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基因组选择和传统选择对突变方差对长期选择响应和遗传方差的贡献的影响。

The Impact of Genomic and Traditional Selection on the Contribution of Mutational Variance to Long-Term Selection Response and Genetic Variance.

机构信息

Wageningen University & Research Animal Breeding and Genomics, 6700 AH Wageningen, The Netherlands

School of Environmental and Rural Science, University of New England, Armidale, New South Wales 2351, Australia.

出版信息

Genetics. 2019 Oct;213(2):361-378. doi: 10.1534/genetics.119.302336. Epub 2019 Aug 20.

Abstract

mutations (DNM) create new genetic variance and are an important driver for long-term selection response. We hypothesized that genomic selection exploits mutational variance less than traditional selection methods such as mass selection or selection on pedigree-based breeding values, because DNM in selection candidates are not captured when the selection candidates' own phenotype is not used in genomic selection, DNM are not on SNP chips and DNM are not in linkage disequilibrium with the SNP on the chip. We tested this hypothesis with Monte Carlo simulation. From whole-genome sequence data, a subset of ∼300,000 variants was used that served as putative markers, quantitative trait loci or DNM. We simulated 20 generations with truncation selection based on breeding values from genomic best linear unbiased prediction without (GBLUP_no_OP) or with own phenotype (GBLUP_OP), pedigree-based BLUP without (BLUP_no_OP) or with own phenotype (BLUP_OP), or directly on phenotype. GBLUP_OP was the best strategy in exploiting mutational variance, while GBLUP_no_OP and BLUP_no_OP were the worst in exploiting mutational variance. The crucial element is that GBLUP_no_OP and BLUP_no_OP puts no selection pressure on DNM in selection candidates. Genetic variance decreased faster with GBLUP_no_OP and GBLUP_OP than with BLUP_no_OP, BLUP_OP or mass selection. The distribution of mutational effects, mutational variance, number of DNM per individual and nonadditivity had a large impact on mutational selection response and mutational genetic variance, but not on ranking of selection strategies. We advocate that more sustainable genomic selection strategies are required to optimize long-term selection response and to maintain genetic diversity.

摘要

突变(DNM)创造新的遗传变异,是长期选择反应的重要驱动因素。我们假设基因组选择利用突变变异的程度低于传统的选择方法,如质量选择或基于系谱的育种值选择,因为在基因组选择中不使用选择候选者自身的表型时,无法捕获选择候选者中的 DNM;DNM 不在 SNP 芯片上,且与芯片上的 SNP 不存在连锁不平衡。我们通过蒙特卡罗模拟来检验这一假设。从全基因组序列数据中,选择了约 30 万个变体作为假定的标记、数量性状位点或 DNM。我们模拟了 20 代基于基因组最佳线性无偏预测(GBLUP)的截断选择,其中包括没有(GBLUP_no_OP)或有(GBLUP_OP)自身表型的选择,基于系谱的 BLUP 没有(BLUP_no_OP)或有(BLUP_OP)自身表型的选择,或直接基于表型的选择。在利用突变变异方面,GBLUP_OP 是最佳策略,而 GBLUP_no_OP 和 BLUP_no_OP 是最差策略。关键因素是 GBLUP_no_OP 和 BLUP_no_OP 不对选择候选者中的 DNM 施加选择压力。与 BLUP_no_OP、BLUP_OP、GBLUP_OP 或质量选择相比,GBLUP_no_OP 和 GBLUP_OP 导致遗传方差下降更快。突变效应、突变方差、每个个体的 DNM 数量和非加性的分布对突变选择反应和突变遗传方差有很大影响,但对选择策略的排名没有影响。我们主张需要更可持续的基因组选择策略来优化长期选择反应并维持遗传多样性。

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