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Temporal evolution of bacterial communities associated with the in situ wetland-based remediation of a marine shore porphyry copper tailings deposit

机译:与海洋岸斑岩铜尾矿沉积物的就地湿地修复相关的细菌群落的时间演变

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摘要

Mine tailings are a serious threat to the environment and public health. Remediation of these residues can be carried out effectively by the activation of specific microbial processes. This article presents detailed information about temporal changes in bacterial community composition during the remediation of a section of porphyry copper tailings deposited on the Bahia de Ite shoreline (Peru). An experimental remediation cell was flooded and transformed into a wetland in order to prevent oxidation processes, immobilizing metals. Initially, the top oxidation zone of the tailings deposit displayed a low pH (3.1) and high concentrations of metals, sulfate, and chloride, in a sandy grain size geological matrix. This habitat was dominated by sulfur- and iron-oxidizing bacteria, such as Leptospirillum spp., Acidithiobacillus spp., and Sulfobacillus spp., in a microbial community which structure resembled acid mine drainage environments. After wetland implementation, the cell was water-saturated, the acidity was consumed and metals dropped to a fraction of their initial respective concentrations. Bacterial communities analyzed by massive sequencing showed time-dependent changes both in composition and cell numbers. The final remediation stage was characterized by the highest bacterial diversity and evenness. Aside from classical sulfate reducers from the phyla δ-Proteobacteria and Firmicutes, community structure comprised taxa derived from very diverse habitats. The community was also characterized by an elevated proportion of rare phyla and unaffiliated sequences. Numerical ecology analysis confirmed that the temporal population evolution was driven by pH, redox, and K. Results of this study demonstrated the usefulness of a detailed follow-up of the remediation process, not only for the elucidation of the communities gradually switching from autotrophic, oxidizing to heterotrophic and reducing living conditions, but also for the long term management of the remediation wetlands.
机译:矿山尾矿对环境和公众健康构成严重威胁。这些残基的修复可通过激活特定的微生物过程来有效地进行。本文介绍了在修复巴伊亚德伊特海岸线(Peru)上的斑岩铜尾矿的修复过程中细菌群落组成随时间变化的详细信息。实验性修复池被淹没并转变成湿地,以防止氧化过程固定金属。最初,在砂粒状地质基质中,尾矿床的顶部氧化区显示出低pH(3.1)和高浓度的金属,硫酸盐和氯化物。在一个类似于酸性矿山排水环境的微生物群落中,该生境被硫和铁氧化细菌(如钩端螺旋体属,酸性硫杆菌属和硫杆菌属)所控制。实施湿地后,电解池被水饱和,酸度被消耗,金属降至其初始浓度的一小部分。通过大量测序分析的细菌群落显示出时间和组成随细胞数量的变化。最终修复阶段的特征是最高的细菌多样性和均匀性。除了来自δ-Proteobacteria和Firmicutes的经典硫酸盐还原剂外,群落结构还包括来自非常不同的生境的类群。该社区的特征还在于稀有门和非附属序列的比例增加。数值生态学分析证实,临时种群的进化受pH,氧化还原和K的驱动。这项研究的结果表明,对整治过程进行详细的跟踪是有用的,不仅可以用于阐明逐渐从自养,氧化成异养生物并减少生活条件,也可用于治理湿地的长期管理。

著录项

  • 来源
    《The Science of the Total Environment》 |2015年第15期|110-121|共12页
  • 作者单位

    University of Lausanne, Institute of Mineralogy and Geochemistry, Anthropole, Lausanne, Switzerland,Laboratoire de Traitement des Eaux usees, Institut Fondamental d'Afrique Noire (IFAN), Universite Cheikh Anta Diop, BP 206 Dakar, Senegal;

    University of Lausanne, Institute of Mineralogy and Geochemistry, Anthropole, Lausanne, Switzerland,SUMIRCO (Sustainable Mining Research & Consultancy EIRL). Casilla 28, San Pedro de la Paz 4130000, Chile;

    Ecole Polytechnique Federale de Lausanne (EPFL), School of Architecture, Civil and Environmental Engineering, Laboratory for Environmental Biotechnology, Lausanne, Switzerland;

    Ecole Polytechnique Federale de Lausanne (EPFL), School of Architecture, Civil and Environmental Engineering, Laboratory for Environmental Biotechnology, Lausanne, Switzerland;

    Ecole Polytechnique Federale de Lausanne (EPFL), School of Architecture, Civil and Environmental Engineering, Central Environmental Laboratory, Lausanne, Switzerland;

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

    Acid mine drainage; Remediation; Wetland; Marine shore deposit; Leptospirillum; Acidithiobacillus;

    机译:酸性矿山排水;补救措施;湿地海洋海岸沉积物;钩端螺旋体酸性硫杆菌;

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