Potential drivers of microbial community structure and function in Arctic snow
The Arctic seasonal snowpack can extend at times over a third of the Earth’s land surface. This chemically dynamic environment interacts constantly with different environmental compartments such as atmosphere, soil and meltwater, and thus, strongly influences the entire biosphere. However, the micro...
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doaj-d3076b550e3942b5b00169cfd79e59c42020-11-24T23:22:14ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2014-08-01510.3389/fmicb.2014.0041399504Potential drivers of microbial community structure and function in Arctic snowLorrie eMaccario0Timothy eVogel1Catherine eLarose2Ecole Centrale de LyonEcole Centrale de LyonEcole Centrale de LyonThe Arctic seasonal snowpack can extend at times over a third of the Earth’s land surface. This chemically dynamic environment interacts constantly with different environmental compartments such as atmosphere, soil and meltwater, and thus, strongly influences the entire biosphere. However, the microbial community associated with this habitat remains poorly understood. Our objective was to investigate the functional capacities, diversity and dynamics of the microorganisms in snow and to test the hypothesis that their functional signature reflects the snow environment. We applied a metagenomic approach to nine snow samples taken over two months during the spring season. Fungi, Bacteroidetes and Proteobacteria were predominant in metagenomic datasets and changes in community structure were apparent throughout the field season. Functional data that strongly correlated with chemical parameters like mercury or nitrogen species supported that this variation could be explained by fluctuations in environmental conditions. Through inter-environmental comparisons we examined potential drivers of snowpack microbial community functioning. Known cold adaptations were detected in all compared environments without any apparent differences in their relative abundance, implying that adaptive mechanisms related to environmental factors other than temperature may play a role in defining the snow microbial community. Photochemical reactions and oxidative stress seem to be decisive parameters in structuring microbial communities inside Arctic snowpacks.http://journal.frontiersin.org/Journal/10.3389/fmicb.2014.00413/fullArcticMetagenomiccryosphereMicrobial AdaptationSnowpack |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lorrie eMaccario Timothy eVogel Catherine eLarose |
spellingShingle |
Lorrie eMaccario Timothy eVogel Catherine eLarose Potential drivers of microbial community structure and function in Arctic snow Frontiers in Microbiology Arctic Metagenomic cryosphere Microbial Adaptation Snowpack |
author_facet |
Lorrie eMaccario Timothy eVogel Catherine eLarose |
author_sort |
Lorrie eMaccario |
title |
Potential drivers of microbial community structure and function in Arctic snow |
title_short |
Potential drivers of microbial community structure and function in Arctic snow |
title_full |
Potential drivers of microbial community structure and function in Arctic snow |
title_fullStr |
Potential drivers of microbial community structure and function in Arctic snow |
title_full_unstemmed |
Potential drivers of microbial community structure and function in Arctic snow |
title_sort |
potential drivers of microbial community structure and function in arctic snow |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Microbiology |
issn |
1664-302X |
publishDate |
2014-08-01 |
description |
The Arctic seasonal snowpack can extend at times over a third of the Earth’s land surface. This chemically dynamic environment interacts constantly with different environmental compartments such as atmosphere, soil and meltwater, and thus, strongly influences the entire biosphere. However, the microbial community associated with this habitat remains poorly understood. Our objective was to investigate the functional capacities, diversity and dynamics of the microorganisms in snow and to test the hypothesis that their functional signature reflects the snow environment. We applied a metagenomic approach to nine snow samples taken over two months during the spring season. Fungi, Bacteroidetes and Proteobacteria were predominant in metagenomic datasets and changes in community structure were apparent throughout the field season. Functional data that strongly correlated with chemical parameters like mercury or nitrogen species supported that this variation could be explained by fluctuations in environmental conditions. Through inter-environmental comparisons we examined potential drivers of snowpack microbial community functioning. Known cold adaptations were detected in all compared environments without any apparent differences in their relative abundance, implying that adaptive mechanisms related to environmental factors other than temperature may play a role in defining the snow microbial community. Photochemical reactions and oxidative stress seem to be decisive parameters in structuring microbial communities inside Arctic snowpacks. |
topic |
Arctic Metagenomic cryosphere Microbial Adaptation Snowpack |
url |
http://journal.frontiersin.org/Journal/10.3389/fmicb.2014.00413/full |
work_keys_str_mv |
AT lorrieemaccario potentialdriversofmicrobialcommunitystructureandfunctioninarcticsnow AT timothyevogel potentialdriversofmicrobialcommunitystructureandfunctioninarcticsnow AT catherineelarose potentialdriversofmicrobialcommunitystructureandfunctioninarcticsnow |
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