Microbial communities and ecological functions shift with glacier retreat in the Canadian High Arctic

Abstract Glaciers are rapidly retreating under climate warming, raising concerns about the loss of unique microbial ecosystems in both glacier ice and forelands. However, the changes in microbial diversity, community structure, and functional traits across the glacier ice-foreland transition remain poorly understood. In this study, we investigated how glacier retreat shapes bacterial and fungal communities along an ice-foreland chronosequence at the Arklio Glacier on Ellesmere Island, Nunavut, in the High Arctic of Canada. Using 16S and ITS amplicon sequencing, both the bacterial and fungal communities on the glacier ice contrasted markedly with those in the glacier foreland sediments, suggesting limited microbial connectivity and strong environmental filtering between these habitats. On the glacier ice, bacterial diversity increased toward the terminus, whereas fungal diversity declined. In the glacier foreland, bacterial diversity peaked at ~ 100 m from the glacier terminus (~ 20 years post-retreat), whereas fungal diversity peaked at 30 m, suggesting different successional responses following deglaciation. Taxonomy-based functional predictions indicated contrasting metabolic profiles, characterized by phototrophy on the glacier ice and predominantly chemoheterotrophy in the glacier foreland. Together, these results demonstrate that glacier retreat restructures microbial communities in habitat- and taxon-specific ways, and they underscore how glaciers are vulnerable reservoirs of microbial biodiversity.

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Publication Details

Journal
Scientific Reports
Published
2026-09-13
DOI
https://doi.org/10.1038/s41598-026-71128-7
Primary Topic
Polar Research and Ecology
Type
article
Field-Weighted Citation Impact
0.00

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article

Microbial communities and ecological functions shift with glacier retreat in the Canadian High Arctic

Warwick F. Vincent, Catherine Girard, Masaharu Tsuji, M. Uchida
Scientific Reports
Polar Research and Ecology
article

Microbial communities and ecological functions shift with glacier retreat in the Canadian High Arctic

Warwick F. Vincent, Catherine Girard, Masaharu Tsuji, M. Uchida
article en

Abstract

Abstract Glaciers are rapidly retreating under climate warming, raising concerns about the loss of unique microbial ecosystems in both glacier ice and forelands. However, the changes in microbial diversity, community structure, and functional traits across the glacier ice-foreland transition remain poorly understood. In this study, we investigated how glacier retreat shapes bacterial and fungal communities along an ice-foreland chronosequence at the Arklio Glacier on Ellesmere Island, Nunavut, in the High Arctic of Canada. Using 16S and ITS amplicon sequencing, both the bacterial and fungal communities on the glacier ice contrasted markedly with those in the glacier foreland sediments, suggesting limited microbial connectivity and strong environmental filtering between these habitats. On the glacier ice, bacterial diversity increased toward the terminus, whereas fungal diversity declined. In the glacier foreland, bacterial diversity peaked at ~ 100 m from the glacier terminus (~ 20 years post-retreat), whereas fungal diversity peaked at 30 m, suggesting different successional responses following deglaciation. Taxonomy-based functional predictions indicated contrasting metabolic profiles, characterized by phototrophy on the glacier ice and predominantly chemoheterotrophy in the glacier foreland. Together, these results demonstrate that glacier retreat restructures microbial communities in habitat- and taxon-specific ways, and they underscore how glaciers are vulnerable reservoirs of microbial biodiversity.

Scientific Reports
Toyo University (JP), The Graduate University for Advanced Studies, SOKENDAI (JP), National Institute of Polar Research (JP), Center for Northern Studies (CA)
Ministry of Education, Culture, Sports, Science and Technology, Natural Sciences and Engineering Research Council of Canada, Japan Society for the Promotion of Science
Openalex Percentile: Top 11%
Polar Research and Ecology
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