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The influence of system complexity on bacterial transport in saturated porous media

机译:系统复杂性对饱和多孔介质中细菌迁移的影响

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A series of miscible-displacement column experiments were conducted under saturated flow conditions to systematically investigate the influence of physical and biological complexity on bacterial activity and fate in the presence and absence of a non-sorbing growth substrate, salicylate. Bacterial elution was monitored for three different systems; System Ⅰ — a sterilized, inoculated, well-sorted sand, System Ⅱ — a sterilized, inoculated, heterogeneous loamy sand (Hayhook), and System Ⅲ — two different unsterilized loamy sands (Hayhook and Vinton) each with their associated indigenous microbial community. Results show that System Ⅰ behaved ideally with respect to both cell and substrate transport, wherein: (1) growth occurred in response to substrate addition, (2) cell elution increased in response to the substrate pulse, and (3) breakthrough curves were reproducible for both substrate and cell elution. In contrast, System Ⅱ showed ideal behavior with respect to substrate transport but showed variable behavior for cell transport. Further, there was no measurable growth in response to substrate addition and no increase in cell elution during the salicylate pulse. System Ⅲ exhibited non-ideal behavior for both substrate and cell transport. Of particular interest is the fact that the indigenous communities of the two soils behaved differently. Specifically, for the Hayhook soil, an increased elution response was observed for the heterotrophic population while the salicylate-degrading community was preferentially retained in the column. In contrast for the Vinton soil, the substrate pulse did not elicit an elution response from either the heterotrophic or salicylate-degrading community from the culturable, indigenous Vinton microorganisms. For Systems Ⅱ and Ⅲ, the observed variability appears to be associated with the biological component of the system, since sterile controls were reproducible. This type of systematic study is critical for understanding cell and substrate transport behavior in complex, heterogeneous systems, and illustrates the potential uncertainty associated with measurements in such systems.
机译:在饱和流动条件下进行了一系列混相置换色谱柱实验,系统地研究了存在和不存在非吸附性生长底物水杨酸酯的情况下,物理和生物学复杂性对细菌活性和命运的影响。监测了三种不同系统的细菌洗脱;系统Ⅰ是经过消毒,接种的,分类良好的沙子,系统Ⅱ是经过消毒,接种的非均质壤土沙质(Hayhook),而系统Ⅲ是两种不同的未消毒的壤土沙质(Hayhook和Vinton),它们各自具有相关的土著微生物群落。结果表明,系统Ⅰ在细胞和底物运输方面均表现理想,其中:(1)响应底物添加而发生生长;(2)响应底物脉冲而增加了细胞洗脱;(3)可以再现突破曲线用于底物和细胞洗脱。相比之下,系统Ⅱ在底物转运方面表现出理想的行为,但在细胞转运方面表现出可变的行为。此外,在水杨酸盐脉冲期间,响应于底物添加没有可测量的生长,并且细胞洗脱没有增加。系统Ⅲ对底物和细胞的运输都表现出非理想的行为。特别令人感兴趣的是,两种土壤的土著社区的行为有所不同。具体而言,对于Hayhook土壤,观察到异养种群的洗脱响应增加,而水杨酸盐降解群落优先保留在色谱柱中。相比之下,对于Vinton土壤,底物脉冲未引起来自可培养的本地Vinton微生物的异养或水杨酸盐降解群落的洗脱反应。对于系统Ⅱ和Ⅲ,由于无菌对照是可重现的,因此观察到的变异性似乎与系统的生物学成分有关。这种类型的系统研究对于理解复杂的异构系统中的细胞和基质运输行为至关重要,并说明了与此类系统中的测量相关的潜在不确定性。

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