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Experiments and models to understand gene flow from transgenic fish in different environments.

机译:通过实验和模型了解不同环境中转基因鱼的基因流。

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摘要

Transgenic fishes are nearing commercialization for aquaculture around the world. Farmed transgenic fish would likely escape from typical production facilities and interbreed with wild relatives. We tested methodologies for predicting the risk of gene flow from transgenic fish.;We conducted the first study of gene flow in confined populations of transgenic animals. In two experiments several generations long, we released growth-enhanced transgenic (T) Japanese medaka (Oryzias latipes) into populations of wild-type (W) medaka in semi-natural environments. Transgene frequencies varied in the first experiment, but transgene frequencies all decreased in the second experiment. We measured six fitness traits in both genotypes, and found that T males were more fertile than W, but W males obtained more matings than T males.;Next, we compared fitness traits of W and T medaka under four environments: (A) high food availability, predation absent; (B) high food availability, predation present; (C) low food availability, predation absent; and (D) low food availability, predation present. Overall, T females were more fecund than W, and fecundity was highest in Environment B. Offspring of TW and WT crosses had higher survival to sexual maturity than offspring of two W parents. Fish in Environment A reached sexual maturity sooner than fish in all other environments. W males had a mating advantage in Environments B and C.;Finally, we observed gene flow in populations of T and W medaka in Environments A-D for 210 days. The final transgene frequency in Environment A was greater than in Environments C or D. We parameterized a demographic model with fitness trait values collected under the same environments, which predicted that transgene frequency in Environment A would be the highest, but also overestimated transgene frequency compared to observed results. Predicted transgene frequencies overlapped with observations in Environments B and C but not in the more extreme Environments A and D.
机译:转基因鱼类正在世界范围内的水产养殖中商业化。养殖的转基因鱼可能会从典型的生产设施中逃脱,并与野生亲缘种杂交。我们测试了预测转基因鱼基因流风险的方法。我们进行了转基因动物受限种群中基因流的首次研究。在几代人的两个实验中,我们在半自然环境中将生长增强的转基因(T)日本Japanese(Oryzias latipes)释放到野生型(W)aka中。转基因频率在第一个实验中有所变化,但转基因频率在第二个实验中均下降。我们测量了两种基因型的6个健身性状,发现T雄性比W育性高,但W雄性比T雄性交配更多;接下来,我们比较了W和T medaka在四种环境下的健身性状:(A)高食物供应充足,没有捕食; (B)粮食供应充足,存在掠食; (C)粮食供应不足,没有捕食; (D)食物供应不足,存在掠食。总体而言,T雌性比W雌性多,而在B环境中的繁殖力最高。TW和WT杂交的后代比两个W亲代的后代具有更高的性成熟存活率。环境A中的鱼比其他所有环境中的鱼更早达到性成熟。 W雄性在环境B和C中具有交配优势。最后,我们观察了环境A-D中T和W medaka种群的基因流持续210天。环境A中的最终转基因频率大于环境C或D中的最终基因频率。我们使用在相同环境下收集的适应性特征值对人口模型进行参数化,该模型预测环境A中的转基因频率将是最高的,但与之相比,它也被高估了观察结果。预测的转基因频率与在环境B和C中的观察结果重叠,但在更极端的环境A和D中却没有观察到。

著录项

  • 作者

    Pennington, Kelly Marie.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Biology Ecology.;Biology Conservation.;Agriculture Fisheries and Aquaculture.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 163 p.
  • 总页数 163
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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