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Multivariate factor analysis of detailed milk fatty acid profile: Effects of dairy system, feeding, herd, parity, and stage of lactation

机译:细化牛奶脂肪酸剖面的多变量因子分析:乳制品系统,喂养,畜群,奇偶阶段的影响和哺乳期

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摘要

We investigated the potential of using multivariate factor analysis to extract metabolic information from data on the quantity and quality of milk produced un- der different management systems. We collected data from individual milk samples taken from 1,158 Brown Swiss cows farmed in 85 traditional or modern herds in Trento Province (Italy). Factor analysis was carried out on 47 individual fatty acids, milk yield, and 5 com- positional milk traits (fat, protein, casein, and lactose contents, somatic cell score). According to a previous study on multivariate factor analysis, a variable was considered to be associated with a specific factor if the absolute value of its correlation with the factor was ≥0.60. The extracted factors were representative of the following 12 groups of fatty acids or functions: de novo fatty acids, branched fatty acid-milk yield, biohydroge- nation, long-chain fatty acids, desaturation, short-chain fatty acids, milk protein and fat contents, odd fatty acids, conjugated linoleic acids, linoleic acid, udder health, and vaccelenic acid. Only 5 fatty acids showed small correlations with these groups. Factor analysis suggested the existence of differences in the metabolic pathways for de novo short- and medium-chain fatty acids and Δ9-desaturase products. An ANOVA of factor scores highlighted significant effects of the dairy farm- ing system (traditional or modern), season, herd/date, parity, and days in milk. Factor behavior across levels of fixed factors was consistent with current knowledge. For example, compared with cows farmed in modern herds, those in traditional herds had higher scores for branched fatty acids, which were inversely associated with milk yield; primiparous cows had lower scores than older cows for de novo fatty acids, probably due to a larger contribution of lipids mobilized from bodyudReceived May 12, 2016.udAccepted August 8, 2016.ud1 Corresponding author: alessio.cecchinato@unipd.ituddepots on milk fat yield. The statistical approach al- lowed us to reduce a large number of variables to a few latent factors with biological meaning and able to rep- resent groups of fatty acids with a common origin and function. Multivariate factor analysis would therefore be a valuable tool for studying the influence of different production environments and individual animal factors on milk fatty acid composition, and for developing nu- tritional strategies able to manipulate the milk fatty acid profile according to consumer demand.
机译:我们调查使用多变量因子分析提取的数量和牛奶质量数据代谢信息出品非德不同的管理系统的潜力。我们收集了从个别牛奶样品来自特兰托省85只传统或现代的牛群(意大利)养殖1,158瑞士褐牛获取的数据。因子分析在47种个体脂肪酸,产奶量,和5个COM的位置乳性状(脂肪,蛋白质,酪蛋白和乳糖含量,体细胞评分)进行。根据多变量因素分析先前的研究中,一个变量被认为是与特定因素相关,如果其与要素相关的绝对值为≥0.60。所提取的因素为代表下列12组的脂肪酸或功能的:从头脂肪酸,支链脂肪酸产奶量,biohydroge-民族,长链脂肪酸,饱和短链脂肪酸,牛乳蛋白质以及脂肪内容,奇数脂肪酸,共轭亚油酸,亚油酸,乳房健康,和vaccelenic酸。只有5脂肪酸显示与这些团体小的相关性。因子分析表明的在从头短期和中链脂肪酸和Δ9去饱和酶产物的代谢途径的差异的存在。因子得分的方差分析(传统或现代),季节,牧/日,奇偶校验和天牛奶强调乳品场 - ING系统的显著影响。跨越的固定因素水平因子行为不符合当前的知识是一致的。例如,对于在现代牛群养殖牛相比,那些在传统的猪群具有较高的分数,支链脂肪酸,后者呈负与产奶量相关联;初产母牛有分数比旧奶牛从头脂肪酸较低,可能是由于脂质的较大贡献从身体 udReceived 5月12日,2016年 udAccepted 8月8日,2016年 UD1动员通讯作者:alessio.cecchinato@unipd。它 uddepots对乳脂产量。统计方法AL-lowed我们减少了大量的变量与一个共同的起源和功能的生物学意义,并能脂肪酸REP-重发集团的几个潜在因素。因此,多变量因子分析将是研究不同的生产环境和牛奶脂肪酸组成动物个体因素的影响,并制定能够根据消费者的需求脂肪操纵牛奶酸轮廓NU-tritional战略的宝贵工具。

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