metabolic processes. Here we investigate the microbial community on the surface of Aldegondabreen, a valley glacier in Svalbard which is supplied with carbon and nutrients from different sources across its surface, including colonies of seabirds. We used a combination of geochemical analysis (of surface debris, ice and meltwater), quantitative polymerase chain reactions (targeting the 16S ribosomal ribonuclei...
<p><strong>Figure 1.</strong> (A) Study location with cryoconite holes numbered. (B) Rotmoosferner's...
The diversity of highly active bacterial communities in cryoconite holes on three Arctic glaciers in...
Cryoconite holes, supraglacial depressions containing water and microbe-mineral aggregates, are know...
<p><b>Table 4.</b> Abundances of the 16S rRNA gene and bacterial and archaeal <em>am...
<p><b>Table 5.</b> Sequencing depth and diversity and dominance indices for the sele...
<p><strong>Figure 2.</strong> Histogram of aggregate diameters at transect A, site A2.</p> <p><stron...
<p><strong>Figure 5.</strong> Diversity of prokaryotic phyla in the samples selected for pyrosequenc...
<p><strong>Figure 6.</strong> Phylogenetic analysis of the nitrososphaeraceae sequences identified i...
<p><strong>Figure 4.</strong> RDA triplot showing the effects of environmental variables (dashed arr...
<p><b>Table 3.</b> Nutrient concentrations in cryoconite sediment, supraglacial melt...
<p><strong>Figure 1.</strong> (A) Aldegondabreen in Grønfjorden, the study site in Svalbard. (B) Loc...
<p><strong>Figure 3.</strong> RDA biplot visualizing the effects of physical environmental variables...
Glacier surfaces support unique microbial food webs dominated by organic and inorganic debris called...
Biological processes in the supraglacial ecosystem, including cryoconite, contribute to nutrient cyc...
The microbial communities and photosynthetic capacity of cryoconite holes on the Midre Lovénbreen Gl...
<p><strong>Figure 1.</strong> (A) Study location with cryoconite holes numbered. (B) Rotmoosferner's...
The diversity of highly active bacterial communities in cryoconite holes on three Arctic glaciers in...
Cryoconite holes, supraglacial depressions containing water and microbe-mineral aggregates, are know...
<p><b>Table 4.</b> Abundances of the 16S rRNA gene and bacterial and archaeal <em>am...
<p><b>Table 5.</b> Sequencing depth and diversity and dominance indices for the sele...
<p><strong>Figure 2.</strong> Histogram of aggregate diameters at transect A, site A2.</p> <p><stron...
<p><strong>Figure 5.</strong> Diversity of prokaryotic phyla in the samples selected for pyrosequenc...
<p><strong>Figure 6.</strong> Phylogenetic analysis of the nitrososphaeraceae sequences identified i...
<p><strong>Figure 4.</strong> RDA triplot showing the effects of environmental variables (dashed arr...
<p><b>Table 3.</b> Nutrient concentrations in cryoconite sediment, supraglacial melt...
<p><strong>Figure 1.</strong> (A) Aldegondabreen in Grønfjorden, the study site in Svalbard. (B) Loc...
<p><strong>Figure 3.</strong> RDA biplot visualizing the effects of physical environmental variables...
Glacier surfaces support unique microbial food webs dominated by organic and inorganic debris called...
Biological processes in the supraglacial ecosystem, including cryoconite, contribute to nutrient cyc...
The microbial communities and photosynthetic capacity of cryoconite holes on the Midre Lovénbreen Gl...
<p><strong>Figure 1.</strong> (A) Study location with cryoconite holes numbered. (B) Rotmoosferner's...
The diversity of highly active bacterial communities in cryoconite holes on three Arctic glaciers in...
Cryoconite holes, supraglacial depressions containing water and microbe-mineral aggregates, are know...