土壤碳
环境科学
土壤食物网
土壤生物多样性
土壤水分
土壤生物学
生态系统
土壤功能
农学
土壤有机质
丰度(生态学)
生态学
土壤生态学
营养循环
土壤科学
自行车
陆地生态系统
土壤肥力
生物多样性
营养水平
土壤健康
土壤化学
土壤质量
免耕农业
土壤管理
土壤pH值
土工试验
大块土
土壤退化
土壤质地
生物
土壤酸化
农业土壤学
碳循环
营养物
土壤学
土壤结构
土壤分类
作者
Shuqi Wu,Tangqing He,Zhengkun Hu,Mingqi Li,X E Wang,Yexin Zhao,Xinxin Cao,Qiulai Song,Di Wu,Qingsong Shen,P C Zhang,Liming Tian,Tserang Donko Mipam,Yi Zhang,Zhenping Gong,Chao Yan,Yunpeng Qiu,Shuijin Hu
摘要
Human activities have dramatically increased nitrogen (N) inputs to terrestrial ecosystems, with cascading effects on soil biodiversity and function. Soil nematodes, the most abundant animals on Earth, play critical roles in nutrient cycling and ecosystem health. Although numerous studies have examined N effects on soil nematodes, crucial knowledge gaps remain regarding how these varying responses depend on fundamental soil properties like organic carbon (C) content and soil acidity, particularly across soils with contrasting baseline properties under identical fertilization regimes. Through a long-term field experiment with soils differing in organic C contents, here we show that baseline soil conditions strongly affect the effects of N enrichment on soil nematode communities. Specifically, N addition increased nematode abundance in C-rich soils, while significantly reducing it in C-poor soils through inducing soil acidification. Soil pH emerged as a critical filter regulating nematode responses to N enrichment, determining which trophic groups thrived or declined and thereby reshaping soil C cycling pathways. Results from a global meta-analysis further reveal that nematode abundance exhibited a hump-shaped relationship with soil pH, peaking at 5.9-6.0, while increasing monotonically with SOC. Together, our results demonstrate that local soil properties mediate N impacts on soil food webs more strongly than N input alone. By linking N inputs with nematode community shifts through measurable soil properties, our work provides a framework for predicting how global changes might alter belowground ecosystems. This knowledge is crucial for developing sustainable agricultural practices that maintain soil biodiversity while meeting crop production demands.
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