Shi Jia, Sun Yuanze, Wang Xiang, Wang Jie
College of Land Science and Technology, China Agricultural University, Beijing, 100193, China.
Beijing Key Laboratory of Farmland Soil Pollution Prevention and Remediation, College of Resources and Environmental Sciences, China Agricultural University, Beijing, 100193, China.
Environ Microbiol. 2022 Apr;24(4):2157-2169. doi: 10.1111/1462-2920.15955. Epub 2022 Mar 10.
Microplastics have been proposed as emerging threats for terrestrial systems as they may potentially alter the physicochemical/biophysical soil environments. Due to the variety of properties of microplastics and soils, the microplastic-induced effects in soil ecosystems are greatly manifold. Here, we studied effects of three polymer microplastics (polyamide-6, polyethylene, and polyethylene terephthalate) on soil properties with four different soil types. The success patterns, interaction relationships, and assembly processes of soil bacterial communities were also studied. Microplastics have the potential to promote CO emissions and enhance the soil humification. Even though microplastics did not significantly alter the diversity and composition of the soil microbial community, the application of microplastics decreased the network complexity and stability, including network size, connectivity, and the number of module and keystone species. The bacterial community assembly was governed by deterministic selection (77.3%-90.9%) in all treatments, while microplastics increased the contribution of stochastic processes from 9.1% in control to 13.6%-22.7%. The neutral model results also indicated most of the bacterial taxa were present in the predicted neutral region (approximately 98%), suggesting the importance of stochastic processes. These findings provided a fundamental insight in understanding the effects of microplastics on soil ecosystems.
微塑料被认为是陆地系统新出现的威胁,因为它们可能会改变土壤的物理化学/生物物理环境。由于微塑料和土壤具有多种特性,微塑料对土壤生态系统的影响极为多样。在此,我们研究了三种聚合物微塑料(聚酰胺-6、聚乙烯和聚对苯二甲酸乙二酯)对四种不同土壤类型土壤性质的影响。我们还研究了土壤细菌群落的成功模式、相互作用关系和组装过程。微塑料有可能促进二氧化碳排放并增强土壤腐殖化。尽管微塑料没有显著改变土壤微生物群落的多样性和组成,但微塑料的施用降低了网络复杂性和稳定性,包括网络大小、连通性以及模块和关键物种的数量。在所有处理中,细菌群落组装受确定性选择控制(77.3%-90.9%),而微塑料使随机过程的贡献从对照中的9.1%增加到13.6%-22.7%。中性模型结果还表明,大多数细菌分类群存在于预测的中性区域(约98%),这表明随机过程的重要性。这些发现为理解微塑料对土壤生态系统的影响提供了基本见解。