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Genome-wide association analyses using a Bayesian approach for litter size and piglet mortality in Danish Landrace and Yorkshire pigs

机译:使用贝叶斯方法对丹麦地方​​品种和约克郡猪的产仔数和仔猪死亡率进行全基因组关联分析

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Background Litter size and piglet mortality are important traits in pig production. The study aimed to identify quantitative trait loci (QTL) for litter size and mortality traits, including total number of piglets born (TNB), litter size at day 5 (LS5) and mortality rate before day 5 (MORT) in Danish Landrace and Yorkshire pigs by genome-wide association studies (GWAS). Methods The phenotypic records and genotypes were available in 5,977 Landrace pigs and 6,000 Yorkshire pigs born from 1998 to 2014. A linear mixed model (LM) with a single SNP regression and a Bayesian mixture model (BM) including effects of all SNPs simultaneously were used for GWAS to detect significant QTL association. The response variable used in the GWAS was corrected phenotypic value which was obtained by adjusting original observations for non-genetic effects. For BM, the QTL region was determined by using a novel post-Gibbs analysis based on the posterior mixture probability. Results The detected association patterns from LM and BM models were generally similar. However, BM gave more distinct detection signals than LM. The clearer peaks from BM indicated that the BM model has an advantage in respect of identifying and distinguishing regions of putative QTL. Using BM and QTL region analysis, for the three traits and two breeds a total of 15 QTL regions were identified on SSC1, 2, 3, 6, 7, 9, 13 and 14. Among these QTL regions, 6 regions located on SSC2, 3, 6, 7 and 13 were associated with more than one trait. Conclusion This study detected QTL regions associated with litter size and piglet mortality traits in Danish pigs using a novel approach of post-Gibbs analysis based on posterior mixture probability. All of the detected QTL regions overlapped with regions previously reported for reproduction traits. The regions commonly detected in different traits and breeds could be resources for multi-trait and across-bred selection. The proposed novel QTL region analysis method would be a good alternative to detect and define QTL regions.
机译:背景产仔数和仔猪死亡率是养猪生产中的重要特征。这项研究旨在确定产仔数和死亡率特征的数量性状位点(QTL),包括出生的仔猪总数(TNB),第5天的产仔数(LS5)和丹麦长白和约克郡第5天的死亡率(MORT)。猪全基因组关联研究(GWAS)。方法收集1998年至2014年出生的5,977头长白猪和6,000头约克夏猪的表型记录和基因型。使用具有单SNP回归的线性混合模型(LM)和包括所有SNP同时作用的贝叶斯混合模型(BM)。 GWAS可以检测到重要的QTL关联。 GWAS中使用的响应变量是校正的表型值,该值是通过调整非遗传效应的原始观察值而获得的。对于BM,根据后混合概率,使用新颖的后Gibbs分析确定QTL区域。结果从LM和BM模型中检测到的关联模式通常相似。但是,与LM相比,BM提供了更多不同的检测信号。来自BM的更清晰的峰表明BM模型在识别和区分假定QTL区域方面具有优势。使用BM和QTL区域分析,对于SSR1、2、3、6、7、9、13和14上的三个性状和两个品种,总共鉴定出15个QTL区域,在这些QTL区域中,位于SSC2, 3、6、7和13与一个以上的性状有关。结论本研究使用后验混合概率基于吉布斯后分析的新方法检测了丹麦猪的QTL区域,该区域与仔猪大小和仔猪死亡率性状有关。所有检测到的QTL区域都与先前报告的繁殖性状区域重叠。通常在不同性状和品种中检测到的区域可能是多性状和杂交选种的资源。提出的新颖的QTL区域分析方法将是检测和定义QTL区域的好选择。

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