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Peaks of in situ N<sub>2</sub> O emissions are influenced by N<sub>2</sub> O-producing and reducing microbial communities across arable soils

温室气体 反硝化 土壤水分 环境科学 耕地 非生物成分 丰度(生态学) 氧化亚氮还原酶 一氧化二氮 氮气循环 硝化作用 环境化学 生态学 农业 生物 氮气 硝酸盐 化学 硝酸还原酶 土壤科学 亚硝酸盐还原酶 有机化学
作者
Luiz A. Domeignoz-Horta,Laurent Philippot,Céline Peyrard,David Bru,Marie-Christine Breuil,Florian Bizouard,Eric Justes,Bruno Mary,Joël Léonard,Aymé Spor
出处
期刊:Global Change Biology [Wiley]
卷期号:24 (1): 360-370 被引量:66
标识
DOI:10.1111/gcb.13853
摘要

Agriculture is the main source of terrestrial N2 O emissions, a potent greenhouse gas and the main cause of ozone depletion. The reduction of N2 O into N2 by microorganisms carrying the nitrous oxide reductase gene (nosZ) is the only known biological process eliminating this greenhouse gas. Recent studies showed that a previously unknown clade of N2 O-reducers (nosZII) was related to the potential capacity of the soil to act as a N2 O sink. However, little is known about how this group responds to different agricultural practices. Here, we investigated how N2 O-producers and N2 O-reducers were affected by agricultural practices across a range of cropping systems in order to evaluate the consequences for N2 O emissions. The abundance of both ammonia-oxidizers and denitrifiers was quantified by real-time qPCR, and the diversity of nosZ clades was determined by 454 pyrosequencing. Denitrification and nitrification potential activities as well as in situ N2 O emissions were also assessed. Overall, greatest differences in microbial activity, diversity, and abundance were observed between sites rather than between agricultural practices at each site. To better understand the contribution of abiotic and biotic factors to the in situ N2 O emissions, we subdivided more than 59,000 field measurements into fractions from low to high rates. We found that the low N2 O emission rates were mainly explained by variation in soil properties (up to 59%), while the high rates were explained by variation in abundance and diversity of microbial communities (up to 68%). Notably, the diversity of the nosZII clade but not of the nosZI clade was important to explain the variation of in situ N2 O emissions. Altogether, these results lay the foundation for a better understanding of the response of N2 O-reducing bacteria to agricultural practices and how it may ultimately affect N2 O emissions.
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