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首页> 外文期刊>The Science of the Total Environment >Effect of microbially mediated iron mineral transformation on temporal variation of arsenic in the Pleistocene aquifers of the central Yangtze River basin
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Effect of microbially mediated iron mineral transformation on temporal variation of arsenic in the Pleistocene aquifers of the central Yangtze River basin

机译:微生物介导的铁矿物质转化对长江中游更新世含水层中砷时间变化的影响

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摘要

AbstractSignificant seasonal variation of groundwater arsenic (As) concentrations in shallow aquifers of the Jianghan Plain, central Yangtze River Basin has been reported recently, but the underlying mechanisms remain not well understood. To elaborate biogeochemical processes responsible for the observed As concentration variation, 42-day incubation experiments were done using sediment samples collected respectively from the depth of 26, 36 and 60m of the As-affected aquifer which were labeled respectively as JH26, JH36, JH60. Where JH denotes Jianghan Plain, and the number indicates the depth of the sediment sample. The results indicated that As could be mobilized from the sediments of 26m and 36m depth under the stimulation of exogenous organic carbon, with the maximum As release amount of 1.60 and 1.03mgkg−1, respectively, while the sediments at 60m depth did not show As mobilization. The microbially mediated reductive dissolution of amorphous iron oxides and reduction of As(V) to As(III) could account for the observed As mobilization. The 16S rRNA high-throughput sequencing results indicated that the variation of microbial community correlated with the released As concentration (R=0.7,P<0.05) and the iron-reducing bacteria, includingPseudomonas,ClostridiumandGeobacter, were the main drivers for the As mobilization from the sediments at 26m and 36m depth. The increase ofarsCgene abundance (up to 1.4×105copies g−1) during As release suggested that As reduction was mediated by the resistant reduction mechanism. By contrast, in the 60m sediments where the Fe and As release was absent, the iron-reducing bacteria accounted for a very minor proportion and sulfate-reducing bacteria were predominant in the microbial community. In addition, after 30days of incubation, the released As in the 26m sediments was immobilized via co-precipitation with or adsorption onto the Fe-sulfide mineral newly-formed by the bacterial sulfate reduction. These results are consistent with the results of our previous field monitoring, indicating that the bacterial sulfate reduction could lead to the temporal decrease in groundwater As concentrations. This study provides insights into the mechanism for As mobilization and seasonal As concentration variation in the Pleistocene aquifers from alluvial plains.Graphical abstractDisplay OmittedHighlightsBacterial sulfate reduction could contribute to the seasonal variation of groundwater As.Iron-reducing bacteria are the main drivers for As mobilization in the Pleistocene aquifer.Arsenic release depends on the Fe mineralogy and microbial community in the aquifer sediments.
机译: 摘要 最近已经报道了长江中游江汉平原浅层含水层中地下水砷(As)浓度的明显季节性变化,但潜在的机制仍未得到很好的理解。为了详细说明造成所观察到的砷浓度变化的生物地球化学过程,使用分别从受影响的含水层26、36和60m的深度收集的沉积物样品进行了42天的温育实验,这些样品分别标记为JH26,JH36,JH60。 JH表示江汉平原,数字表示沉积物样品的深度。结果表明,在外源有机碳的刺激下,As可以从26m和36m深度的沉积物中动员,最大As释放量为1.60和1.03mgkg -1 ,而60m深度的沉积物未显示出As动员。微生物介导的无定形氧化铁的还原溶解和As(V)还原为As(III)可以解释观察到的As迁移。 16S rRNA高通量测序结果表明,微生物群落的变化与释放的砷浓度相关( R = 0.7, P < 0.05)和还原铁细菌,包括假单胞菌梭状芽孢杆菌古细菌从26m和36m深度的沉积物中动员砷的主要驱动力。 arsC 基因丰度的增加(最多1.4×10 5 复制g -1 )在As释放期间表明As的还原是由抗性还原机制介导的。相比之下,在60m沉积物中,Fe和As的释放不充分,还原铁细菌占很小的比例,而硫酸盐还原细菌在微生物群落中占主导地位。此外,在孵育30天后,通过与细菌硫酸盐还原新形成的Fe-硫化物矿物共沉淀或吸附在26m沉积物中释放的As被固定。这些结果与我们之前的现场监测结果一致,表明细菌硫酸盐的减少可能导致地下水As浓度的暂时下降。这项研究为冲积平原更新世含水层中的砷动员和季节性砷浓度变化的机理提供了见解。 图形摘要 省略显示 突出显示 硫酸盐还原可能会造成危害 还原铁细菌是更新世含水层中As迁移的主要驱动力。 砷的释放取决于含水层沉积物中的Fe矿物学和微生物群落。

著录项

  • 来源
    《The Science of the Total Environment》 |2018年第1期|1247-1258|共12页
  • 作者单位

    Geological Survey, China University of Geosciences,State Key Laboratory of Biogeology and Environmental Geology, China University of Geosciences;

    Geological Survey, China University of Geosciences;

    State Key Laboratory of Biogeology and Environmental Geology, China University of Geosciences,School of Environmental Studies, China University of Geosciences;

    Geological Survey, China University of Geosciences;

    State Key Laboratory of Biogeology and Environmental Geology, China University of Geosciences;

    State Key Laboratory of Biogeology and Environmental Geology, China University of Geosciences,School of Environmental Studies, China University of Geosciences;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Arsenic mobilization; Temporal variation; Iron mineral transformation; Sulfate reduction; Groundwater; Jianghan plain;

    机译:砷动员;时间变化;铁矿物转化;硫酸盐还原;地下水;江汉平原;

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