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The Science of the total environment. 2025 Feb 14:967:178841. doi: 10.1016/j.scitotenv.2025.178841 Q18.22024

District ammonium-to-nitrate ratios change soil N dynamics and shape inverse patterns of resource acquisition strategy and biomass production of four urban greening trees

不同区域的铵硝态氮比变化影响土壤氮素动态并改变四种城市绿化树种资源获取策略及生物量产生的逆向格局 翻译改进

Qinze Zhang  1, Binyue Kang  2, Jiaxu Li  2, Yuanli Ning  2, Jiyou Zhu  2, Hongyuan Li  3

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作者单位

  • 1 College of Environmental Science and Engineering, Nankai University, Tianjin 300350, China; Institute of Ecology, College of Urban and Environmental Sciences, Peking University, Beijing, China.
  • 2 College of Environmental Science and Engineering, Nankai University, Tianjin 300350, China.
  • 3 College of Environmental Science and Engineering, Nankai University, Tianjin 300350, China. Electronic address: hongyuan@nankai.edu.cn.
  • DOI: 10.1016/j.scitotenv.2025.178841 PMID: 39954478

    摘要 Ai翻译

    Ammonium nitrogen (NH4+) and nitrate nitrogen (NO3-), the primary soil accessible nitrogen (N) forms for most plants, can affect plant ecophysiology and biomass production in different ways. Plants typically exhibit varying capacities for uptake and assimilation of the two N forms, leading to differences in the ecological strategies and niches within ecosystem. Recently, variations in atmospheric NH4+/NO3- deposition have severely threatened plant growth and ecosystem functions, especially in urban green spaces. Therefore, a pot experiment was carried out to explore the response of four common urban greening tree species (Pinus tabulaeformnis, Juniperus chinensis, Fraxinus chinensis, Sophora japonica) in North China, to five NH4+/NO3- addition treatments. Our results indicated that trees could adapt to varying soil N environments by modifying their resource acquisition strategies and biomass production, where the response patterns depended on the species specificity. High NH4+/NO3- addition increased soil urease activity and NH4+/NO3- ratios planted to coniferous trees, enhancing the plant fast traits highly coordinated across different organs, which promoted the plant growth. While broadleaved tree species exhibited stronger plasticity under NO3--rich conditions. Reduced NH4+/NO3- ratios increased soil NO3- and available phosphorus availability, improving their resource acquisition capacity and root nitrate reductase activity, which favored NO3- utilization and biomass production. Overall, this study highlights the importance of plant resource acquisition strategy in driving the responses of biomass production to soil N dynamic changes and puts forward a new growth strategy for urban greening tree species in the plant-soil feedback system.

    Keywords: / ratio; Biomass production; Resource acquisition strategy; Soil N dynamics; Trait synergy.

    Keywords:soil N dynamics; ammonium-to-nitrate ratios; resource acquisition strategy; biomass production; urban greening trees

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    期刊名:Science of the total environment

    缩写:SCI TOTAL ENVIRON

    ISSN:0048-9697

    e-ISSN:1879-1026

    IF/分区:8.2/Q1

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    District ammonium-to-nitrate ratios change soil N dynamics and shape inverse patterns of resource acquisition strategy and biomass production of four urban greening trees