首页> 外文学位 >Gene-based systems approach to simulate soybean growth and development and application to ideotype design in target environments.
【24h】

Gene-based systems approach to simulate soybean growth and development and application to ideotype design in target environments.

机译:基于基因的系统方法可模拟大豆的生长和发育,并将其应用于目标环境中的表型设计。

获取原文
获取原文并翻译 | 示例

摘要

Crop yields must increase to satisfy an increasing food demand. Plant breeding and improved crop management will constitute the backbone for breaking productivity constraints. Rapid advances in molecular biology promise to radically change plant genetic improvement. However, we need methods to bridge the gap between genes and crop performance, to predict crop responses to environmental conditions and management, and to design predictable phenotypes.; Crop models, software programs that imitate plant growth and development, have the potential to become powerful genetic engineering tools. Paradoxically, model parameters that characterize genotypic differences are phenotypic in nature. If these can become functions of loci, we can establish a bridge between genetics, crop biology, and crop and environmental management. This dissertation develops, tests, and demonstrates an approach to tailor a crop model to the genetic makeup of the crop for ideotype design for target environments.; Using soybean as a model organism, a set of E loci that control reproductive development was studied using 48 near-isogenic lines. New functions were assigned to the E5 locus and other E loci that control reproductive duration and pod number determination. These experimental results were used to develop linear models to predict crop model parameters from E loci alleles bridging the gap between genetics and integrated crop physiology. For the first time, this kind of approach was tested for its ability to predict growth and development in commercial varieties. The gene-based model predicted 75% of the variance in the time to maturity and 54% of the yield variance in variety trials conducted in Illinois. Gene-based approaches can thus reduce or replace expensive and time-consuming experimentation for model parameterization. A phenotype reverse-engineering method was implemented by coupling the gene-based model to a simulated annealing optimization algorithm. The new method was used to design ideotypes for target environments in Argentina. The coupled model found ideotypes yielding at least 40% more than actual varieties grown in the region. Although more research is needed to fully parameterize the soybean model, it was shown that there is great potential for decreasing model parameterization requirements, and for designing ideotype for food production systems.
机译:作物产量必须增加才能满足不断增长的粮食需求。植物育种和改善的作物管理将构成打破生产力限制的支柱。分子生物学的飞速发展有望从根本上改变植物的遗传改良。但是,我们需要一些方法来弥合基因和作物表现之间的差距,预测作物对环境条件和管理的反应,并设计可预测的表型。作物模型,模仿植物生长和发育的软件程序,有可能成为强大的基因工程工具。矛盾的是,表征基因型差异的模型参数实际上是表型。如果这些可以成为基因座的功能,我们可以在遗传学,作物生物学以及作物与环境管理之间建立桥梁。本文开发,测试并演示了一种针对作物遗传构成量身定制作物模型的方法,以用于目标环境的表型设计。以大豆为模型生物,使用48个近等基因系研究了一组控制生殖发育的 E 基因座。将新功能分配给 E 5位点和其他控制生殖时间和荚果数量的 E 位点。这些实验结果被用于建立线性模型以预测 E 基因座等位基因的作物模型参数,从而弥合了遗传学与综合作物生理学之间的差距。首次测试了这种方法预测商业品种生长和发育的能力。在伊利诺伊州进行的品种试验中,基于基因的模型预测了成熟时间的75%的变化和产量变化的54%。因此,基于基因的方法可以减少或取代昂贵且耗时的模型参数化实验。通过将基于基因的模型与模拟退火优化算法耦合,实现了一种表型逆向工程方法。该新方法用于设计阿根廷目标环境的表型。耦合模型发现,与该地区实际种植的品种相比,独特型的产量至少高出40%。尽管需要更多的研究来对大豆模型进行完全参数化,但事实表明,降低模型参数化要求以及设计食品生产系统的表型具有巨大潜力。

著录项

  • 作者

    Messina, Carlos Daniel.;

  • 作者单位

    University of Florida.;

  • 授予单位 University of Florida.;
  • 学科 Engineering Agricultural.; Agriculture Agronomy.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 143 p.
  • 总页数 143
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 农业工程;农学(农艺学);
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号