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首页> 外文期刊>Small Ruminant Research >Inheritance, genetic correlation and cluster analyses of fecal egg count, packed cell volume and body weight in different ages using random regression model in Santa Ines sheep
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Inheritance, genetic correlation and cluster analyses of fecal egg count, packed cell volume and body weight in different ages using random regression model in Santa Ines sheep

机译:在Santa Ines绵羊中随机回归模型在不同年龄的粪便蛋计数,包装细胞体积和体重的遗传,遗传相关和聚类分析

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摘要

The objectives of this study were to estimate the genetic parameters for body weight (BW), packed cell volume (PCV) and fecal egg count (FEC) in Santa Ines sheep using random regression models in order to indicate which traits could be used as selection criteria and to explore the additive genetic pattern of the animals using cluster analysis in order to select animals that attend the breeding goals. The dataset had 4608 records. The covariance components for traits were estimated using the restricted maximum likelihood (REML) method, by means of single trait random regression models. The cluster analyzes was performed in the software R. The random regression models using Legendre polynomial with 3 parameters (intercept, linear and quadratic) to model the genetic additive effect and permanent environment presented the best fit for the three traits. Heritability estimates for BW ranged from 0.02 (0.02) to 0.40 (0.03). The selection of these animals for PCV and FEC would result in low efficiency due to the low estimates of heritability (0.01 +/- 0.01-0.18 +/- 0.02). Through of the non-hierarchical cluster analysis, only one group presented a genetic profile indicated for selection. It is recommended the selection of animals based on BW (h(2) = 0.12 +/- 0.05) and PCV (h(2) = 0.18 +/- 0.03) from 180 days of age, because although the low heritability estimate, the obtained gains will be permanent.
机译:本研究的目的是使用随机回归模型来估计Santa Ines绵羊中体重(BW),包装细胞体积(PCV)和粪便蛋数(FEC)的遗传参数,以指示可以使用哪种特征作为选择使用聚类分析探索动物的添加剂遗传模式,以选择参加育种目标的动物。数据集有4608条记录。使用限制的最大似然(REML)方法估计特征的协方差分量,通过单个特征随机回归模型估计。在软件R中进行群集分析。使用具有3个参数(截距,线性和二次)的随机回归模型来模拟遗传添加剂效果和永久性环境对三个特征的最佳拟合。 BW的遗传性估算范围为0.02(0.02)至0.40(0.03)。由于遗传性估计的低估计值(0.01 +/- 0.01-0.18 +/- 0.02),为PCV和FEC选择这些动物的选择会导致低效率。通过非分层聚类分析,只有一组呈现出用于选择的遗传分布。建议从180天的BW(H(2)= 0.12 +/- 0.05)和PCV(H(2)= 0.18 +/- 0.05)选择动物的选择,因为虽然遗传性低估了,但是获得的收益将是永久性的。

著录项

  • 来源
    《Small Ruminant Research》 |2019年第2019期|共5页
  • 作者单位

    Univ Estadual Paulista Fac Ciencias Agr &

    Vet Via Acesso Prof Paulo Donato Castellane S-N BR-14884900 Jaboticabal SP Brazil;

    Inst Zootecnia Ctr APTA Bovinos Corte Rodovia Carlos Tonani Km 94 BR-14174000 Sertaozinho SP Brazil;

    Univ Sao Paulo Fac Med Ribeirao Preto Dept Genet BR-14049900 Ribeirao Preto SP Brazil;

    Inst Zootecnia Ctr APTA Bovinos Corte Rodovia Carlos Tonani Km 94 BR-14174000 Sertaozinho SP Brazil;

    Univ Estadual Paulista Fac Ciencias Agr &

    Vet Via Acesso Prof Paulo Donato Castellane S-N BR-14884900 Jaboticabal SP Brazil;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 动物学;
  • 关键词

    Breeding value; Hair sheep; Multivariate analyses; Ovis aries;

    机译:繁殖价值;头发绵羊;多变量分析;卵羊白羊座;

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