Reproducing kernel Hilbert spaces regression methods for genomic assisted prediction of quantitative traits

被引:316
作者
Gianola, Daniel [1 ,2 ,3 ]
van Kaam, Johannes B. C. H. M. [4 ]
机构
[1] Univ Wisconsin, Dept Anim Sci, Madison, WI 53706 USA
[2] Norwegian Univ Life Sci, Dept Anim & Aquacultural Sci, N-1432 As, Norway
[3] Univ Palermo, I-90128 Palermo, Italy
[4] Ist Zooprofilattico Sperimentale Sicilia A Mirri, I-90129 Palermo, Italy
关键词
D O I
10.1534/genetics.107.084285
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Reproducing kernel Hilbert spaces regression procedures for prediction of total genetic value for quantitative traits, which make use of phenotypic and genomic data simultaneously, are discussed from a theoretical perspective. It is argued that a nonparametric treatment may be needed for capturing the multiple and complex interactions potentially arising in whole-genome models, i.e., those based on thousands of single-nucleotide polymorphism (SNP) markers. After a review of reproducing kernel Hilbert spaces regression, it is shown that the statistical specification admits a standard mixed-effects linear model representation, with smoothing parameters treated as variance components. Models for capturing different forms of interaction, e.g., chromosome-specific, are presented. Implementations can be carried out using software for likelihood-based or Bayesian inference.
引用
收藏
页码:2289 / 2303
页数:15
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