Active layer microbial inocula restore missing functions across thawed permafrost soils

Abstract Microbial dynamics in thawing permafrost induce a climate feedback of uncertain magnitude. Upon thaw, active layer microorganisms may establish in formerly frozen layers and introduce missing functions. Here we test the prevalence of functional limitations and how active layer microorganisms can mitigate these across four widespread permafrost types over 389 days. By restoring functions with a multifunctional microbial community, we demonstrate widespread functional limitations, as increased CO 2 emissions across four permafrost types, and onset N 2 O emissions in two of those. However, realistic active layer inocula increased CO 2 or N 2 O production less than the multifunctional community, due to unsuccessful coalescence or limitations in the inocula. Under anoxia, active layer inocula quintupled CH 4 while decreasing CO 2 production, resulting in a 35% increase in CO 2 -eq over six months. Understanding the functional limitations of permafrost microbial communities will be key to predicting their substantial, yet unaccounted, consequences on the biogeochemistry of the permafrost region.

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Publication Details

Journal
Nature Communications
Published
2026-09-25
DOI
https://doi.org/10.1038/s41467-026-78060-4
Primary Topic
Climate change and permafrost
Type
article
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article

Active layer microbial inocula restore missing functions across thawed permafrost soils

Sara Hallin, Ellen Dorrepaal, Eveline Josiane Krab, Frida Keuper et al.
Nature Communications
Climate change and permafrost
article

Active layer microbial inocula restore missing functions across thawed permafrost soils

Sara Hallin, Ellen Dorrepaal, Eveline Josiane Krab, Frida Keuper, Jaanis Juhanson, Sylvain Monteux, Birgit Wild, Josefine Walz, Alexander Tøsdal Tveit, Konstantin Gavazov, Sébastien Fontaine, Rica Wegner
article en

Abstract

Abstract Microbial dynamics in thawing permafrost induce a climate feedback of uncertain magnitude. Upon thaw, active layer microorganisms may establish in formerly frozen layers and introduce missing functions. Here we test the prevalence of functional limitations and how active layer microorganisms can mitigate these across four widespread permafrost types over 389 days. By restoring functions with a multifunctional microbial community, we demonstrate widespread functional limitations, as increased CO 2 emissions across four permafrost types, and onset N 2 O emissions in two of those. However, realistic active layer inocula increased CO 2 or N 2 O production less than the multifunctional community, due to unsuccessful coalescence or limitations in the inocula. Under anoxia, active layer inocula quintupled CH 4 while decreasing CO 2 production, resulting in a 35% increase in CO 2 -eq over six months. Understanding the functional limitations of permafrost microbial communities will be key to predicting their substantial, yet unaccounted, consequences on the biogeochemistry of the permafrost region.

Nature CommunicationsVol. 17(1)
Climate action
Openalex Percentile: Top 16%
Climate change and permafrost
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Active layer microbial inocula restore missing functions across thawed permafrost soils — Sara Hallin, Ellen Dorrepaal, et al. · Nature Communications (2026) | TGRS Research Map | TGRS