Javascript must be enabled to continue!
Wheat Plants Reduce N2O Emissions from Upland Soil Subject to Transient and Permanent Waterlogging
View through CrossRef
Climate change is expected to increase the frequency of extreme soil moisture events, such as winter waterlogging followed by spring drought, particularly in temperate regions of Europe, North America and Northeast China. While N2O emissions from paddy soils under waterlogging and subsequent drainage have been widely studied, knowledge of upland arable soils under wheat cultivation remains limited. We hypothesized that: (1) in upland soils, combined waterlogging and drought reduces N2O emissions compared to continuous waterlogging, and (2) plant presence mitigates soil nitrate accumulation and N2O emissions across different moisture regimes. A greenhouse experiment was conducted using intact upland soil cores with and without wheat under four moisture treatments: control (60% water-holding capacity, WHC), drought (30% WHC), waterlogging, and waterlogging followed by drought. Daily and cumulative N2O fluxes, soil mineral nitrogen (NH4+-002DN and NO3−-N), and total nitrogen uptake by wheat shoots were measured. Prolonged waterlogging resulted in the highest cumulative N2O emissions, whereas the transition from waterlogging to drought triggered a sharp but transient N2O peak, particularly in soils without plants. Wheat presence consistently reduced N2O emissions, likely through nitrate uptake, which limited substrate availability for incomplete denitrification. Moisture regimes strongly affected nitrate dynamics, with drought promoting nitrate accumulation and waterlogging enhancing nitrate loss. These findings highlight the vulnerability of upland soils in regions prone to seasonal moisture extremes. Effective management of soil moisture and nitrogen, including the promotion of plant growth, is essential to mitigate N2O emissions and improve nitrogen use efficiency under future climate scenarios.
Title: Wheat Plants Reduce N2O Emissions from Upland Soil Subject to Transient and Permanent Waterlogging
Description:
Climate change is expected to increase the frequency of extreme soil moisture events, such as winter waterlogging followed by spring drought, particularly in temperate regions of Europe, North America and Northeast China.
While N2O emissions from paddy soils under waterlogging and subsequent drainage have been widely studied, knowledge of upland arable soils under wheat cultivation remains limited.
We hypothesized that: (1) in upland soils, combined waterlogging and drought reduces N2O emissions compared to continuous waterlogging, and (2) plant presence mitigates soil nitrate accumulation and N2O emissions across different moisture regimes.
A greenhouse experiment was conducted using intact upland soil cores with and without wheat under four moisture treatments: control (60% water-holding capacity, WHC), drought (30% WHC), waterlogging, and waterlogging followed by drought.
Daily and cumulative N2O fluxes, soil mineral nitrogen (NH4+-002DN and NO3−-N), and total nitrogen uptake by wheat shoots were measured.
Prolonged waterlogging resulted in the highest cumulative N2O emissions, whereas the transition from waterlogging to drought triggered a sharp but transient N2O peak, particularly in soils without plants.
Wheat presence consistently reduced N2O emissions, likely through nitrate uptake, which limited substrate availability for incomplete denitrification.
Moisture regimes strongly affected nitrate dynamics, with drought promoting nitrate accumulation and waterlogging enhancing nitrate loss.
These findings highlight the vulnerability of upland soils in regions prone to seasonal moisture extremes.
Effective management of soil moisture and nitrogen, including the promotion of plant growth, is essential to mitigate N2O emissions and improve nitrogen use efficiency under future climate scenarios.
Related Results
Functional Analysis of Copper (Cu) and Soil Ph for the Nosz Gene Abundance and N2o Emissions in Acidic Soils
Functional Analysis of Copper (Cu) and Soil Ph for the Nosz Gene Abundance and N2o Emissions in Acidic Soils
Nitrous oxide (N2O) emissions from agricultural soils are alarming for global warming and climate change. Conversion of N2O to N2 is carried out only by nosZ gene encoded N2O-reduc...
Low vs. upland - copper addition regulates denitrification in cropland soils from N2O emissions hotspots in Denmark
Low vs. upland - copper addition regulates denitrification in cropland soils from N2O emissions hotspots in Denmark
Agricultural land-use makes up around 38% of the total global land surface. Farming activities are a major source of greenhouse gas emissions (carbon dioxide, methane and nitrous o...
Impact of headwater streams on N2O emissions from agricultural catchments
Impact of headwater streams on N2O emissions from agricultural catchments
Mineral and organic fertilization is estimated to be responsible for 70% of N2O emissions worldwide, a greenhouse gas which is approximately 270 times more potent than CO2. N2O emi...
Increased Soil N2o Emission During Drainage is Mitigated by Inputs of Labile Carbon and Amplified by Nitrogen
Increased Soil N2o Emission During Drainage is Mitigated by Inputs of Labile Carbon and Amplified by Nitrogen
Conversion from submerged paddy field to upland cultivation, driven by economic benefits, generally increases N2O emission. However, the underlying mechanisms regarding N2O emissio...
Response of Urban Waterlogging to Short-Duration Precipitation Based on Minute-Resolution Observations in Jinan, China
Response of Urban Waterlogging to Short-Duration Precipitation Based on Minute-Resolution Observations in Jinan, China
To enhance the meteorological forecasting and early warning service capability for urban waterlogging risks in Jinan, this study aims to investigate the relationship between rainfa...
Tissue-Specific Transcriptome and Metabolome Analysis Reveals the Response Mechanism of Brassica napus to Waterlogging Stress
Tissue-Specific Transcriptome and Metabolome Analysis Reveals the Response Mechanism of Brassica napus to Waterlogging Stress
During the growth period of rapeseed, if there is continuous rainfall, it will easily lead to waterlogging stress, which will seriously affect the growth of rapeseed. Currently, th...
Sources of nitrous oxide emitted from European forest soils
Sources of nitrous oxide emitted from European forest soils
Abstract. Forest ecosystems may provide strong sources of nitrous oxide (N2O), which is important for atmospheric chemical and radiative properties. Nonetheless, our understanding ...
Sources of nitrous oxide emitted from European forest soils
Sources of nitrous oxide emitted from European forest soils
Abstract. Forest ecosystems may provide strong sources of nitrous oxide (N2O), which is important for atmospheric chemical and radiative properties. Nonetheless, our understanding ...

