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Comparison between direct and indirect methods for exploiting Fourier transform spectral information in estimation of breeding values for fine composition and technological properties of milk

机译:直接和间接利用傅立叶变换光谱信息估算奶的优良成分和技术特性的育种值的方法的比较

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摘要

The aim of this study was to compare the common method of exploiting infrared spectral data in animal breeding; that is, estimating the breeding values for the traits predicted by infrared spectroscopy, and an alternative approach based on the direct use of spectral information (direct prediction, DP) to predict the es-timated breeding values (EBV). Traits were pH, milk coagulation properties, contents of the main casein and whey protein fractions, cheese yield measured by micro-cheese making, lactoferrin, Ca, and fat compo-sition. For the DP method, the number of spectral variables was reduced by principal components analysis to 8 latent traits that explained 99% of the original spectral variation. Restricted maximum likelihood was used to estimate variance components of the latent traits. (Co)variance components of the original spectral traits were obtained by back-transformation and EBV of all derived milk traits were then predicted as traits correlated with the genetic information of the spectra. The rank correlation between the EBV obtained for the infrared-predicted traits and those obtained from the DP method was variable across traits. Rank cor-relations ranged from 0.07 (for the content of saturated fatty acids expressed as g/100 g of fat) to 0.96 (for dry matter cheese yield, %) and, for most traits, was <0.5. This result can be explained by the nature of the principal components analysis: it does not take into account the covariance between the spectral variables and the reference traits but produces latent traits that maximize the spectral variance explained. Thus, the direct approach is more likely to be effective for traits more related to the main sources of spectral variation (i.e., protein and fat). More research is required to study spectral genetic variation and to determine the best way to choose spectral regions and the type and number of considered latent traits for potential applica-tions.
机译:本研究的目的是比较在动物育种中利用红外光谱数据的常用方法。也就是说,估计通过红外光谱法预测的性状的育种值,以及基于直接使用光谱信息(直接预测,DP)来预测估计的育种值(EBV)的替代方法。性状包括pH值,牛奶凝结特性,酪蛋白和乳清蛋白主要成分的含量,通过微奶酪制作,乳铁蛋白,钙和脂肪成分测定的奶酪产量。对于DP方法,通过主成分分析将光谱变量的数量减少为8个潜在特征,这些潜在特征解释了原始光谱变化的99%。受限制的最大似然用于估计潜在性状的方差成分。通过逆变换获得原始光谱特征的(协)方差分量,然后将所有衍生乳特征的EBV预测为与光谱的遗传信息相关的特征。红外预测性状获得的EBV与DP方法获得的EBV之间的等级相关因性状而异。等级相关性介于0.07(对于以g / 100 g脂肪表示的饱和脂肪酸含量)至0.96(对于干物质奶酪产量,%),并且对于大多数特征而言,均<0.5。该结果可以用主成分分析的性质来解释:它不考虑光谱变量和参考特征之间的协方差,而是产生使所解释的光谱变异最大化的潜在特征。因此,对于与光谱变化的主要来源(即蛋白质和脂肪)更相关的性状,直接方法更可能有效。需要更多的研究来研究光谱遗传变异,并确定选择光谱区域以及潜在应用的潜在特征的类型和数量的最佳方法。

著录项

  • 来源
    《Journal of dairy science》 |2017年第3期|2057-2067|共11页
  • 作者单位

    Department of Comparative Biomedicine and Food Science (BCA), University of Padova, 35020, Legnaro, Italy;

    Italian Simmental Cattle Breeders Association (ANAPRI), 33100, Udine, Italy;

    Italian Simmental Cattle Breeders Association (ANAPRI), 33100, Udine, Italy;

    Friuli Venezia Giulia Milk Recording Agency (AAFVG), 33033, Codroipo, Italy;

    Department of Comparative Biomedicine and Food Science (BCA), University of Padova, 35020, Legnaro, Italy;

  • 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

    infrared spectroscopy; fatty acid; protein fraction; breeding value;

    机译:红外光谱脂肪酸;蛋白质部分育种价值;
  • 入库时间 2022-08-17 23:22:51

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