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利用一步法基因组反应规范模型预测基因型-环境互作下猪的生长性状。

Genomic prediction of growth traits for pigs in the presence of genotype by environment interactions using single-step genomic reaction norm model.

机构信息

National Engineering Laboratory for Animal Breeding, Laboratory of Animal Genetics, Breeding and Reproduction, Ministry of Agriculture, College of Animal Science and Technology, China Agricultural University, Beijing, P.R. China.

Shandong Provincial Key Laboratory of Animal Biotechnology and Disease Control and Prevention, College of Animal Science and Technology, Shandong Agricultural University, Taian, P.R. China.

出版信息

J Anim Breed Genet. 2020 Nov;137(6):523-534. doi: 10.1111/jbg.12499. Epub 2020 Aug 11.

Abstract

Economically important traits are usually complex traits influenced by genes, environment and genotype-by-environment (G × E) interactions. Ignoring G × E interaction could lead to bias in the estimation of breeding values and selection decisions. A total of 1,778 pigs were genotyped using the PorcineSNP80 BeadChip. The existence of G × E interactions was investigated using a single-step reaction norm model for growth traits of days to 100 kg (AGE) and backfat thickness adjusted to 100 kg (BFT), based on a pedigree-based relationship matrix (A) or a genomic-pedigree joint relationship matrix (H). In the reaction norm model, the herd-year-season effect was measured as the environmental variable (EV). Our results showed no G × E interactions for AGE, but for BFT. For both AGE and BFT, the genomic reaction norm model (H) produced more accurate predictions than the conventional reaction norm model (A). For BFT, the accuracies were greater based on the reaction norm model than those based on the reduced model without exploiting G × E interaction, with EV ranging from 0.5 to 1, and accuracy increasing by 3.9% and 4.6% in the reaction norm model based on A and H matrices, respectively, while reaction norm model yielded approximately 8.4% and 7.9% lower accuracy for EVs ranging from 0 to 0.4, based on A and H matrices, respectively. In addition, for BFT, the highest accuracy was obtained in the BJLM6 farm for realizing directional selection. This study will help to apply G × E interactions to practical genomic selection.

摘要

经济重要性状通常是受基因、环境和基因型与环境互作(G×E)影响的复杂性状。忽略 G×E 互作可能导致对育种值的估计和选择决策产生偏差。使用 PorcineSNP80 BeadChip 对 1778 头猪进行了基因分型。使用单步反应规范模型研究了生长性状(100kg 日龄(AGE)和背膘厚校正至 100kg(BFT))的 G×E 互作,基于基于系谱的关系矩阵(A)或基因组系谱联合关系矩阵(H)。在反应规范模型中,畜群-年份-季节效应被测量为环境变量(EV)。结果表明,AGE 没有 G×E 互作,但 BFT 有 G×E 互作。对于 AGE 和 BFT,基因组反应规范模型(H)比常规反应规范模型(A)产生更准确的预测。对于 BFT,基于反应规范模型的准确性大于不利用 G×E 互作的简化模型,EV 范围为 0 到 1,基于 A 和 H 矩阵的反应规范模型的准确性分别增加了 3.9%和 4.6%,而反应规范模型的准确性则降低了大约 8.4%和 7.9%,EV 范围分别为 0 到 0.4,基于 A 和 H 矩阵。此外,对于 BFT,BJLM6 农场获得了最高的准确性,实现了定向选择。本研究将有助于将 G×E 互作应用于实际的基因组选择。

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