TY - JOUR
T1 - Microbial mineralization of cellulose in frozen soils
AU - Segura, Javier
AU - Nilsson, Mats
AU - Haei, Mahsa
AU - Sparrman, Tobias
AU - Mikkola, Jyri-Pekka
AU - Gräsvik, John
AU - Schleucher, Jürgen
AU - Öquist, Mats
PY - 2017
Y1 - 2017
N2 - High-latitude soils store similar to 40% of the global soil carbon and experience winters of up to 6 months or more. The winter soil CO2 efflux importantly contributes to the annual CO2 budget. Microorganisms can metabolize short chain carbon compounds in frozen soils. However, soil organic matter (SOM) is dominated by biopolymers, requiring exoenzymatic hydrolysis prior to mineralization. For winter SOM decomposition to have a substantial influence on soil carbon balances it is crucial whether or not biopolymers can be metabolized in frozen soils. We added C-13-labeled cellulose to frozen (-4 degrees C) mesocosms of boreal forest soil and followed its decomposition. Here we show that cellulose biopolymers are hydrolyzed under frozen conditions sustaining both CO2 production and microbial growth contributing to slow, but persistent, SOM mineralization. Given the long periods with frozen soils at high latitudes these findings are essential for understanding the contribution from winter to the global carbon balance.
AB - High-latitude soils store similar to 40% of the global soil carbon and experience winters of up to 6 months or more. The winter soil CO2 efflux importantly contributes to the annual CO2 budget. Microorganisms can metabolize short chain carbon compounds in frozen soils. However, soil organic matter (SOM) is dominated by biopolymers, requiring exoenzymatic hydrolysis prior to mineralization. For winter SOM decomposition to have a substantial influence on soil carbon balances it is crucial whether or not biopolymers can be metabolized in frozen soils. We added C-13-labeled cellulose to frozen (-4 degrees C) mesocosms of boreal forest soil and followed its decomposition. Here we show that cellulose biopolymers are hydrolyzed under frozen conditions sustaining both CO2 production and microbial growth contributing to slow, but persistent, SOM mineralization. Given the long periods with frozen soils at high latitudes these findings are essential for understanding the contribution from winter to the global carbon balance.
UR - https://res.slu.se/id/publ/93117
U2 - 10.1038/s41467-017-01230-y
DO - 10.1038/s41467-017-01230-y
M3 - Journal article
C2 - 29074961
SN - 2041-1723
VL - 8
JO - Nature Communications
JF - Nature Communications
M1 - 1154
ER -