Temporal changes in plasma and milk lipids in response to an esophageal bolus of rumen-protected fish oil in lactating Holstein dairy cows

IF 4.2 2区 农林科学 Q1 AGRICULTURE, DAIRY & ANIMAL SCIENCE Animal Pub Date : 2025-02-01 Epub Date: 2024-11-21 DOI:10.1016/j.animal.2024.101381
J.E. Rico , V. Sáinz de la Maza-Escolà , N.D. Senevirathne , P. Deme , N.J. Haughey , R. Gervais , J.W. McFadden
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Abstract

Feeding very-long-chain omega-3 (VLC n-3) fatty acids (FA), which are found in fish oil, may have beneficial effects on health, fertility, and milk production in the dairy cow. Rumen-protected technologies aim to prevent the ruminal biohydrogenation of VLC n-3 FA. To test the effects of these technologies on circulating FA and phospholipid concentrations, and milk FA concentrations, six mid-lactation, multiparous, pregnant Holstein dairy cows (mean ± SD: 155 ± 19 days in milk; 3.0 ± 0.5 body condition score; 3.2 ± 1.1 lactations; 644 ± 23 kg BW) were randomly assigned to treatments in a study with a replicated 3 × 3 Latin Square design. Cows were unsupplemented (control) or supplemented with a single esophageal bolus of a gelatin capsule containing a fish oil product coated in palm oil triglycerides or modified starch (TAG and STR, respectively). The provision of either fish oil product provided 10 g equivalent of VLC n-3 FA including 20:5 n-3 and 22:6 n-3. Cows were fed a total mixed ration to meet or exceed nutrient requirements and were milked thrice daily. Blood was sampled at 0, 2, 4, 6, 8, 10, 12, 16, 18, 20, 24, and 36 h, relative to bolus administration. A 7-d washout period was utilized between each bolus delivery. Extracted plasma was analyzed for individual FA and phospholipid concentrations using gas chromatography and mass spectrometry. Separated milk fat was analyzed for individual milk FA using gas–liquid chromatography and a flame-ionization detector. Data were analyzed under a mixed model with the random effect of cow, and the fixed effects of treatment, hour, and period. Plasma concentrations of 20:5 n-3 and 22:6 n-3 increased over time by TAG and STR, relative to control. Plasma concentrations of lysophophatidylcholine-20:5, −22:5 and −22:6, and phosphatidylcholine (PC)-38:5 and −38:6 were higher in TAG and STR by h 10, relative to control. Plasma PC-40:5 and −40:6 concentrations were greater in cows administered STR by h 10, relative to TAG. Total milk n-3 increased over time in treated cows compared to control. We conclude that triglyceride- or starch-encapsulated fish oil increases the plasma and milk concentrations of VLC n-3 FA and phospholipids containing these acyl chains in lactating cows.
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哺乳期荷斯坦奶牛食道注射保护瘤胃鱼油后血浆和乳脂质的变化
食用鱼油中的超长链omega-3脂肪酸(VLC n-3)可能对奶牛的健康、生育能力和产奶量有有益的影响。瘤胃保护技术旨在防止VLC n- 3fa的瘤胃生物氢化。为了测试这些技术对循环FA、磷脂浓度和乳FA浓度的影响,6头泌乳中期、多产、怀孕的荷斯坦奶牛(平均±SD: 155±19 d;3.0±0.5体况评分;泌乳3.2±1.1次;644±23 kg体重,随机分配至不同处理,采用重复的3 × 3拉丁方设计。奶牛不被补充(对照组),或被补充单个食管丸明胶胶囊,明胶胶囊含有涂有棕榈油甘油三酯或变性淀粉的鱼油产品(分别为TAG和STR)。每一种鱼油产品均提供10 g等量的VLC n-3脂肪酸,包括20:5 n-3和22:6 n-3。饲喂满足或超过营养要求的全混合日粮,每日挤奶3次。相对于给药时间,在0、2、4、6、8、10、12、16、18、20、24和36小时采血。每次给药之间有7天的洗脱期。提取的血浆用气相色谱和质谱分析单个FA和磷脂浓度。采用气液色谱法和火焰电离检测器对分离的乳脂进行了分析。采用混合模型对数据进行分析,该模型考虑了奶牛的随机效应,以及处理、时间和周期的固定效应。血浆20:5 n-3和22:6 n-3浓度随时间的推移而升高。与对照组相比,TAG和STR患者血浆溶血磷脂酰胆碱-20:5、- 22:5和- 22:6以及磷脂酰胆碱(PC)-38:5和- 38:6浓度升高10 h。与TAG相比,10 h STR组的血浆PC-40:5和- 40:6浓度更高。与对照组相比,经过治疗的奶牛的总乳氮-3含量随着时间的推移而增加。我们得出结论,甘油三酯或淀粉包封的鱼油增加了乳牛血浆和牛奶中VLC n- 3fa和含有这些酰基链的磷脂的浓度。
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来源期刊
Animal
Animal 农林科学-奶制品与动物科学
CiteScore
7.50
自引率
2.80%
发文量
246
审稿时长
3 months
期刊介绍: Editorial board animal attracts the best research in animal biology and animal systems from across the spectrum of the agricultural, biomedical, and environmental sciences. It is the central element in an exciting collaboration between the British Society of Animal Science (BSAS), Institut National de la Recherche Agronomique (INRA) and the European Federation of Animal Science (EAAP) and represents a merging of three scientific journals: Animal Science; Animal Research; Reproduction, Nutrition, Development. animal publishes original cutting-edge research, ''hot'' topics and horizon-scanning reviews on animal-related aspects of the life sciences at the molecular, cellular, organ, whole animal and production system levels. The main subject areas include: breeding and genetics; nutrition; physiology and functional biology of systems; behaviour, health and welfare; farming systems, environmental impact and climate change; product quality, human health and well-being. Animal models and papers dealing with the integration of research between these topics and their impact on the environment and people are particularly welcome.
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