Xiang Yangzhou, Peñuelas Josep, Sardans Jordi, Liu Ying, Yao Bin, Li Yuan
School of Geography and Resources, Guizhou Education University, Guiyang 550018, China.
CSIC Global Ecology Unit, CREAF-CSIC-UAB, 08193 Bellaterra, Catalonia, Spain; CREAF - Ecological and Forestry Applications Research Centre, 08193 Cerdanyola del Vallès, Catalonia, Spain.
J Hazard Mater. 2023 Oct 15;460:132514. doi: 10.1016/j.jhazmat.2023.132514. Epub 2023 Sep 9.
Microplastics, a growing environmental concern, impact soil inorganic nitrogen (N) transformation, specifically affecting water-extractable nitrate N (NO-N) and ammonium N (NH-N). However, inconsistencies among relevant findings necessitate a systematic analysis. Accordingly, the present meta-analysis addresses these discrepancies by evaluating the effects of microplastics on soil inorganic N and identifying key influencing factors. Our meta-analysis of 216 paired observations from 47 studies demonstrates microplastics exposure causes an overall significant reduction of 7.89% in soil NO-N concentration, but has no significant impact on NH-N concentration. Subgroup analysis further revealed effects of microplastics on soil inorganic N were modulated by microplastics characteristics, experimental conditions (exposure time, experimental temperature, plant effects), and soil properties (soil texture, initial soil pH, initial soil organic carbon, soil total N concentration). We found that microplastics exposure above 27 ℃ enhances soil NO-N concentration, a finding linked to specific soil properties and conditions, underscoring the impacts of global warming. Importantly, the microplastics polymer type was the most influential predictor of effects on soil NO-N concentration, while soil NH-N concentration was primarily affected by soil texture and microplastics type. These findings illuminate the complex effects of microplastics on soil inorganic N, informing soil management amid increasing microplastics pollution.
微塑料是一个日益引起环境关注的问题,它会影响土壤无机氮(N)的转化,尤其会影响水溶态硝态氮(NO-N)和铵态氮(NH-N)。然而,相关研究结果存在不一致性,因此有必要进行系统分析。据此,本荟萃分析通过评估微塑料对土壤无机氮的影响并确定关键影响因素,来解决这些差异。我们对47项研究中的216对观测数据进行的荟萃分析表明,微塑料暴露导致土壤NO-N浓度总体显著降低7.89%,但对NH-N浓度没有显著影响。亚组分析进一步揭示,微塑料对土壤无机氮的影响受到微塑料特性、实验条件(暴露时间、实验温度、植物影响)和土壤性质(土壤质地、初始土壤pH值、初始土壤有机碳、土壤总氮浓度)的调节。我们发现,27℃以上的微塑料暴露会提高土壤NO-N浓度,这一发现与特定的土壤性质和条件有关,凸显了全球变暖的影响。重要的是,微塑料聚合物类型是对土壤NO-N浓度影响最具影响力的预测因子,而土壤NH-N浓度主要受土壤质地和微塑料类型的影响。这些发现阐明了微塑料对土壤无机氮的复杂影响,为微塑料污染日益增加的情况下的土壤管理提供了参考。