Positive rhizosphere priming accelerates carbon release from permafrost soils

N Nina L. Friggens G Gustaf Hugelius S Steven V. Kokelj J Julian B. Murton G Gareth K. Phoenix I Iain P. Hartley (Geography, Faculty of Science, Environment and Economy, University of Exeter)

Abstract

Abstract Thawing permafrost soils are predicted to release substantial amounts of carbon by 2100. In addition to this, warming-induced active-layer deepening and increased rooting depth may result in further carbon losses from previously-frozen soil by stimulating microbial communities through fresh carbon inputs inducing positive rhizosphere priming. While models based on temperate data predict significant permafrost carbon loss through rhizosphere priming, data from permafrost soils are lacking. Here, we provide direct evidence of live plant-induced positive rhizosphere priming in permafrost and active-layer soils across diverse soil types from Arctic and Subarctic Canada. By 13CO2 labelling plants in a controlled environment, we show that root activity increases carbon loss from previously frozen soils by 31%. This rhizosphere priming effect persists longer in permafrost than in active-layer soils, suggesting greater vulnerability of permafrost carbon. These findings underscore the urgency of incorporating plant–soil–microbe interactions into models predicting greenhouse gas emissions from thawing permafrost.

Article Details

Volume / Issue Vol. 16, Issue 1
Published April 15, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (6)

N

Nina L. Friggens

G

Gustaf Hugelius

S

Steven V. Kokelj

J

Julian B. Murton

G

Gareth K. Phoenix

I

Iain P. Hartley

Geography, Faculty of Science, Environment and Economy, University of Exeter