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综合微生物活性和同位素分析揭示了氧化锌纳米颗粒对农业土壤中秸秆分解的影响。

Integrated microbial activities and isotope analysis unveil the effects of zinc oxide nanoparticles on straw decomposition in agricultural soil.

作者信息

Zhang Jiahui, Yang Baoshan, Wang Hui, Dong Jinhao, Zhao Xiaoxia, Gao Yongchao, Jiang Hao

机构信息

School of Water Conservancy and Environment, University of Jinan, Jinan 250022, China.

School of Water Conservancy and Environment, University of Jinan, Jinan 250022, China; Shandong Provincial Engineering Technology Research Center for Ecological Carbon Sink and Capture Utilization, Jinan 250022, China.

出版信息

Sci Total Environ. 2024 Dec 20;957:177460. doi: 10.1016/j.scitotenv.2024.177460. Epub 2024 Nov 16.

Abstract

Zinc oxide nanoparticles (ZnONPs) are widely applied across multiple industries and ultimately accumulate in water and soil environments, raising significant concern about their toxicity to organisms in various ecosystems. While the effects of ZnONPs on microflora have been reported, their ecotoxicity to specific biogeochemical process and microbial activities and metabolic functions remains relatively unclear. In this study, a 56-day microcosmic experiment was conducted to explore the toxicity mechanism of ZnONPs (1000 mg kg soil) on straw decomposition, soil organic carbon (SOC) mineralization, and changes in microbial activities and functions in agricultural soil with general wheat straw incorporation using the C isotope tracer technique. The results demonstrated that straw incorporation increased the rate of CO emission and promoted the straw decomposition. However, the presence of ZnONPs reduced the CO release rates during incubation period although the rates were still higher than those under the control due to straw incorporation. CO emissions from straw decomposition were dominant before the 7th day of incubation. After day 7, CO emissions from the mineralization of original SOC became dominant with their contribution increasing from 17.52 % on day 7 to 60.20 % on day 56 under straw incorporation. ZnONPs affected soil carbon composition and straw decomposition by inhibiting enzyme activity and reducing the abundance of functional genes, indirectly impacting CO release. Community Level Physiological Profiles (CLPP) showed ZnONPs reduced functional richness indices, including Shannon-Weiner index (H) and McIntosh index (U), and altered C substrate utilization patterns. This may be due to the direct toxicity of zinc ion (Zn) released by ZnONPs to the soil bacterial community. The findings provide insights into the toxicity effects of emerging contaminants on carbon transformation from straw and SOC. Further investigations involving metabolomics are required to reveal the essential effects of ZnONPs on biogeochemical cycle of elements in agricultural soil.

摘要

氧化锌纳米颗粒(ZnONPs)广泛应用于多个行业,最终在水和土壤环境中积累,引发了人们对其对各种生态系统中生物体毒性的严重担忧。虽然已经报道了ZnONPs对微生物群落的影响,但其对特定生物地球化学过程、微生物活性和代谢功能的生态毒性仍相对不清楚。在本研究中,进行了一项为期56天的微观实验,利用碳同位素示踪技术,探讨了ZnONPs(1000毫克/千克土壤)对普通小麦秸秆添加的农业土壤中秸秆分解、土壤有机碳(SOC)矿化以及微生物活性和功能变化的毒性机制。结果表明,添加秸秆提高了CO排放速率并促进了秸秆分解。然而,ZnONPs的存在降低了培养期间的CO释放速率,尽管由于添加秸秆,该速率仍高于对照处理。在培养第7天之前,秸秆分解产生的CO排放占主导地位。第7天之后,原始SOC矿化产生的CO排占主导地位,其贡献从添加秸秆条件下第7天的17.52%增加到第56天的60.20%。ZnONPs通过抑制酶活性和降低功能基因丰度影响土壤碳组成和秸秆分解,间接影响CO释放。群落水平生理图谱(CLPP)显示,ZnONPs降低了功能丰富度指数,包括香农-韦纳指数(H)和麦金托什指数(U),并改变了碳底物利用模式。这可能是由于ZnONPs释放的锌离子(Zn)对土壤细菌群落的直接毒性。这些发现为新兴污染物对秸秆和SOC碳转化的毒性效应提供了见解。需要进一步开展涉及代谢组学的研究,以揭示ZnONPs对农业土壤中元素生物地球化学循环的本质影响。

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