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首页> 外文期刊>Water science & technology >Microbial community structure of a slow sand filter schmutzdecke: a phylogenetic snapshot based on rRNA sequence analysis
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Microbial community structure of a slow sand filter schmutzdecke: a phylogenetic snapshot based on rRNA sequence analysis

机译:慢砂滤池schmutzdecke的微生物群落结构:基于rRNA序列分析的系统发育快照

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摘要

Slow sand filters (SSF) are widely used to treat water for potable use. The process is dependent on the activities of complex microbial communities in the biofilm (schmutzdecke) layer, in this study, we generated a comprehensive view of three-domain microbiological complexity within a model SSF. DNA was analysed using a high-density microarray (PhyloChip) and rRNA library analysis. The Eukaryotic community was dominated by Cercozoa (Ebridd-type protists); these are likely to be involved in predation of other organisms in the schmutzdecke layer, thus proving opportunity for successional development. Ciliate protozoa, green microalgae, stramenopiles, amoeboid protozoa and fungi in the Phylum Ascomycota and the deep-branching Chytridiomycota were also detected. The Archaeal community was dominated by Euryarchaeota, and most were Halobacteriales. These organisms may contribute to filter function through removal of dissolved organic carbon, a primary treatment goal of these filters. Given that the Eukaryotic and Archaeal communities were examined using clone libraries, the expected richness of taxa present is expected to be greater than detected here and dependent on sampling effort (library size). The bacterial community was rich in taxa (21 Phyla) but was not dominated by any phylogenetic group. The successful function of SSF's relies on interactions between taxa (e.g. grazing of Cercozoa protists on bacteria), and removal of dissolved organic matter from the influent, understanding the taxa and functions in these systems will aid in monitoring and managing SSF for optimal water quality.
机译:慢砂滤池(SSF)被广泛用于处理饮用水。该过程取决于生物膜(schmutzdecke)层中复杂微生物群落的活动,在这项研究中,我们在模型SSF中生成了三域微生物复杂性的综合视图。使用高密度微阵列(PhyloChip)和rRNA文库分析来分析DNA。真核生物群落由Cercozoa(Ebridd型原生生物)主导。这些很可能与schmutzdecke层中其他生物的捕食有关,从而为连续发展提供了机会。还检测到了Phylum Ascomycota和深支的Chytridiomycota中的纤毛原生动物,绿色微藻类,stramenopiles,变形虫原生动物和真菌。古细菌群落以Euryarchaeota为主,多数为嗜盐菌。这些生物可通过去除溶解的有机碳来促进过滤器功能,这是这些过滤器的主要处理目标。假设使用克隆库检查了真核和古细菌群落,则预期存在的分类单元的丰富度将大于此处检测到的分类单元,并取决于采样工作量(库大小)。细菌群落富含类群(21 Phyla),但不受任何系统发育群体的支配。 SSF的成功功能取决于分类单元之间的相互作用(例如放牧Cercozoa原生生物对细菌的作用)以及从进水口中去除溶解的有机物,了解这些系统中的分类单元和功能将有助于监控和管理SSF以获得最佳水质。

著录项

  • 来源
    《Water science & technology》 |2011年第4期|p.426-436|共11页
  • 作者单位

    AgResearch Ltd, Lincoln Research Centre, Private Bag 4749, Christchurch 8140, New Zealand,CSIRO Water for a Healthy Country Flagship, PMB2, Glen Osmond, SA, Australia;

    CSIRO Water for a Healthy Country Flagship, PMB2, Glen Osmond, SA, Australia;

    CSIRO Water for a Healthy Country Flagship, PMB2, Glen Osmond, SA, Australia;

    CSIRO Water for a Healthy Country Flagship, PMB2, Glen Osmond, SA, Australia,International Water Management Institute (IWMI), c/o ICRISAT, Patancheru 502 324, Andhra Pradesh, India;

    CSIRO Marine and Atmospheric Sciences, GPO Box 1538, Hobart TAS 7001, Australia;

    CSIRO Water for a Healthy Country Flagship, PMB2, Glen Osmond, SA, Australia;

    Ecology Department, Earth Sciences Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Mail Stop 70A-3317, Berkeley, CA 94720, USA;

    Ecology Department, Earth Sciences Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Mail Stop 70A-3317, Berkeley, CA 94720, USA;

    Ecology Department, Earth Sciences Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Mail Stop 70A-3317, Berkeley, CA 94720, USA;

    Ecology Department, Earth Sciences Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Mail Stop 70A-3317, Berkeley, CA 94720, USA;

  • 收录信息 美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    archaea; bacteria; eukarya; phylochip; schmutzdecke; slow sand filter; ssu rrna;

    机译:古细菌菌;eukarya;phylochip;schmutzdecke;慢速砂滤器苏尔纳;

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