The characterization of arsenic biotransformation microbes in paddy soil after straw biochar and straw amendments

生物炭 稻草 亚砷酸盐 砷酸盐 化学 环境化学 末端限制性片段长度多态性 地杆菌 微生物 农学 根际 细菌 生物 热解 限制性片段长度多态性 有机化学 基因 生物膜 遗传学 生物化学 聚合酶链反应
作者
Yuping Yang,Xianjin Tang,Hongmei Zhang,Wangda Cheng,Guilan Duan,Yong‐Guan Zhu
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:391: 122200-122200 被引量:51
标识
DOI:10.1016/j.jhazmat.2020.122200
摘要

Straw biochar and straw application to paddy soil dramatically altered arsenic (As) biogeochemical cycling in soil-rice system, but it remains unknown how As biotransformation microbes (ABMs) contribute to these processes. In this study, rice pot experiments combining terminal restriction fragment length polymorphism (T-RFLP) analysis and clone library were performed to characterize ABMs. Through linear discriminant analysis (LDA) effect size (LEfSe) and correlation analysis, results revealed that arrA-harbouring iron-reducing bacteria (e.g., Geobacter and Shewanella) and arsC-harbouring Gammaproteobacteria (e.g., fermentative hydrogen-producing and lignin-degrading microorganisms) potentially mediated arsenate [As(V)] reduction under biochar and straw amendments, respectively. Methanogens and sulfate-reducing bacteria (SRB) carrying arsM gene might regulate methylated As concentration in soil-rice system. Network analysis demonstrated that the association among ABMs in rhizosphere was significantly stronger than that in bulk soil. Arsenite [As(III)] methylators carrying arsM gene exhibited much stronger co-occurrence pattern with arsC-harbouring As(V) reducers than with arrA-harbouring As(V) reducers. This study would broaden our insights for the dramatic variation of As biogeochemical cycling in soil-rice system after straw biochar and straw amendments through the activities of ABMs, which could contribute to the safe rice production and high rice yield in As-contaminated fields.
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