Increasing phosphorus availability reduces grassland soil N2O emission: Plants and microbes move from mutualism to self-reliance
作者:Jirui Gong, Shangpeng Zhang, Shangpeng Zhang, Ying Li, Hans Lambers, Weiyuan Zhang, Siqi Zhang, Siqi Zhang, Xuede Dong, Guisen Yang, Ruijing Wang, Chenyi Yan, Tong Wang · 发表于:Agriculture Ecosystems & Environment · 年份:2025 · DOI:10.1016/j.agee.2025.109695 · 被引用次数:7 · 研究领域:Soil Carbon and Nitrogen Dynamics、Legume Nitrogen Fixing Symbiosis、Peatlands and Wetlands Ecology
Phosphorus (P) availability directly affects grassland soil physicochemical properties and plant growth , which in turn alters microbially mediated nitrous oxide (N 2 O) emission. Linking plant, soil, and microbial processes is helpful to reveal processes that affect the effects of soil P on N 2 O emission. Here, we established five P-application treatments (control, with no P addition, and 1–12.5 g P m −2 yr −1 in treatments P1 to P12.5) to vary soil P availability. We investigated how the nutrient-acquisition strategies of Leymus chinensis , soil physicochemical properties , and microbial metabolic activity responded to P availability and assess effects on N 2 O emission. The N 2 O flux in the fertilization treatments was significantly lower than in the control but differed among the treatments. Plant biomass and root nonstructural carbohydrates increased significantly in P1 and P2.5, and plants increased root carbon allocation and recruited more microbes and greatly increased the nitrogen mineralization rate. This symbiotic plant–microbe association promoted plant water uptake , and soil drying increases the abundance of amoA functional gene, thereby promoting nitrification and reducing N 2 O emission. Plants obtained more nutrients associated with an increase in the number of root tips and carboxylate exudation in P5 and P12.5. This self-reliance strategy increased nutrient competition, and the resulting substantial reduction of microbial biomass decreased the N 2 O flux....