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An integrative methodology to predict dispersal of genetically modified genotypes in oilseed rape at landscape-level-A study for the region of Schleswig-Holstein, Germany

机译:在景观水平上预测油菜籽中基因改造基因型传播的综合方法-德国石勒苏益格-荷尔斯泰因地区的一项研究

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摘要

Potential environmental as well as socio-economic effects of the cultivation of genetically modified (GM) oilseed rape (OSR) may be caused by large-scale dispersal of transgenes. We present an up-scaling approach that was based on scenario assumptions concerning the percentage of GM cultivation and took into account natural and anthropogenic variation of involved dispersal processes. The applied methods include computer modelling and spatial analysis. A simulation model (GeneTraMP) was used to calculate the spatio-temporal pattern of the spread of a neutral transgene (without any specific function) in OSR. Basic scenario calculations were carried out for different spatial configurations covering 1 km2 each and taking into account information on climate and cultivation systems of the region of the federal state of Schleswig-Holstein, Germany. For the exemplary regional study presented here, we analysed the numbers of flowering plants of GM OSR in different types of locations as predicted by the model. The results confirmed the expectation of a very high variability of GM occurrences at distinguishable intensity levels which were closely related to the proximity of areas of intended GM oilseed rape cultivation and may be described by a combination of management parameters and location type. The up-scaling method included a spatial analysis of the target region. Based on satellite images and digital maps, the structure of the region was analysed resulting in a map of Schleswig-Holstein that represents each single field, also including information on crop rotation, ownership and production systems. Applying GIS queries to this database, we identified the area of relevant location types. Both, the model results and the spatial data were used to predict the total numbers of flowering GM OSR plants for the region of Schleswig-Holstein. As an important feature, the up-scaling of modelling results to a larger scale allows for a comprehensive analysis by also enclosing regional parameters, as, for example the cropping density. The presented methods can support decision making if they are incorporated into the planning of an environmental monitoring of commercial GM crops or into life cycle assessment and cost-benefit analyses of GMO cultivation.
机译:转基因(GM)油菜(OSR)种植的潜在环境影响以及社会经济影响可能是由于转基因的大规模传播所致。我们提出了一种基于情景假设的转基因放大方法,该情景假设涉及转基因作物的种植百分比,并考虑了所涉及的分散过程的自然和人为变化。应用的方法包括计算机建模和空间分析。使用模拟模型(GeneTraMP)计算OSR中中性转基因(无任何特定功能)传播的时空模式。针对每个占地1 km2的不同空间配置进行了基本情景计算,并考虑了德国石勒苏益格-荷尔斯泰因州的气候和耕作系统信息。对于此处介绍的示例性区域研究,我们分析了该模型预测的不同类型位置的GM OSR开花植物的数量。结果证实了在可区分的强度水平上预期的转基因发生非常高的变化,这与预期的转基因油菜种植区域的接近程度密切相关,并且可以通过管理参数和位置类型的组合来描述。放大方法包括目标区域的空间分析。根据卫星图像和数字地图,对该区域的结构进行了分析,得出了代表每个领域的石勒苏益格-荷尔斯泰因州地图,还包括有关作物轮作,所有权和生产系统的信息。将GIS查询应用于该数据库,我们确定了相关位置类型的区域。模型结果和空间数据均用于预测石勒苏益格-荷尔斯泰因地区的开花GM OSR植物总数。作为一个重要特征,将建模结果按比例放大到更大的比例可以通过包含区域参数(例如种植密度)进行全面分析。如果将所提出的方法纳入商业化转基因作物的环境监测计划中,或者纳入转基因生物种植的生命周期评估和成本效益分析中,则可以为决策提供支持。

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