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Simulating superior genotypes for plant height based on QTLs: Towards virtual breeding of rice

机译:基于QTL模拟植物高度的优良基因型:迈向水稻虚拟育种

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Crop plant researchers and agronomists have in the recent past increasingly turned to crop modeling as a promising tool for the integration and exploration of experimental data from breeding and agronomy. Set up suitably, crop modeling can then also be used to predict performance of future high-yielding cultivars, e.g. of rice, which is one of the major food crops worldwide. Questions such as “Which combination of alleles is likely to have the strongest influence on the development of the individual phenotype?” or “In which way is QTL action modified by a particular environment?” can be tackled with the help of a crop modeling approach. As a further extension of a previously established Functional-Structural Plant model (FSPM) of rice we present here simulated “virtual” reproduction of individuals using QTL information, which can contribute to providing answers to these difficult questions. In this study, we briefly describe the way QTL information has been integrated into the rice model, and sketch the algorithmic implementation of processes leading to the creation of filial genotypes from parental genotypes via simulated sexual reproduction. The phenotype value, which in this case was plant height, was determined with the rules that specify the genetic processes operating on genotypes as intrinsic properties of each individual. The mapping results from the simulated population were compared with the input values for the parental lines. It is shown that the rice model faithfully reflected the genetic properties from the parental lines with low bias, which suggests a reasonable way to integrate QTLs into the plant eco-physiological model with the predictive properties. It could in the future be used as a supporting tool in breeding practice.
机译:作物研究人员和农艺师近来越来越多地将作物建模作为一种有前途的工具,用于整合和探索来自育种和农艺学的实验数据。建立适当的作物模型然后还可用于预测未来高产品种的表现,例如水稻,这是全球主要的粮食作物之一。诸如“哪些等位基因组合可能对个体表型的发展影响最大?”之类的问题。或“特定环境如何修改QTL行为?”可以借助作物建模方法来解决。作为先前建立的水稻功能结构植物模型(FSPM)的进一步扩展,我们在这里使用QTL信息模拟个体的“虚拟”繁殖,这可以有助于为这些难题提供答案。在这项研究中,我们简要描述了QTL信息已被整合到水稻模型中的方式,并概述了通过模拟性繁殖从亲本基因型创建孝子基因型的过程的算法实现。表型值,在这种情况下是植物高度,是由规则确定的,该规则指定对基因型进行操作的遗传过程作为每个个体的固有特性。将模拟种群的映射结果与亲本系的输入值进行比较。结果表明,水稻模型忠实地反映了亲本亲本的遗传特性,且偏倚程度较低,这为将QTL整合到具有预测特性的植物生态生理模型中提供了一种合理的方法。将来可以将其用作育种实践的辅助工具。

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