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亚微米级微塑料通过改变土壤-豆科植物系统中的微生物丰度和活性来影响氮循环。

Sub-micron microplastics affect nitrogen cycling by altering microbial abundance and activities in a soil-legume system.

机构信息

Environmental Exposure & Toxicology Research Center, Korea Institute of Toxicology, 17, Jegok-gil, Jinju 52834, Republic of Korea; Human and Environmental Toxicology Program, University of Science and Technology, 217, Gajeong-ro, Daejeon 34113, Republic of Korea.

Environmental Exposure & Toxicology Research Center, Korea Institute of Toxicology, 17, Jegok-gil, Jinju 52834, Republic of Korea.

出版信息

J Hazard Mater. 2023 Oct 15;460:132504. doi: 10.1016/j.jhazmat.2023.132504. Epub 2023 Sep 7.

Abstract

Recently, the environmental and agricultural impact of plastic waste has attracted considerable attention. Here, we investigated the impact of sub-micron polyethylene (PE) and polypropylene (PP) microplastics (MPs) on nitrogen cycling, with emphasis on bacterial abundance and diversity in a soil-soybean (Glycine max) system. Exposure to soil containing MPs (50 and 500 mg kg) did not affect soybean growth, but significantly increased plant nitrogen uptake, which was confirmed by increased activities of nitrogenase in the soil and glutamine synthetase in soybean root. Additionally, there was an increase in 16S gene copy number and carbon and nitrogen substrate utilization, indicating increased abundance and activity of rhizosphere microbial communities. Moreover, MP contamination affected the taxonomic profile of rhizosphere bacteria, especially the abundance of symbiotic and free-living bacteria involved in nitrogen cycling. Furthermore, qPCR analysis of nitrogen-related genes and Kyoto Encyclopedia of Genes and Genomes analysis of 16S rRNA gene sequencing data revealed an increased abundance of functional genes associated with nitrogen fixation and nitrification. However, the concentration and polymer type of MPs did not have a significant impact in our system. Overall, these results provide insights into the interactions between MPs and rhizosphere bacterial communities in the soil-legume system.

摘要

最近,塑料废物对环境和农业的影响引起了相当大的关注。在这里,我们研究了亚微米级聚乙烯(PE)和聚丙烯(PP)微塑料(MPs)对氮循环的影响,重点关注土壤-大豆(Glycine max)系统中细菌丰度和多样性的变化。暴露于含有 MPs(50 和 500mg/kg)的土壤中不会影响大豆的生长,但会显著增加植物对氮的吸收,这一点通过土壤中固氮酶和大豆根中谷氨酰胺合成酶活性的增加得到了证实。此外,16S 基因拷贝数以及碳和氮底物的利用增加,表明根际微生物群落的丰度和活性增加。此外,MP 污染影响了根际细菌的分类组成,特别是参与氮循环的共生和自由生活细菌的丰度。此外,对氮相关基因的 qPCR 分析和 16S rRNA 基因测序数据的京都基因与基因组百科全书分析表明,与固氮和硝化作用相关的功能基因的丰度增加。然而,在我们的系统中,MPs 的浓度和聚合物类型没有显著影响。总的来说,这些结果提供了对 MPs 和土壤-豆科植物系统中根际细菌群落相互作用的深入了解。

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