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Evaluating the accuracy of genomic prediction of growth and wood traits in two Eucalyptus species and their F1 hybrids

机译:评估两个桉树种及其F1杂种的生长和木材性状的基因组预测准确性

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摘要

BackgroundGenomic prediction is a genomics assisted breeding methodology that can increase genetic gains by accelerating the breeding cycle and potentially improving the accuracy of breeding values. In this study, we use 41,304 informative SNPs genotyped in a Eucalyptus breeding population involving 90 E.grandis and 78 E.urophylla parents and their 949 F1 hybrids to develop genomic prediction models for eight phenotypic traits - basic density and pulp yield, circumference at breast height and height and tree volume scored at age three and six years. We assessed the impact of different genomic prediction methods, the composition and size of the training and validation set and the number and genomic location of SNPs on the predictive ability (PA).
机译:背景技术基因组预测是一种由基因组学辅助的育种方法,可以通过加快育种周期并潜在地提高育种值的准确性来增加遗传增益。在这项研究中,我们使用90304个桉树种和78个桉树亲本及其949个F1杂种在41个桉树育种种群中进行了基因分型的41,304个SNP,以开发出8个表型性状的基因组预测模型-基本密度和果肉产量,乳房周长身高,身高和树木体积在3岁和6岁时得分。我们评估了不同基因组预测方法,训练和验证集的组成和大小以及SNP的数量和基因组位置对预测能力(PA)的影响。

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