环境修复
化学
环境化学
砷
戒毒(替代医学)
生物修复
污染物
微生物降解
危险废物
降级(电信)
腐植酸
土壤污染
地下水修复
微生物种群生物学
生物强化
生物降解
生物转化
枯草芽孢杆菌
人体净化
土壤修复
废物管理
污染
异型生物质的
有害空气污染物
微生物代谢
作者
Xiaomin Yang,JI Xiao-hui,Chen Li,Sheng-rui Zhang,Jin-long Lai,Yu Zhang,Xue-gang Luo
标识
DOI:10.1021/acs.est.6c02129
摘要
The organic arsenic compounds diphenylarsonic acid (DPAA) and phenylarsonic acid (PAA) are pervasive and hazardous soil pollutants. To address this, we constructed a remediation system by first screening and combining two functional bacteria: Bacillus subtilis and Bacillus cereus . This synthetic consortium rapidly degraded DPAA and PAA within 24 h, primarily through the cleavage of arsenic–carbon bonds and aromatic rings, facilitated by specific enzymes (ArsI and ring-opening dioxygenase). Concurrently, we employed alfalfa, a plant capable of efficiently absorbing inorganic arsenic released during microbial degradation. This plant–microbe system, tested over 60 days in contaminated soil, successfully removed both organic pollutants and the derived inorganic arsenic. Multiomics analyses confirmed that the remediation process beneficially restructured the soil environment, stimulating microbial activity and key metabolic functions and reducing potential risks like antibiotic resistance genes. This integrated strategy, verified through multiomics to drive beneficial soil ecosystem restructuring, provides a novel and mechanistically informed approach for the sustainable cleanup of complex organoarsenical contamination.
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