微观世界
硝化作用
反硝化
土壤水分
氮气循环
环境科学
环境化学
农学
自行车
土壤pH值
土壤生物学
孵化
微生物种群生物学
化学
营养循环
营养物
生态学
氮气
土工试验
土壤微生物学
土壤类型
环境工程
土壤有机质
土壤分类
作者
Sha Zhao,Yuchen Li,Hongwei Xu,Yanyan Zhou,Jian‐Qiang Su,Hu Li
标识
DOI:10.1021/acs.est.6c04132
摘要
Land use and soil viruses affect microbial communities and nitrogen cycling. However, how land use modulates viral effects on soil microbial communities, nitrification, and denitrification remains poorly understood. Here, we constructed a microcosm system using sterilized forest (FR), greenbelt (GB), and agricultural (AG) soils inoculated with microbial suspensions and either active or inactivated viral suspensions for 14 or 56 days. The addition of active viruses increased bacterial abundance and altered the composition of bacterial and fungal communities across land uses. The potential nitrification rate (0.013–4.17 mg of NO 3 − -N kg –1 of dry soil h –1 ) decreased in forest and agricultural soils but increased in greenbelt soil with active viral addition. The potential denitrification rate and N 2 O emission rates (0.015–1.53 μg of N g –1 of dry soil h –1 ) increased in forest soil, whereas the potential denitrification rate decreased in greenbelt soil with active viral addition compared with inactivated viral addition. Isotope-based source partitioning suggested that active viral addition altered the pathways of N 2 O production in forest and agricultural soils. PLS–PM results showed that viral effects on soil nitrogen cycling indicators were associated with land-use-dependent soil nutrient levels, microbial communities, and VLPs. The ANOVA further showed that responses of nitrogen-cycling indicators to viral addition depended on soil type and incubation time under the microcosm conditions. Overall, this study provides initial microcosm evidence that active viral addition was associated with changes in the potential nitrification rate, potential denitrification rate, and N 2 O emission rate in soil with different land uses.
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