Sediment arsenic remediation by submerged macrophytes via root-released O2 and microbe-mediated arsenic biotransformation

根际 环境化学 水生植物 环境修复 生物转化 化学 薯蓣 生物利用度 沉积物 水生植物 污染 生态学 生物 生物化学 有机化学 生物信息学 遗传学 古生物学 细菌
作者
Li Cai,Shiming Ding,Xin Ma,Yan Wang,Qiang Sun,Zhimei Zhong,Musong Chen,Xianfang Fan
出处
期刊:Journal of Hazardous Materials [Elsevier]
卷期号:449: 131006-131006 被引量:3
标识
DOI:10.1016/j.jhazmat.2023.131006
摘要

Arsenic (As)-contaminated water restoration is extremely challenging because As remobilization from sediments can result in episodic or long-term release of As to the overlying water. In this study, by combining high-resolution imaging techniques with microbial community profiling, we examined the feasibility of utilizing the rhizoremediation of submerged macrophytes (Potamogeton crispus) to decrease As bioavailability and regulate its biotransformation in sediments. Results showed that P. crispus considerably decreased the rhizospheric labile As flux to lower than 4 pg cm-2 s-1 from larger than 7 pg cm-2 s-1, suggesting its effectiveness in promoting As retention in sediments. Iron plaques induced by radial oxygen loss from roots decreased the mobility of As by sequestering it. Additionally, Mn-oxides may act as an oxidizer for the oxidation of As(III) to As(V) in the rhizosphere, which can further increase the As adsorption owing to the strong binding affinity between As(V) and Fe-oxides. Furthermore, microbially mediated As oxidation and methylation were intensified in the microoxic rhizosphere, which decreased the mobility and toxicity of As by changing its speciation. Our study demonstrated that root-driven abiotic and biotic transformation contribute to As retention in sediments, which lays a foundation for applying macrophytes to the remediation of As-contaminated sediments.
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