Geology and elevation shape bacterial assembly in Antarctic endolithic communities
Stefano Larsen1, Claudia Coleine2, Davide Albanese1
1Research and Innovation Centre, Fondazione Edmund Mach, Via E. Mach 1, 38098 San Michele all'Adige, Italy.
The Science of the Total Environment
|November 4, 2024
Summary
Geology and elevation are key factors shaping Antarctic endolithic bacterial communities in extreme cold-arid environments. These factors influence microbial diversity and community composition, with potential implications for species persistence under climate change.
Area of Science:
- Microbiology
- Ecology
- Geology
Background:
- Antarctic ice-free areas harbor diverse, adapted microbial communities, with endolithic growth being a dominant life-form.
- Understanding the assembly mechanisms of these endolithic microbiomes in extreme environments is crucial but remains limited.
Purpose of the Study:
- To investigate the diversity and assembly of endolithic bacterial communities in Antarctica.
- To determine the influence of rock type and elevation on microbial community structure and heterogeneity.
Main Methods:
- Metagenomic analysis was employed to examine bacterial communities.
- Communities were studied across different rock types (granite, sandstone) and a wide elevation range.
Main Results:
- Granite supported richer and more heterogeneous endolithic communities than sandstone.
- Elevation did not affect taxonomic richness but significantly influenced community composition turnover.
- Community turnover along elevation gradients was modulated by geology, with greater turnover between different rock types.
Conclusions:
- Geology and elevation are primary drivers of endolithic bacterial heterogeneity in Antarctic cold-arid environments.
- Deterministic processes, particularly variable selection, shape microbial assembly along elevation gradients.
- Warming temperatures may pose a threat to the persistence of these specialized extremophilic organisms.
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