Dry season residual straw reduces nitrous oxide emissions during rice season in upland-paddy rotation systems by inhibiting soil denitrification

IF 5.1 1区 农林科学 Q1 SOIL SCIENCE
Tao Wang, Chengyang Ji, Wei Zhou, Hong Chen, Yong Chen, Qi Liu, Tao Cao, Zhiping Yang, Yong Fu, Xueping Yue, Fei Deng, Xiaolong Lei, Youfeng Tao, Hong Cheng, Shulan Fu, Wanjun Ren
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Abstract

The mechanism by which residual straw incorporation affects nitrous oxide (N2O) and carbon dioxide equivalent (CO2-eq) emissions throughout the rice season under upland-paddy rotation systems is currently unknown. We aimed to elucidate its effect using a four-year experiment and meta-analysis in southwest China. In garlic–rice (GR) and wheat–rice (WR) systems, residual straw incorporation significantly decreased N2O emissions (43.6% and 73.5%, respectively) and NO3-N concentrations, relative abundance of denitrifying bacteria (Anaeromyxobacter, Bacillus and Hyphomicrobium), and copy numbers of the norB and nosZ genes. Ultimately, the soil denitrification rate was reduced during rice tillering and full heading periods, but the soil organic nitrogen accumulation level was increased. The reduction in N2O also resulted in an average reduction in the total CO2-eq of the GR (23.4%) and WR (32.9%) systems in 2021–2022. In addition, the meta-analysis results showed that straw incorporation had a generally positive effect on soil N2O emissions, but this effect was negative during the rice season in upland-paddy rotation systems, which supports the main results of our study. The path analysis results indicated that dry season residual straw incorporation slowed N2O emissions during the rice season by increasing the soil C/N ratio and downregulating denitrifying microorganisms, thereby inhibiting the denitrification rate. Our findings challenge the understanding that straw incorporation increases greenhouse gas emissions during the rice season and suggest that future estimates of straw incorporation on methane (CH4) emissions during the rice season should consider the offsetting effect of N2O.

Abstract Image

旱季残留稻草通过抑制土壤反硝化作用减少高地-水稻轮作系统稻季的氧化亚氮排放
在高地-水稻轮作系统下,残留秸秆影响水稻整个生长期一氧化二氮(N2O)和二氧化碳当量(CO2-eq)排放的机制目前尚不清楚。我们的目的是通过在中国西南地区进行为期四年的试验和荟萃分析来阐明其影响。在大蒜-水稻(GR)和小麦-水稻(WR)系统中,残留秸秆显著降低了 N2O 排放量(分别为 43.6% 和 73.5%)、NO3--N 浓度、反硝化细菌(厌氧菌、芽孢杆菌和拟杆菌)的相对丰度以及 norB 和 nosZ 基因的拷贝数。最终,在水稻分蘖期和全生育期,土壤反硝化率降低,但土壤有机氮积累水平提高。一氧化二氮的减少也导致 2021-2022 年 GR(23.4%)和 WR(32.9%)系统的二氧化碳当量总量平均减少。此外,荟萃分析结果表明,秸秆掺入对土壤一氧化二氮排放总体上有积极影响,但在高地-水稻轮作系统的水稻季节,这种影响为负,这支持了我们研究的主要结果。路径分析结果表明,旱季残留秸秆的掺入通过提高土壤C/N比和下调反硝化微生物,从而抑制反硝化速率,减缓了水稻季的N2O排放。我们的研究结果对稻草掺入会增加稻季温室气体排放的认识提出了质疑,并建议今后在估算稻草掺入对稻季甲烷(CH4)排放的影响时应考虑 N2O 的抵消作用。
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来源期刊
Biology and Fertility of Soils
Biology and Fertility of Soils 农林科学-土壤科学
CiteScore
11.80
自引率
10.80%
发文量
62
审稿时长
2.2 months
期刊介绍: Biology and Fertility of Soils publishes in English original papers, reviews and short communications on all fundamental and applied aspects of biology – microflora and microfauna - and fertility of soils. It offers a forum for research aimed at broadening the understanding of biological functions, processes and interactions in soils, particularly concerning the increasing demands of agriculture, deforestation and industrialization. The journal includes articles on techniques and methods that evaluate processes, biogeochemical interactions and ecological stresses, and sometimes presents special issues on relevant topics.
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