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首页> 外文期刊>Journal of Animal Breeding and Genetics >Random regression test day models to estimate genetic parameters for milk yield and milk components in Philippine dairy buffaloes
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Random regression test day models to estimate genetic parameters for milk yield and milk components in Philippine dairy buffaloes

机译:随机回归测试日模型来估算菲律宾奶牛的牛奶产量和牛奶成分的遗传参数

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摘要

Heritabilities and genetic correlations for milk production traits were estimated from first-parity test day records on 1022 Philippine dairy buffalo cows. Traits analysed included milk (MY), fat (FY) and protein (PY) yields, and fat (Fat%) and protein (Prot%) concentrations. Varying orders of Legendre polynomials (Leg(m)) as well as the Wilmink function (Wil) were used in random regression models. These various models were compared based on log likelihood, Akaike's information criterion, Bayesian information criterion and genetic variance estimates. Six residual variance classes were sufficient for MY, FY, PY and Fat%, while seven residual classes for Prot%. Multivariate analysis gave higher estimates of genetic variance and heritability compared with univariate analysis for all traits. Heritability estimates ranged from 0.25 to 0.44, 0.13 to 0.31 and 0.21 to 0.36 for MY, FY and PY, respectively. Wilmink's function was the better fitting function for additive genetic effects for all traits. It was also the preferred function for permanent environment effects for Fat% and Prot%, but for MY, FY and PY, the Leg(m) was the appropriate function. Genetic correlations of MY with FY and PY were high and they were moderately negative with Fat% and Prot%. To prevent deterioration in Fat% and Prot% and improve milk quality, more weight should be applied to milk component traits.
机译:牛奶生产性状的遗传力和遗传相关性是从1022头菲律宾奶牛的头胎测试日记录中估算得出的。分析的性状包括牛奶(MY),脂肪(FY)和蛋白质(PY)的产量以及脂肪(脂肪%)和蛋白质(Prot%)的浓度。随机回归模型中使用了勒让德多项式(Leg(m))和威尔明克函数(Wil)的不同阶数。根据对数似然,Akaike信息准则,贝叶斯信息准则和遗传方差估计对这些各种模型进行了比较。六个残差类别足以满足MY,FY,PY和脂肪%,而七个残差类别则适合Prot%。与所有变量的单变量分析相比,多变量分析对遗传变异和遗传力的估计更高。 MY,FY和PY的遗传力估计值分别为0.25至0.44、0.13至0.31和0.21至0.36。对于所有性状的加性遗传效应,威尔明克函数是更好的拟合函数。对于脂肪百分比和蛋白质百分比,它也是永久性环境影响的首选功能,但对于MY,FY和PY,Leg(m)是合适的功能。 MY与FY和PY的遗传相关性很高,与脂肪和蛋白质的含量呈中等程度的负相关。为了防止脂肪%和Prot%变质并改善牛奶质量,应对牛奶成分性状增加更多的重量。

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