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The effect of the number of observations used for Fourier transform infrared model calibration for bovine milk fat composition on the estimated genetic parameters of the predicted data

机译:牛乳脂肪成分的傅里叶变换红外模型校准所用观察次数对预测数据的估计遗传参数的影响

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摘要

Fourier transform infrared spectroscopy is a suitable method to determine bovine milk fat composition. However, the determination of fat composition by gas chromatography, required for calibration of the infrared prediction model, is expensive and labor intensive. It has recently been shown that the number of calibration samples is strongly related to the model's validation r~2 (i.e., accuracy of prediction). However, the effect of the number of calibration samples used, and therefore validation r~2, on the estimated genetic parameters of data predicted using the model needs to be established. To this end, 235 calibration data subsets of different sizes were sampled: n = 100, n = 250, n = 500, and n = 1,000 calibration samples. Subsequently, these data subsets were used to calibrate fat composition prediction models for 2 specific fatty acids: C16:0 and C18u (where u = unsaturated). Next, genetic parameters were estimated on predicted fat composition data for these fatty acids. Strong relationships between the number of calibration samples and validation r~2, as well as strong genetic correlations were found. However, the use of n = 100 calibration samples resulted in a broad range of validation r~2 values and genetic correlations. Subsequent increases of the number of calibration samples resulted in narrowing patterns for validation r2 as well as genetic correlations. The use of n = 1,000 calibration samples resulted in estimated genetic correlations varying within a range of 0.10 around the average, which seems acceptable. Genetic analyses for the human health-related fatty acids C14:0, C16:0, and C18u, and the ratio of saturated fatty acids to unsaturated fatty acids showed that replacing observations on fat composition determined by gas chromatography by predictions based on infrared spectra reduced the potential genetic gain to 98, 86, 96, and 99% for the 4 fatty acid traits, respectively, in dairy breeding schemes where progeny testing is practiced. We conclude thatrna relatively large number of calibration samples is required to be able to obtain genetic correlations that lie within a limited range. Considering that the routine recording of infrared spectra is relatively cheap and straightforward, we concluded that this methodology provides an excellent means for the dairy industry to genetically alter milk fat composition.
机译:傅里叶变换红外光谱是确定牛乳脂肪成分的合适方法。然而,校准红外预测模型所需的通过气相色谱法测定脂肪成分昂贵且劳动强度大。最近显示,校准样品的数量与模型的验证r〜2(即预测的准确性)密切相关。但是,需要确定使用的校准样品数量以及因此验证r〜2对使用该模型预测的数据的估计遗传参数的影响。为此,对235个不同大小的校准数据子集进行了采样:n = 100,n = 250,n = 500和n = 1,000个校准样本。随后,这些数据子集用于校准2种特定脂肪酸的脂肪成分预测模型:C16:0和C18u(其中u =不饱和)。接下来,根据这些脂肪酸的预测脂肪组成数据估算遗传参数。发现校正样品的数量与验证r〜2之间有很强的关系,并且具有很强的遗传相关性。但是,使用n = 100的校准样品会产生广泛的r〜2值验证和遗传相关性。随后,校准样品数量的增加导致验证r2和遗传相关性的模式变窄。使用n = 1,000个校准样品会导致估计的遗传相关性在平均值附近的0.10范围内变化,这似乎是可以接受的。对与人类健康相关的脂肪酸C14:0,C16:0和C18u的遗传分析以及饱和脂肪酸与不饱和脂肪酸的比率表明,通过基于红外光谱的预测取代了气相色谱法测定脂肪组成的观察结果在进行后代检测的奶牛育种方案中,这四个脂肪酸性状的潜在遗传增益分别达到98%,86%,96%和99%。我们得出结论,需要相对大量的校准样品才能获得位于有限范围内的遗传相关性。考虑到红外光谱的常规记录相对便宜且直接,我们得出结论,该方法为乳品行业遗传改变乳脂成分提供了极好的方法。

著录项

  • 来源
    《Journal of dairy science》 |2010年第10期|p.4872-4882|共11页
  • 作者单位

    Animal Breeding and Genomics Centre, Wageningen University, PO Box 338, 6700 AH Wageningen, the Netherlands;

    rnAnimal Breeding and Genomics Centre, Wageningen University, PO Box 338, 6700 AH Wageningen, the Netherlands;

    rnAnimal Breeding and Genomics Centre, Wageningen University, PO Box 338, 6700 AH Wageningen, the Netherlands;

  • 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

    milk; infrared; fatty acid; genetic parameter;

    机译:牛奶;红外线;脂肪酸;遗传参数;
  • 入库时间 2022-08-17 23:24:50

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