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Terrestrial N 2 O emissions and related functional genes under climate change: A global meta‐analysis
- Source :
- Global Change Biology. 26:931-943
- Publication Year :
- 2019
- Publisher :
- Wiley, 2019.
-
Abstract
- Nitrous oxide (N2 O) emissions from soil contribute to global warming and are in turn substantially affected by climate change. However, climate change impacts on N2 O production across terrestrial ecosystems remain poorly understood. Here, we synthesized 46 published studies of N2 O fluxes and relevant soil functional genes (SFGs, that is, archaeal amoA, bacterial amoA, nosZ, narG, nirK and nirS) to assess their responses to increased temperature, increased or decreased precipitation amounts, and prolonged drought (no change in total precipitation but increase in precipitation intervals) in terrestrial ecosystem (i.e. grasslands, forests, shrublands, tundra and croplands). Across the data set, temperature increased N2 O emissions by 33%. However, the effects were highly variable across biomes, with strongest temperature responses in shrublands, variable responses in forests and negative responses in tundra. The warming methods employed also influenced the effects of temperature on N2 O emissions (most effectively induced by open-top chambers). Whole-day or whole-year warming treatment significantly enhanced N2 O emissions, but daytime, nighttime or short-season warming did not have significant effects. Regardless of biome, treatment method and season, increased precipitation promoted N2 O emission by an average of 55%, while decreased precipitation suppressed N2 O emission by 31%, predominantly driven by changes in soil moisture. The effect size of precipitation changes on nirS and nosZ showed a U-shape relationship with soil moisture; further insight into biotic mechanisms underlying N2 O emission response to climate change remain limited by data availability, underlying a need for studies that report SFG. Our findings indicate that climate change substantially affects N2 O emission and highlights the urgent need to incorporate this strong feedback into most climate models for convincing projection of future climate change.
- Subjects :
- 0106 biological sciences
Global and Planetary Change
geography
geography.geographical_feature_category
010504 meteorology & atmospheric sciences
Ecology
Global warming
Biome
Climate change
Atmospheric sciences
010603 evolutionary biology
01 natural sciences
Tundra
Shrubland
Environmental Chemistry
Environmental science
Climate model
Terrestrial ecosystem
Precipitation
0105 earth and related environmental sciences
General Environmental Science
Subjects
Details
- ISSN :
- 13652486 and 13541013
- Volume :
- 26
- Database :
- OpenAIRE
- Journal :
- Global Change Biology
- Accession number :
- edsair.doi...........40aecc56ac8e7fa0b7c9aa12ea4ecd6a