TY - JOUR
T1 - Intermediate soil acidification induces highest nitrous oxide emissions
AU - Qiu, Yunpeng
AU - Zhang, Yi
AU - Zhang, Kangcheng
AU - Xu, Xinyu
AU - Zhao, Yunfeng
AU - Bai, Tongshuo
AU - Zhao, Yexin
AU - Wang, Hao
AU - Sheng, Xiongjie
AU - Bloszies, Sean
AU - Gillespie, Christopher J.
AU - He, Tangqing
AU - Wang, Yang
AU - Chen, Huaihai
AU - Guo, Lijin
AU - Song, He
AU - Ye, Chenglong
AU - Wang, Yi
AU - Woodley, Alex
AU - Guo, Jingheng
AU - Cheng, Lei
AU - Bai, Yongfei
AU - Zhu, Yongguan
AU - Hallin, Sara
AU - Firestone, Mary K.
AU - Hu, Shuijin
N1 - Publisher Copyright:
© The Author(s) 2024.
PY - 2024
Y1 - 2024
N2 - Global potent greenhouse gas nitrous oxide (N2O) emissions from soil are accelerating, with increases in the proportion of reactive nitrogen emitted as N2O, i.e., N2O emission factor (EF). Yet, the primary controls and underlying mechanisms of EFs remain unresolved. Based on two independent but complementary global syntheses, and three field studies determining effects of acidity on N2O EFs and soil denitrifying microorganisms, we show that soil pH predominantly controls N2O EFs and emissions by affecting the denitrifier community composition. Analysis of 5438 paired data points of N2O emission fluxes revealed a hump-shaped relationship between soil pH and EFs, with the highest EFs occurring in moderately acidic soils that favored N2O-producing over N2O-consuming microorganisms, and induced high N2O emissions. Our results illustrate that soil pH has a unimodal relationship with soil denitrifiers and EFs, and the net N2O emission depends on both the N2O/(N2O + N2) ratio and overall denitrification rate. These findings can inform strategies to predict and mitigate soil N2O emissions under future nitrogen input scenarios.Intermediate soil acidification alters the denitrifier community composition and induces high nitrous oxide (N2O) emissions, which contributes to the observed acceleration of N2O emissions from global soils
AB - Global potent greenhouse gas nitrous oxide (N2O) emissions from soil are accelerating, with increases in the proportion of reactive nitrogen emitted as N2O, i.e., N2O emission factor (EF). Yet, the primary controls and underlying mechanisms of EFs remain unresolved. Based on two independent but complementary global syntheses, and three field studies determining effects of acidity on N2O EFs and soil denitrifying microorganisms, we show that soil pH predominantly controls N2O EFs and emissions by affecting the denitrifier community composition. Analysis of 5438 paired data points of N2O emission fluxes revealed a hump-shaped relationship between soil pH and EFs, with the highest EFs occurring in moderately acidic soils that favored N2O-producing over N2O-consuming microorganisms, and induced high N2O emissions. Our results illustrate that soil pH has a unimodal relationship with soil denitrifiers and EFs, and the net N2O emission depends on both the N2O/(N2O + N2) ratio and overall denitrification rate. These findings can inform strategies to predict and mitigate soil N2O emissions under future nitrogen input scenarios.Intermediate soil acidification alters the denitrifier community composition and induces high nitrous oxide (N2O) emissions, which contributes to the observed acceleration of N2O emissions from global soils
UR - https://res.slu.se/id/publ/142385
U2 - 10.1038/s41467-024-46931-3
DO - 10.1038/s41467-024-46931-3
M3 - Journal article
C2 - 38538640
AN - SCOPUS:85188790614
SN - 2041-1723
VL - 15
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 2695
ER -