芒
矿化(土壤科学)
根际
环境化学
氮气循环
硝化作用
化学
微生物种群生物学
营养循环
生态系统
细菌
环境科学
土壤水分
生态学
氮气
芒属
生物
可再生能源
有机化学
生物能源
遗传学
作者
Yu Huang,Xiafei Zheng,Wanlin Weng,Xizhe Yan,Pubo Chen,Xingyu Liu,Tao Peng,Qiuping Zhong,Kui Xu,Cheng Wang,Longfei Shu,Tony Yang,Fanshu Xiao,Zhili He,Qingyun Yan
标识
DOI:10.1016/j.jhazmat.2021.125094
摘要
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.
科研通智能强力驱动
Strongly Powered by AbleSci AI