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Stable-isotope probing and metagenomics reveal predation by protozoa drives E. coli removal in slow sand filters

机译:稳定同位素探测和宏基因组学揭示了原生动物驱动慢速砂滤器去除大肠杆菌的掠食性

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摘要

Stable-isotope probing and metagenomics were applied to study samples taken from laboratory-scale slow sand filters 0.5, 1, 2, 3 and 4 h after challenging with 13C-labelled Escherichia coli to determine the mechanisms and organisms responsible for coliform removal. Before spiking, the filters had been continuously operated for 7 weeks using water from the River Kelvin, Glasgow as their influent source. Direct counts and quantitative PCR assays revealed a clear predator–prey response between protozoa and E. coli. The importance of top-down trophic-interactions was confirmed by metagenomic analysis, identifying several protozoan and viral species connected to E. coli attrition, with protozoan grazing responsible for the majority of the removal. In addition to top-down mechanisms, indirect mechanisms, such as algal reactive oxygen species-induced lysis, and mutualistic interactions between algae and fungi, were also associated with coliform removal. The findings significantly further our understanding of the processes and trophic interactions underpinning E. coli removal. This study provides an example for similar studies, and the opportunity to better understand, manage and enhance E. coli removal by allowing the creation of more complex trophic interaction models.
机译:稳定同位素探测和宏基因组学用于研究从实验室规模的慢砂滤池中提取的样品,这些滤池是在用 13 C标记的大肠杆菌攻击后0.5、1、2、3和4 3h进行的,以确定其机理和负责大肠菌清除的生物。在加标之前,已使用来自格拉斯哥开尔文河的水作为进水源,将过滤器连续运行了7周。直接计数和定量PCR分析表明,原生动物和大肠杆菌之间存在清晰的食肉动物-猎物反应。自上而下的营养相互作用的重要性通过宏基因组学分析得到了确认,该分析确定了几种与大肠杆菌减员有关的原生动物和病毒物种,其中原生动物的放牧是大部分去除的原因。除了自上而下的机制外,间接机制(例如藻类活性氧诱导的裂解以及藻类和真菌之间的相互影响)也与大肠菌的去除有关。这些发现极大地增进了我们对支撑大肠杆菌去除的过程和营养相互作用的理解。这项研究为类似的研究提供了一个例子,并为通过创建更复杂的营养相互作用模型更好地理解,管理和增强大肠杆菌去除提供了机会。

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