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Ecological implications of the release of genetically engineered microorganisms (GEMs) into aquatic ecosystems.

机译:向水生生态系统释放基因工程微生物(GEM)的生态意义。

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摘要

The recent development of recombinant DNA techniques enables the genetic engineer to manipulate genetic information to produce new microorganisms with novel phenotypes. The commercialization of this technology has led to the development of recombinant organisms specifically designed to be released into natural environments.; The fate of genetically engineered bacteria and their ability to cause perturbations on ecosystem structure and function is the focus of this study. Microcosm studies were designed to evaluate the fate of model engineered Pseudomonas putida strains in an oligotrophic freshwater system. By monitoring bacterial survival and plasmid stability, the effects of low-organic nutrient environments on the fate of an introduced organism and its foreign DNA were determined. Results of this study suggested that strain-specific postrelease adaptations tend to increase the fitness of GEMS for survival and establishment of populations in aquatic ecosystems. In addition, the effects of nutrient availability on horizontal gene transfer were also evaluated using laboratory donor strains and indigenous bacterial isolates. Results of this study suggested that rates of plasmid transfer in aquatic ecosystems may be higher in microenvironments of higher nutrient availability such as particle surfaces.; The final approach of this study was to determine the effects of a recombinant marine bacterium on phosphorus cycling in marine ecosystems. An indigenous marine bacterium, genetically modified to constitutively produce alkaline phosphatase, was released into seawater microcosms. By amending microcosms with various organophosphorus and nitrogen concentrations, the effect of the introduced GEM on the mineralization of dissolved organic phosphorus compounds was determined under both limiting and non-limiting inorganic nitrogen conditions. In addition the impact of the GEM on higher trophic levels, particularly the indigenous phytoplankton community, was determined. GEM- specific increases in the concentration of inorganic phosphate were observed during incubation in natural seawater. Secondary GEM-specific effects were observed in the phytoplankton community as determined by increases in chlorophyll a concentrations.
机译:重组DNA技术的最新发展使遗传工程师能够操纵遗传信息以产生具有新表型的新微生物。该技术的商业化导致了重组生物的发展,该重组生物是专门设计用于释放到自然环境中的。基因工程细菌的命运及其对生态系统结构和功能造成干扰的能力是本研究的重点。缩影研究旨在评估贫营养淡水系统中工程改造的恶臭假单胞菌菌株的命运。通过监测细菌存活和质粒稳定性,确定了低有机营养环境对引入生物及其外源DNA命运的影响。这项研究的结果表明,特定菌株的释放后适应性倾向于增加GEMS在水生生态系统中生存和建立种群的适应性。此外,还使用实验室供体菌株和本地细菌分离株评估了养分利用率对水平基因转移的影响。这项研究的结果表明,在养分利用率较高的微环境(如颗粒表面)的微环境中,质粒在水生生态系统中的转移速率可能更高。这项研究的最终方法是确定重组海洋细菌对海洋生态系统中磷循环的影响。经过遗传修饰以组成型产生碱性磷酸酶的本地海洋细菌被释放到海水的缩影中。通过用各种有机磷和氮浓度修改微观世界,可以在有限和非限制性无机氮条件下确定引入的GEM对溶解的有机磷化合物矿化的影响。此外,还确定了创业板对较高营养水平的影响,特别是对本土浮游植物群落的影响。在天然海水中温育期间,观察到GEM特异性的无机磷酸盐浓度增加。通过叶绿素a浓度的增加确定了在浮游植物群落中观察到的次级GEM特异性作用。

著录项

  • 作者

    Sobecky, Patricia Ann.;

  • 作者单位

    University of Georgia.;

  • 授予单位 University of Georgia.;
  • 学科 Biology Microbiology.; Biology Ecology.
  • 学位 Ph.D.
  • 年度 1993
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 微生物学;生态学(生物生态学);
  • 关键词

  • 入库时间 2022-08-17 11:50:00

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