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Using genomics to enhance selection of novel traits in North American dairy cattle

机译:利用基因组学增强北美奶牛新性状的选择

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摘要

The objectives of this paper were to briefly review progress in the genetic evaluation of novel traits in Canada and the United States, assess methods to predict selection accuracy based on cow reference populations, and illustrate how the use of indicator traits could increase genomic selection accuracy. Traits reviewed are grouped into the following categories: udder health, hoof health, other health traits, feed efficiency and methane emissions, and other novel traits. The status of activities expected to lead to national genetic evaluations is indicated for each group of traits. For traits that are more difficult to measure or expensive to collect, such as individual feed intake or immune response, the development of a cow reference population is the most effective approach. Several deterministic methods can be used to predict the reliability of genomic evaluations based on cow reference population size, trait heritability, and other population parameters. To provide an empirical validation of those methods, predicted accuracies were compared with observed accuracies for several cow reference populations and traits. Reference populations of 2,000 to 20,000 cows were created through random sampling of genotyped Holstein cows in Canada and the United States. The effects of single nucleotide polymorphisms (SNP) were estimated from those cow records, after excluding the dams of validation bulls. Bulls that were first prog- eny tested in 2013 and 2014 were then used to carry out a validation and estimate the observed accuracy of genomic selection based on those SNP effects. Over the various cow population sizes and traits considered in the study, even the best prediction methods were found, on average, to either under-evaluate observed accuracy by 0.20 or over-evaluate it by 0.22, depending on the approach used to estimate the number of independently segregating chromosome segments. In some instances, differences between observed and predicted accuracies were as large as 0.47. Indicator traits can be very useful for the selection of novel traits. To illustrate this, protein yield, body weight, and mid-infrared data were used as indicator traits for feed efficiency. Using those traits in conjunction with 5,000 cow records for dry matter intake increased the reliability of genomic predictions for young animals from 0.20 to 0.50.
机译:本文的目的是简要回顾加拿大和美国在新性状的遗传评估中的进展,评估基于奶牛参考种群预测选择准确性的方法,并说明使用指示性性状如何提高基因组选择准确性。所审查的性状分为以下几类:乳房健康,蹄类健康,其他健康性状,饲料效率和甲烷排放以及其他新颖性状。对于每组性状,指出了预期会导致国家遗传评估的活动的状况。对于难以测量或难以收集的性状,例如单个采食量或免疫反应,发展奶牛参考种群是最有效的方法。基于奶牛参考种群大小,性状遗传力和其他种群参数,可以使用几种确定性方法来预测基因组评估的可靠性。为了提供这些方法的经验验证,将几种母牛参考种群和性状的预测准确性与观察到的准确性进行了比较。通过对加拿大和美国的基因型荷斯坦奶牛进行随机抽样,建立了2,000至20,000头奶牛的参考种群。在排除验证公牛的大坝之后,根据这些母牛的记录估计了单核苷酸多态性(SNP)的影响。然后,在2013年和2014年首先对多头牛进行了检验,然后根据这些SNP效应进行了验证,并估计了观察到的基因组选择的准确性。在研究中考虑的各种奶牛种群规模和性状上,平均而言,甚至发现最佳的预测方法也可能将观测到的准确性低估0.20或过高估计0.22,具体取决于估算数量的方法独立分离的染色体片段。在某些情况下,观察到的和预测的准确性之间的差异高达0.47。指标性状对于选择新性状可能非常有用。为了说明这一点,蛋白质产量,体重和中红外数据被用作饲料效率的指示性状。将这些性状与5,000头母牛的干物质摄入量记录结合使用,可将幼小动物的基因组预测的可靠性从0.20提高到0.50。

著录项

  • 来源
    《Journal of dairy science》 |2016年第3期|2413-2427|共15页
  • 作者单位

    The Semex Alliance, Guelph, ON N1G 3Z2, Canada;

    Animal Genomics and Improvement Laboratory, Agricultural Research Service, USDA, Beltsville, MD 20705-2350;

    Animal Genomics and Improvement Laboratory, Agricultural Research Service, USDA, Beltsville, MD 20705-2350;

    The Semex Alliance, Guelph, ON N1G 3Z2, Canada,Centre for Genetic Improvement of Livestock, Department of Animal Biosciences, University of Guelph, Guelph, ON N1G 2W1, Canada;

    Department of Economic Development, Jobs, Transport and Resources, Bundoora, Victoria 3083, Australia;

    Centre for Genetic Improvement of Livestock, Department of Animal Biosciences, University of Guelph, Guelph, ON N1G 2W1, Canada,Canadian Dairy Network, Guelph, ON N1K 1E5, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    genetic evaluation; novel trait; prediction accuracy; genomics; selection;

    机译:基因评估;新奇特质预测精度;基因组学选择;
  • 入库时间 2022-08-17 23:23:23

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