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首页> 外文期刊>Heredity: An International Journal of Genetics >A novel linkage-disequilibrium corrected genomic relationship matrix for SNP-heritability estimation and genomic prediction
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A novel linkage-disequilibrium corrected genomic relationship matrix for SNP-heritability estimation and genomic prediction

机译:一种新的联系 - 不平衡校正基因组关系矩阵,用于SNP - 遗传性估计和基因组预测

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摘要

Single nucleotide polymorphism (SNP)-heritability estimation is an important topic in several research fields, including animal, plant and human genetics, as well as in ecology. Linear mixed model estimation of SNP-heritability uses the structures of genomic relationships between individuals, which is constructed from genome-wide sets of SNP-markers that are generally weighted equally in their contributions. Proposed methods to handle dependence between SNPs include, "thinning" the marker set by linkage disequilibrium (LD)-pruning, the use of haplotype-tagging of SNPs, and LD-weighting of the SNP-contributions. For improved estimation, we propose a new conceptual framework for genomic relationship matrix, in which Mahalanobis distance-based LD-correction is used in a linear mixed model estimation of SNP-heritability. The superiority of the presented method is illustrated and compared to mixed-model analyses using a VanRaden genomic relationship matrix, a matrix used by GCTA and a matrix employing LD-weighting (as implemented in the LDAK software) in simulated (using real human, rice and cattle genotypes) and real (maize, rice and mice) datasets. Despite of the computational difficulties, our results suggest that by using the proposed method one can improve the accuracy of SNP-heritability estimates in datasets with high LD.
机译:单核苷酸多态性(SNP) - 施有力估计是若干研究领域的重要课题,包括动物,植物和人类遗传,以及生态学。 SNP-RELityability的线性混合模型估计使用个体之间的基因组关系结构,其由基因组 - 范围的SNP标记组构成,其通常在其贡献中等加重。提出的方法来处理SNP之间的依赖性包括,“稀疏”通过连锁不平衡(LD) - 蛋白,使用SNP的单倍型标记和SNP贡献的LD加权的使用。为了改善估计,我们向基因组关系矩阵提出了一种新的概念框架,其中基于Mahalanobis距离的LD校正用于SNP-REVITALY的线性混合模型估计。示出了所提出的方法的优越性,并使用Vanraden基因组关系基质的混合模型分析,GCTA使用的基质和使用LD加权的基质(如在LDAK软件中实施)(使用真正的人类,米和牛基因型)和真实(玉米,米和小鼠)数据集。尽管有计算困难,但我们的结果表明,通过使用所提出的方法,可以提高具有高LD的数据集中的SNP-Remitability估算的准确性。

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