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Bioaugmentation with metal-resistance microorganisms in the remediation of metal and organic contaminated soils.

机译:在金属和有机污染土壤的修复中使用抗金属微生物进行生物增强。

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摘要

Current thinking is that co-contaminated sites (i.e., sites with both organic and metallic pollutants) are difficult to bioremediate because the metal toxicity is such that organic degradation is inhibited. The objective of this research was to evaluate the potential of bioaugmentation with metal-detoxifying microbial populations as a viable remediative approach for such sites. Divided into three sections, this research found that metal-detoxifying microorganisms could facilitate the remediation of co-contaminated systems.; The objective of the first study was to compare the microbial community response to cadmium exposure between metal-contaminated and uncontaminated soils. This study found that while cadmium adversely affected the numbers of culturable microorganisms in all soils, cadmium-resistant isolates were found in each soil, regardless of prior metal exposure. However, the metal-contaminated soil microbial communities were more resistant than the uncontaminated soil community. In one metal-stressed soil, resistance increased with increasing cadmium stress. A cadmium-resistant Pseudomonas spp. was found to increase in numbers with increasing cadmium, suggesting a different mechanism of cadmium resistance at high cadmium concentrations.; The second study evaluated the diversity of cadmium-resistance/detoxification mechanisms in six cadmium-resistant isolates found in the first study. Genetic and microscopic analyses found several different approaches to cadmium resistance. Two mechanisms known to confer resistance were observed, including exopolymer and biosurfactant production. Two other isolates demonstrated intracellular cadmium accumulation via as yet unknown mechanisms. The mechanism of resistance for one isolate could not be identified. Four out of the six isolates detoxified cadmium as part of their resistance.; Since metal detoxification is necessary to allow for organic degradation, these four isolates were included in 2,4-D degradation studies under co-contaminated conditions. The last study examined the use of cadmium-detoxifying microorganisms to enhance organic degradation under co-contaminated conditions. In pure culture and laboratory soil microcosms with cadmium and 2,4-dichlorophenoxyacetic acid (2,4-D) as model contaminants, four cadmium-detoxifying isolates supported the degradation of 2,4-D by the cadmium-sensitive 2,4-D degrader Alcaligenes eutrophus JMP134 in the presence of toxic levels of cadmium. Ina pilot field study, a cadmium-detoxifying Pseudomonas isolate enhanced 2,4-D degradation by A. eutrophus JMP 13 4 in the presence of cadmium.
机译:当前的想法是,由于金属毒性使得有机降解受到抑制,因此难以对被共同污染的位点(即具有有机和金属污染物的位点)进行生物修复。这项研究的目的是评估使用金属解毒微生物种群进行生物强化的潜力,作为对此类场所进行修复的可行方法。这项研究分为三个部分,发现金属解毒微生物可以促进对共污染系统的修复。第一项研究的目的是比较金属污染土壤和未污染土壤之间微生物群落对镉暴露的响应。这项研究发现,尽管镉对所有土壤中可培养微生物的数量均产生不利影响,但无论先前是否接触金属,都在每种土壤中发现了抗镉分离株。但是,金属污染的土壤微生物群落比未污染的土壤群落更具抵抗力。在一种金属胁迫的土壤中,电阻随着镉胁迫的增加而增加。耐镉的假单胞菌 spp。被发现随着镉的增加而增加,这表明在高镉浓度下对镉的抗性机制不同。第二项研究评估了第一项研究中发现的六种抗镉菌株中抗镉/解毒机制的多样性。遗传和微观分析发现了几种不同的抗镉方法。观察到已知两种赋予抗性的机理,包括外聚合物和生物表面活性剂的产生。另外两个分离株通过未知的机制证明了细胞内镉的积累。无法确定一种分离株的抗性机制。六个分离株中有四个将镉排毒,这是其抵抗力的一部分。由于金属的解毒是有机降解所必需的,因此这四种分离物已包括在共污染条件下的2,4-D降解研究中。上一项研究检查了使用镉解毒微生物增强共同污染条件下的有机降解。在纯培养物和实验室土壤微观世界中,以镉和2,4-二氯苯氧基乙酸(2,4-D)为模型污染物,四种对镉解毒的分离株均支持对镉敏感的2,4-降解2,4-D。镉中毒水平下的D降解菌 eucalihus JMP134。在一项初步的现场研究中,解毒镉的假单胞菌分离物通过 A增强了2,4-D降解。镉存在下的真核生物JMP 13 4。

著录项

  • 作者

    Roane, Timberley Michelle.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Biology Microbiology.; Environmental Sciences.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 161 p.
  • 总页数 161
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 微生物学;环境科学基础理论;
  • 关键词

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