放线菌门
土壤生物学
环境化学
微生物种群生物学
化学
黄杆菌
土壤微生物学
微生物
蚯蚓
土壤生态学
代谢物
生态系统
细菌
土壤有机质
土壤水分
生态学
生物
生物化学
土壤生物多样性
基因
遗传学
16S核糖体RNA
假单胞菌
作者
Wenxing Li,Peihua Zhang,Hao Qiu,Cornelis A.M. van Gestel,Willie J.G.M. Peijnenburg,Xinde Cao,Ling Zhao,Xiaoyun Xu,Erkai He
标识
DOI:10.1021/acs.est.1c06592
摘要
Soil ecotoxicological assays on nanoparticles (NPs) have mainly investigated single components (e.g., plants, fauna, and microbes) within the ecosystem, neglecting possible effects resulting from the disturbance of the interactions between these components. Here, we investigated soil microbial responses to CeO2 NPs in the presence and absence of earthworms from the perspectives of microbial functions (i.e., enzyme activities), the community structure, and soil metabolite profiles. Exposure to CeO2 NPs (50, 500 mg/kg) alone decreased the activities of enzymes (i.e., acid protease and acid phosphatase) participating in soil N and P cycles, while the presence of earthworms ameliorated these inhibitory effects. After the CeO2 NP exposure, the earthworms significantly altered the relative abundance of some microbes associated with the soil N and P cycles (Flavobacterium, Pedobacter, Streptomyces, Bacillus, Bacteroidota, Actinobacteria, and Firmicutes). This was consistent with the pattern found in the significantly changed metabolites which were also involved in the microbial N and P metabolism. Both CeO2 NPs and earthworms changed the soil bacterial community and soil metabolite profiles. Larger alterations of soil bacteria and metabolites were found under CeO2 NP exposure with earthworms. Overall, our study indicates that the top-down control of earthworms can drastically modify the microbial responses to CeO2 NPs from all studied biological aspects. This clearly shows the importance of the holistic consideration of all soil ecological components to assess the environmental risks of NPs to soil health.
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