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Using public databases for genomic prediction of tropical maize lines

机译:使用公共数据库进行热带玉米线的基因组预测

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In this paper, the aims were (a) to test the usefulness of using genomic and phenotypic information from public databases (open access) to predict genetic values for tropical maize inbred lines regarding plant and ear height; (b) to identify how the population structure, the use of optimized training sets (OTSs) and the amount of information originating from public databases affect the predictive ability. Thus, 29 training sets (TSs) were defined considering three diversity panels: the University of Sao Paulo (USP-validation set (VS)) and the ASSO and USDA North Central Regional Plant Introduction Station (NCRPIS) (external public panels-predictors), which were divided into four scenarios with different TS configurations. We showed that it is possible to use public datasets as a primary TS and that population structure can modify the predictive abilities of GS. In the four scenarios proposed, very large or very small sets did not provide predictive abilities over 0.53 for GS. However, OTSs composed of 250 individuals were sufficient to achieve predictive abilities over this limit.
机译:在本文中,目的是(a)测试使用公共数据库(开放式访问)的基因组和表型信息的有用性,以预测热带玉米近交系的遗传值与植物和耳高; (b)确定人口结构如何,使用优化的培训集(OTSS)和源自公共数据库的信息量影响预测能力。因此,考虑三个多样性面板(USP验证集(VS))和ASSO和USDA北中央区域植物介绍站(NCRPIS)(NCRPIS)(外部公共面板)(NCRPIS)(外部公共面板)(外部公共面板 - 预测器) ,它分为四种具有不同TS配置的场景。我们表明,可以使用公共数据集作为主TS,并且群体结构可以修改GS的预测能力。在提出的四种情况下,非常大的或非常小的组没有为GS提供超过0.53的预测能力。但是,由250个个人组成的OTSS足以实现这一限制的预测能力。

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