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Short communication: Analytical method and amount of preservative added to milk samples may alter milk urea nitrogen measurements

机译:简短交流:添加到牛奶样品中的分析方法和防腐剂的量可能会改变牛奶尿素氮的测定

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摘要

Milk urea N (MUN) is used by dairy nutritionists and producers to monitor dietary protein intake and is indicative of N utilization in lactating dairy cows. Two experiments were conducted to explore discrepancies in MUN results provided by 3 milk processing laboratories using different methods. An additional experiment was conducted to evaluate the effect of 2-bromo-2-ni-tropropane-1, 3-diol (bronopol) on MUN analysis. In experiment 1, 10 replicates of bulk tank milk samples, collected from the Pennsylvania State University's Dairy Center over 5 consecutive days, were sent to 3 milk processing laboratories in Pennsylvania. Average MUN differed between laboratory A (14.9 ± 0.40 mg/dL; analyzed on MilkoScan 4000; Foss, Hiller0d, Denmark), laboratory B (6.5 ± 0.17 mg/dL; MilkoScan FT + 6000), and laboratory C (7.4 ± 0.36 mg/dL; MilkoScan 6000). In experiment 2, milk samples were spiked with urea at 0 (7.3 to 15.0 mg/dL, depending on the laboratory analyzing the samples), 17.2, 34.2, and 51.5 mg/dL of milk. Two 35-mL samples from each urea level were sent to the 3 laboratories used in experiment 1. Average analyzed MUN was greater than predicted (calculated for each laboratory based on the control; 0 mg of added urea): for laboratory A (23.2 vs. 21.0 mg/dL), laboratory B (18.0 vs. 13.3 mg/dL), and laboratory C (20.6 vs. 15.2 mg/dL). In experiment 3, replicated milk samples were preserved with 0 to 1.35 mg of bronopol/mL of milk and submitted to one milk processing laboratory that analyzed MUN using 2 different methods. Milk samples with increasing amounts of bronopol ranged in MUN concentration from 7.7 to 11.9 mg/dL and from 9.0 to 9.3 mg/dL when analyzed on MilkoScan 4000 or CL 10 (EuroChem, Moscow, Russia), respectively. In conclusion, measured MUN concentrations varied due to analytical procedure used by milk processing laboratories and were affected by the amount of bronopol used to preserve milk sample, when milk was analyzed using a mid-infrared analyzer. Thus, it is important to maintain consistency in milk sample preservation and analysis to ensure precision of MUN results.
机译:奶类营养学家和生产者使用牛奶尿素氮(MUN)来监测饮食中蛋白质的摄入量,并指示泌乳奶牛中氮的利用率。进行了两个实验,以探索由3个牛奶加工实验室使用不同方法提供的MUN结果之间的差异。进行了另一个实验,以评估2-溴-2-硝基-硝基丙烷-1,3-二醇(溴酚)对MUN分析的影响。在实验1中,连续5天从宾夕法尼亚州立大学乳制品中心收集了10份散装罐装牛奶样品,这些样品被送往宾夕法尼亚州的3个牛奶加工实验室。实验室A(14.9±0.40 mg / dL;在MilkoScan 4000上分析; Foss,Hiller0d,丹麦),实验室B(6.5±0.17 mg / dL; MilkoScan FT + 6000)和实验室C(7.4±0.36 mg / dL; MilkoScan 6000)。在实验2中,向牛奶样品中添加0(7.3-15.0 mg / dL,取决于实验室分析样品的尿素),17.2、34.2和51.5 mg / dL的尿素。将每种尿素水平的两个35 mL样品送至实验1中使用的3个实验室。平均分析MUN大于预期值(每个实验室根据对照计算;添加的尿素为0 mg):对于实验室A(23.2 vs 21.0 mg / dL),实验室B(18.0 vs.13.3 mg / dL)和实验室C(20.6 vs. 15.2 mg / dL)。在实验3中,将复制的牛奶样品用0至1.35 mg的bronopol / mL牛奶保存,并送至一个使用2种不同方法分析MUN的牛奶加工实验室。当在MilkoScan 4000或CL 10(EuroChem,莫斯科,俄罗斯)上进行分析时,含溴硝酚含量增加的牛奶样品的MUN浓度分别为7.7至11.9 mg / dL和9.0至9.3 mg / dL。总之,当使用中红外分析仪分析牛奶时,测得的MUN浓度因牛奶加工实验室使用的分析程序而异,并受用于保存牛奶样品的溴酚含量的影响。因此,重要的是要保持牛奶样品保存和分析的一致性,以确保MUN结果的准确性。

著录项

  • 来源
    《Journal of dairy science》 |2017年第2期|1502-1506|共5页
  • 作者单位

    Department of Animal Science, The Pennsylvania State University, University Park 16802;

    Department of Animal Science, The Pennsylvania State University, University Park 16802;

  • 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 urea nitrogen; bronopol; dairy cow;

    机译:牛奶尿素氮布罗诺波尔奶牛;
  • 入库时间 2022-08-17 23:22:46

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