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砷锑复合污染对芒草根际土壤细菌、古菌和真菌群落的协同效应:对硝化和碳矿化的启示。

Synergistic effects of antimony and arsenic contaminations on bacterial, archaeal and fungal communities in the rhizosphere of Miscanthus sinensis: Insights for nitrification and carbon mineralization.

机构信息

Environmental Microbiomics Research Center, School of Environmental Science and Engineering, Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Sun Yat-sen University, Guangzhou 510006, China.

Swift Current Research and Development Centre, Agriculture and Agri-Food Canada, Swift Current, SK S9H 3X2, Canada.

出版信息

J Hazard Mater. 2021 Jun 5;411:125094. doi: 10.1016/j.jhazmat.2021.125094. Epub 2021 Jan 12.

Abstract

The impacts of metal(loids) on soil microbial communities are research focuses to understand nutrient cycling in heavy metal-contaminated environments. However, how antimony (Sb) and arsenic (As) contaminations synergistically affect microbially-driven ecological processes in the rhizosphere of plants is poorly understood. Here we examined the synergistic effects of Sb and As contaminations on bacterial, archaeal and fungal communities in the rhizosphere of a pioneer plant (Miscanthus sinensis) by focusing on soil carbon and nitrogen cycle. High contamination (HC) soils showed significantly lower levels of soil enzymatic activities, carbon mineralization and nitrification potential than low contamination (LC) environments. Multivariate analysis indicated that Sb and As fractions, pH and available phosphorus (AP) were the main factors affecting the structure and assembly of microbial communities, while Sb and As contaminations reduced the microbial alpha-diversity and interspecific interactions. Random forest analysis showed that microbial keystone taxa provided better predictions for soil carbon mineralization and nitrification under Sb and As contaminations. Partial least squares path modeling indicated that Sb and As contaminations could reduce the carbon mineralization and nitrification by influencing the microbial biomass, alpha-diversity and soil enzyme activities. This study enhances our understanding of microbial carbon and nitrogen cycling affected by Sb and As contaminations.

摘要

金属(类)对土壤微生物群落的影响是研究的重点,目的是了解重金属污染环境中的养分循环。然而,锑 (Sb) 和砷 (As) 污染如何协同影响植物根际中微生物驱动的生态过程还知之甚少。在这里,我们通过关注土壤碳氮循环,研究了 Sb 和 As 污染对先锋植物(芒属植物)根际细菌、古菌和真菌群落的协同效应。高污染 (HC) 土壤的土壤酶活性、碳矿化和硝化潜能明显低于低污染 (LC) 环境。多元分析表明,Sb 和 As 形态、pH 值和有效磷 (AP) 是影响微生物群落结构和组装的主要因素,而 Sb 和 As 污染降低了微生物的α多样性和种间相互作用。随机森林分析表明,在 Sb 和 As 污染下,微生物关键类群可以更好地预测土壤碳矿化和硝化作用。偏最小二乘路径模型表明,Sb 和 As 污染可以通过影响微生物生物量、α多样性和土壤酶活性来降低碳矿化和硝化作用。本研究增进了我们对 Sb 和 As 污染影响下微生物碳氮循环的理解。

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