环境科学
环境修复
冶炼
微生物种群生物学
土壤水分
土壤污染
土壤生态学
生物量(生态学)
生态学
生态系统
环境化学
土壤生物多样性
土壤科学
土壤有机质
污染
生物
化学
有机化学
遗传学
细菌
作者
Wenshun Ke,Chuxuan Li,Feng Zhu,Xinghua Luo,Jingpei Feng,Xue Li,Yifan Jiang,Chuan Wu,William Hartley,Shengguo Xue
标识
DOI:10.1016/j.jhazmat.2023.131525
摘要
Contaminated soil at smelting sites affects land utilization and environmental regulation, resulting in soil degradation. However, the extent to which potentially toxic elements (PTEs) contribute to site soil degradation and the relationship between soil multifunctionality and microbial diversity in the process remains poorly understood. In this study, we investigated changes in soil multifunctionality and the correlation between soil multifunctionality and microbial diversity under the influence of PTEs. The change in microbial community diversity was closely related to changes in soil multifunctionality caused by PTEs. Microbial diversity, not richness, drives the delivery of ecosystem services in smelting site PTEs-stressed environments. Structural equation modeling identified that soil contamination, microbial taxonomic profile and microbial functional profile could explain 70% of the variance in soil multifunctionality. Furthermore, our findings demonstrate that PTEs limit soil multifunctionality by affecting soil microbial communities and functionality, whilst the positive effect of microorganisms on soil multifunctionality was mainly driven by the fungal diversity and biomass. Finally, specific fungal genera closely related to soil multifunctionality were identified, with saprophytic fungi being particularly important for maintaining multiple soil functions. The results of the study provide potential guidance for the remediation, pollution control practices and mitigation of degraded soils at smelting sites.
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