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The Dimensionality of Genomic Information and Its Effect on Genomic Prediction

机译:基因组信息的维数及其对基因组预测的影响

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摘要

The genomic relationship matrix (GRM) can be inverted by the algorithm for proven and young (APY) based on recursion on a random subset of animals. While a regular inverse has a cubic cost, the cost of the APY inverse can be close to linear. Theory for the APY assumes that the optimal size of the subset (maximizing accuracy of genomic predictions) is due to a limited dimensionality of the GRM, which is a function of the effective population size (Ne). The objective of this study was to evaluate these assumptions by simulation. Six populations were simulated with approximate effective population size (Ne) from 20 to 200. Each population consisted of 10 nonoverlapping generations, with 25,000 animals per generation and phenotypes available for generations 1–9. The last 3 generations were fully genotyped assuming genome length L = 30. The GRM was constructed for each population and analyzed for distribution of eigenvalues. Genomic estimated breeding values (GEBV) were computed by single-step GBLUP, using either a direct or an APY inverse of GRM. The sizes of the subset in APY were set to the number of the largest eigenvalues explaining x% of variation (EIGx, x = 90, 95, 98, 99) in GRM. Accuracies of GEBV for the last generation with the APY inverse peaked at EIG98 and were slightly lower with EIG95, EIG99, or the direct inverse. Most information in the GRM is contained in ∼NeL largest eigenvalues, with no information beyond 4NeL. Genomic predictions with the APY inverse of the GRM are more accurate than by the regular inverse.
机译:基因组关系矩阵(GRM)可以通过对动物随机子集进行递归的经证实的和年轻的算法(APY)进行反转。虽然规则逆的成本是三次方,但APY逆的成本可能接近线性。 APY理论假设子集的最佳大小(最大化基因组预测的准确性)是由于GRM的维数有限,这是有效种群大小(Ne)的函数。这项研究的目的是通过仿真评估这些假设。模拟了六个种群,其有效种群大小(Ne)大约为20至200。每个种群由10个不重叠的世代组成,每个世代有25,000只动物,表型可用于1至9世代。假定基因组长度L = 30,对最后3代进行了完全基因分型。为每个群体构建GRM,并分析其特征值的分布。基因组估计育种值(GEBV)通过单步GBLUP,使用GRM的直接或APY逆来计算。将APY中子集的大小设置为最大特征值的数量,以解释GRM中x%的变化(EIGx,x = 90、95、98、99)。具有APY逆函数的上一代GEBV的精度在EIG98处达到峰值,而在EIG95,EIG99或直接逆函数时,则略低。 GRM中的大多数信息都包含在〜NeL个最大特征值中,没有任何信息超过4NeL。用GRM的APY逆进行的基因组预测比常规逆更准确。

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