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Likelihood and Bayesian analyses reveal major genes affecting body composition carcass meat quality and the number of false teats in a Chinese European pig line

机译:可能性和贝叶斯分析揭示了影响中国欧洲猪品系的主要基因这些基因影响身体成分car体肉质和假奶头数量

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摘要

Segregation analyses were performed using both maximum likelihood – via a Quasi Newton algorithm – (ML-QN) and Bayesian – via Gibbs sampling – (Bayesian-GS) approaches in the Chinese European Tiameslan pig line. Major genes were searched for average ultrasonic backfat thickness (ABT), carcass fat (X2 and X4) and lean (X5) depths, days from 20 to 100 kg (), Napole technological yield (NTY), number of false (FTN) and good (GTN) teats, as well as total teat number (TTN). The discrete nature of FTN was additionally considered using a threshold model under ML methodology. The results obtained with both methods consistently suggested the presence of major genes affecting ABT, X2, NTY, GTN and FTN. Major genes were also suggested for X4 and X5 using ML-QN, but not the Bayesian-GS, approach. The major gene affecting FTN was confirmed using the threshold model. Genetic correlations as well as gene effect and genotype frequency estimates suggested the presence of four different major genes. The first gene would affect fatness traits (ABT, X2 and X4), the second one a leanness trait (X5), the third one NTY and the last one GTN and FTN. Genotype frequencies of breeding animals and their evolution over time were consistent with the selection performed in the Tiameslan line.
机译:在中国的欧洲Tiameslan猪品系中,使用最大似然法(通过拟牛顿算法(ML-QN))和贝叶斯方法(通过Gibbs抽样方法(贝叶斯-GS))进行了分离分析。搜索主要基因的平均超声背f厚度(ABT),car体脂肪(X2和X4)和瘦肉(X5)深度,20至100 kg的天数(),拿破仑技术产量(NTY),假货数(FTN)和良好(GTN)奶嘴,以及总奶头数量(TTN)。在ML方法下,还使用阈值模型来考虑FTN的离散性。两种方法获得的结果一致表明存在影响ABT,X2,NTY,GTN和FTN的主要基因。还建议使用ML-QN而不是Bayesian-GS方法针对X4和X5提出主要基因。使用阈值模型确认了影响FTN的主要基因。遗传相关性以及基因效应和基因型频率估计表明存在四个不同的主要基因。第一个基因会影响脂肪性状(ABT,X2和X4),第二个基因会影响脂肪性状(X5),第三个基因是NTY,最后一个是GTN和FTN。繁殖动物的基因型频率及其随时间的演变与在Tiameslan系中进行的选择一致。

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