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探究传统和可生物降解微塑料对不同土壤团聚体中有机碳分解的影响。

Insights into effects of conventional and biodegradable microplastics on organic carbon decomposition in different soil aggregates.

机构信息

College of Environmental Science and Engineering, Beijing Forestry University, Beijing, 100083, China.

Key Laboratory of Ecosystem Network Observation and Modeling, Institute of Geographic Sciences and Natural Resources Research, Chinese Academy of Sciences, A11, Datun Road, Chaoyang District, Beijing, 100101, China.

出版信息

Environ Pollut. 2024 Oct 15;359:124751. doi: 10.1016/j.envpol.2024.124751. Epub 2024 Aug 14.

Abstract

The impacts of microplastics on soil ecological functions such as carbon recycling and soil structure maintenance have been extensively focused. However, the mechanisms underlying the impacts of microplastics on soil carbon transformation and soil microbial community at soil aggregate scale have not been clarified yet. In this work, the effects and action mechanisms of traditional microplastic polypropylene (PP) and degradable microplastic polylactic acid (PLA) on carbon transformation in three sizes of soil aggregates were investigated. The results showed that both PP and PLA promoted CO emission, and the effect depended on the type and content of microplastics, and the size of soil aggregates. Changes in soil carbon stocks were mainly driven by changes in organic carbon associated with macroaggregates. For macroaggregates, PP microplastics decreased soil organic carbon (SOC) as well as dissolved organic carbon (DOC). These changes were reversed in microaggregates and silt and clay. Interestingly, PLA increased the SOC, DOC and CO emissions in bulk soil and all three aggregates with a dose-effect response. These changes were associated with soil microbes, functional genes and enzymes associated with the degradation of labile and recalcitrant carbon fractions. Furthermore, PP and PLA reduced bacterial community diversities and shifted bacterial community structures in both the three aggregates and in bulk soil. Alterations of functional genes induced by microplastics were the key driving factors of their impacts on carbon transformation in soil aggregates. This research opened up a new insight into the mechanisms underlying the impacts of microplastics on soil carbon transformation, and helped us make rational assessments of the risks and the disturbances of microplastics on soil carbon cycling.

摘要

微塑料对土壤生态功能(如碳循环和土壤结构维持)的影响已受到广泛关注。然而,微塑料对土壤碳转化和土壤微生物群落的影响机制在土壤团聚体尺度上尚未阐明。在这项工作中,研究了传统微塑料聚丙烯(PP)和可降解微塑料聚乳酸(PLA)对三种大小土壤团聚体中碳转化的影响及其作用机制。结果表明,PP 和 PLA 均促进了 CO 的排放,其效果取决于微塑料的类型和含量以及土壤团聚体的大小。土壤碳储量的变化主要受与大团聚体相关的有机碳变化的驱动。对于大团聚体,PP 微塑料降低了土壤有机碳(SOC)和溶解有机碳(DOC)。这些变化在微团聚体和粉砂粘土中得到了逆转。有趣的是,PLA 增加了 SOC、DOC 和 CO 在原状土和所有三种团聚体中的排放,呈剂量-效应关系。这些变化与土壤微生物、与易降解和难降解碳组分降解相关的功能基因和酶有关。此外,PP 和 PLA 降低了三种团聚体和原状土中细菌群落的多样性,并改变了其结构。微塑料诱导的功能基因的改变是其对土壤团聚体碳转化影响的关键驱动因素。这项研究为微塑料对土壤碳转化影响的机制提供了新的见解,并有助于我们对微塑料对土壤碳循环的风险和干扰进行合理评估。

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