Zhejiang Provincial Key laboratory of Soil Contamination Bioremediation, School of Environment and Resources, Zhejiang Agriculture and Forestry University, Hangzhou 311300, China.
School of Advanced Agricultural Sciences, Zhejiang Agriculture and Forestry University, Hangzhou 311300, China.
J Hazard Mater. 2023 Jul 5;453:131391. doi: 10.1016/j.jhazmat.2023.131391. Epub 2023 Apr 8.
Microplastics (MPs) contamination in soils seriously threatens agroecosystems globally. However, very few studies have been done on the effects of MPs on the soil nitrogen cycle and related functional microorganisms. To assess MP's impact on the soil nitrogen cycle and related functional bacteria, we carried out a one-month soil incubation experiment using typical acidic soil. The soil was amended with alfalfa meal and was spiked with 1% and 5% (mass percentage) of low-density polyethylene (LDPE) and polyvinyl chloride (PVC) MPs. Our results showed that both LDPE and PVC addition significantly increased soil nitrification rate and nitrate reductase activity, which could further promote soil denitrification. The relative abundance of diazotrophs, ammonium oxidizing, and denitrifying bacterial groups were significantly altered with MPs addition. Moreover, the MPs treatments greatly enhanced denitrifying bacteria richness. Redundancy analysis showed that nitrate reductase activity was the most significant factor affecting the soil functional bacterial community. Correlation analysis shows that Nitrosospira genus might be for the improvement of soil nitrification rate. Our results implied that MPs exposure could significantly affect the soil nitrogen cycling in farmland ecosystems by influencing essential nitrogen functional microorganisms and related enzymatic activities.
土壤中的微塑料(MPs)污染严重威胁着全球农业生态系统。然而,关于 MPs 对土壤氮循环及相关功能微生物的影响的研究却很少。为了评估 MPs 对土壤氮循环和相关功能细菌的影响,我们使用典型的酸性土壤进行了为期一个月的土壤培养实验。土壤中添加了紫花苜蓿粉,并添加了 1%和 5%(质量百分比)的低密度聚乙烯(LDPE)和聚氯乙烯(PVC) MPs。我们的结果表明,LDPE 和 PVC 的添加均显著增加了土壤硝化速率和硝酸盐还原酶活性,从而进一步促进了土壤反硝化作用。添加 MPs 后,固氮菌、氨氧化菌和反硝化细菌菌群的相对丰度发生了显著变化。此外, MPs 处理极大地增加了反硝化细菌的丰富度。冗余分析表明,硝酸盐还原酶活性是影响土壤功能细菌群落的最主要因素。相关分析表明,亚硝化单胞菌属可能是提高土壤硝化速率的原因。我们的结果表明, MPs 的暴露可能通过影响重要的氮功能微生物和相关酶活性,显著影响农田生态系统的土壤氮循环。