Saman Lashkari, Farhad M. Panah, Martin R. Weisbjerg, Søren K. Jensen
{"title":"奶牛瘤胃中RRR-α-生育酚的形成及肠道中生育酚的消化率","authors":"Saman Lashkari, Farhad M. Panah, Martin R. Weisbjerg, Søren K. Jensen","doi":"10.1016/j.aninu.2023.07.007","DOIUrl":null,"url":null,"abstract":"<div><p>Tocopherol sources in diets are often a combination of <em>all-rac</em>-α-tocopheryl acetate (synthetic α-tocopherol) from vitamin supplements and natural tocopherols and 2R-(4′R, 8′R)-5,7,8-trimethyltocotrienol (α-tocotrienols) from the feed sources. Synthetic α-tocopherol consists of 8 different stereoisomers including 2R-(4′R, 8′R)-5,7,8-trimethyltocol (<em>RRR</em>-α-tocopherol), 2R-(4′S, 8′R)-5,7,8-trimethyltocol (<em>RSR</em>-α-tocopherol), 2R-(4′R, 8′S)-5,7,8-trimethyltocol (<em>RRS</em>-α-tocopherol), 2R-(4′S, 8′S)-5,7,8-trimethyltocol (<em>RSS</em>-α-tocopherol), 2S-(4′S, 8′S)-5,7,8-trimethyltocol (<em>SSS</em>-α-tocopherol), 2S-(4′R, 8′S)-5,7,8-trimethyltocol (<em>SRS</em>-α-tocopherol), 2S-(4′S, 8′R)-5,7,8-trimethyltocol (<em>SSR</em>-α-tocopherol), and 2S-(4′R, 8′R)-5,7,8-trimethyltocol (<em>SRR</em>-α-tocopherol). The pre-absorption metabolism of tocopherols and tocotrienols in ruminants differs from monogastric animals due to the extensive microbial fermentation in the anaerobic rumen. The current study investigated the impact of toasting and decortication of oats on metabolism in the digestive tract (synthesis, digestion), and intestinal digestibility of tocopherols in dairy cows by using 4 ruminal and intestinal cannulated Danish Holstein cows in a 4 × 4 Latin square design for 4 periods. Cows were fed a total mixed ration ad libitum containing different forms of oats: whole oat, decorticated oat, toasted oat, and decorticated toasted oat, all rolled before mixed ration. Overall means across 4 treatments were statistically analyzed, testing whether overall means were different from zero. Decortication or toasting did not affect the balance or digestibility of α-tocopherols in rumen. Average across treatments showed the ruminal degradation of synthetic α-tocopherol (279 mg/d, <em>P</em> = 0.02; <em>P</em>-value shows that average across treatments is different from zero), synthetic 2R-α-tocopherol (133 mg/d, <em>P</em> < 0.01; summation of <em>RRS</em>-, <em>RSR</em>- and <em>RSS</em>-α-tocopherol), and 2S-α-tocopherol (190 mg/d; <em>P</em> < 0.01, summation of <em>SSS</em>-, <em>SRS</em>-, <em>SSR</em>, and <em>SRR</em>-α-tocopherol), while <em>RRR</em>-α-tocopherol was formed in the rumen (221 mg/d, <em>P</em> = 0.10). The average across treatments showed that small intestinal digestibility of tocopherols ranked in the following order: α-tocotrienol > natural α-tocopherol > synthetic α-tocopherols > 2R-(4′R, 8′R)-,7,8-dimethyltocol (γ-tocopherol). The average across treatments for small intestinal and feed-ileum digestibility ranked in the following order: <em>RRR</em>-α-tocopherol > synthetic 2R-α-tocopherol > 2S-α-tocopherol. Results showed the first evidence for <em>RRR</em>-α-tocopherol formation under anaerobic conditions in the rumen. In addition, synthetic α-tocopherol stereoisomers, γ-tocopherol and α-tocotrienol were degraded in the rumen. There was a discrimination against absorption of synthetic 2R- and 2S-α-tocopherol in the small intestine.</p></div>","PeriodicalId":62604,"journal":{"name":"Animal Nutrition","volume":"15 ","pages":"Pages 350-363"},"PeriodicalIF":6.3000,"publicationDate":"2023-09-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S2405654523001166/pdfft?md5=06802c67ab5b6a5f7bf511fe0ba32ce1&pid=1-s2.0-S2405654523001166-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Formation of RRR-α-tocopherol in rumen and intestinal digestibility of tocopherols in dairy cows\",\"authors\":\"Saman Lashkari, Farhad M. Panah, Martin R. Weisbjerg, Søren K. Jensen\",\"doi\":\"10.1016/j.aninu.2023.07.007\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>Tocopherol sources in diets are often a combination of <em>all-rac</em>-α-tocopheryl acetate (synthetic α-tocopherol) from vitamin supplements and natural tocopherols and 2R-(4′R, 8′R)-5,7,8-trimethyltocotrienol (α-tocotrienols) from the feed sources. Synthetic α-tocopherol consists of 8 different stereoisomers including 2R-(4′R, 8′R)-5,7,8-trimethyltocol (<em>RRR</em>-α-tocopherol), 2R-(4′S, 8′R)-5,7,8-trimethyltocol (<em>RSR</em>-α-tocopherol), 2R-(4′R, 8′S)-5,7,8-trimethyltocol (<em>RRS</em>-α-tocopherol), 2R-(4′S, 8′S)-5,7,8-trimethyltocol (<em>RSS</em>-α-tocopherol), 2S-(4′S, 8′S)-5,7,8-trimethyltocol (<em>SSS</em>-α-tocopherol), 2S-(4′R, 8′S)-5,7,8-trimethyltocol (<em>SRS</em>-α-tocopherol), 2S-(4′S, 8′R)-5,7,8-trimethyltocol (<em>SSR</em>-α-tocopherol), and 2S-(4′R, 8′R)-5,7,8-trimethyltocol (<em>SRR</em>-α-tocopherol). The pre-absorption metabolism of tocopherols and tocotrienols in ruminants differs from monogastric animals due to the extensive microbial fermentation in the anaerobic rumen. The current study investigated the impact of toasting and decortication of oats on metabolism in the digestive tract (synthesis, digestion), and intestinal digestibility of tocopherols in dairy cows by using 4 ruminal and intestinal cannulated Danish Holstein cows in a 4 × 4 Latin square design for 4 periods. Cows were fed a total mixed ration ad libitum containing different forms of oats: whole oat, decorticated oat, toasted oat, and decorticated toasted oat, all rolled before mixed ration. Overall means across 4 treatments were statistically analyzed, testing whether overall means were different from zero. Decortication or toasting did not affect the balance or digestibility of α-tocopherols in rumen. Average across treatments showed the ruminal degradation of synthetic α-tocopherol (279 mg/d, <em>P</em> = 0.02; <em>P</em>-value shows that average across treatments is different from zero), synthetic 2R-α-tocopherol (133 mg/d, <em>P</em> < 0.01; summation of <em>RRS</em>-, <em>RSR</em>- and <em>RSS</em>-α-tocopherol), and 2S-α-tocopherol (190 mg/d; <em>P</em> < 0.01, summation of <em>SSS</em>-, <em>SRS</em>-, <em>SSR</em>, and <em>SRR</em>-α-tocopherol), while <em>RRR</em>-α-tocopherol was formed in the rumen (221 mg/d, <em>P</em> = 0.10). The average across treatments showed that small intestinal digestibility of tocopherols ranked in the following order: α-tocotrienol > natural α-tocopherol > synthetic α-tocopherols > 2R-(4′R, 8′R)-,7,8-dimethyltocol (γ-tocopherol). The average across treatments for small intestinal and feed-ileum digestibility ranked in the following order: <em>RRR</em>-α-tocopherol > synthetic 2R-α-tocopherol > 2S-α-tocopherol. Results showed the first evidence for <em>RRR</em>-α-tocopherol formation under anaerobic conditions in the rumen. In addition, synthetic α-tocopherol stereoisomers, γ-tocopherol and α-tocotrienol were degraded in the rumen. There was a discrimination against absorption of synthetic 2R- and 2S-α-tocopherol in the small intestine.</p></div>\",\"PeriodicalId\":62604,\"journal\":{\"name\":\"Animal Nutrition\",\"volume\":\"15 \",\"pages\":\"Pages 350-363\"},\"PeriodicalIF\":6.3000,\"publicationDate\":\"2023-09-09\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"https://www.sciencedirect.com/science/article/pii/S2405654523001166/pdfft?md5=06802c67ab5b6a5f7bf511fe0ba32ce1&pid=1-s2.0-S2405654523001166-main.pdf\",\"citationCount\":\"0\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"Animal Nutrition\",\"FirstCategoryId\":\"1091\",\"ListUrlMain\":\"https://www.sciencedirect.com/science/article/pii/S2405654523001166\",\"RegionNum\":0,\"RegionCategory\":null,\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"\",\"JCRName\":\"\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"Animal Nutrition","FirstCategoryId":"1091","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S2405654523001166","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
摘要
饲料中的生育酚来源通常是维生素补充剂中的全rac-α-生育酚乙酸酯(合成α-生育酚)、天然生育酚和饲料中的2R-(4'R, 8'R)-5,7,8-三甲基生育三烯醇(α-生育三烯醇)的组合。合成α生育酚由8种不同的立体异构体组成,其中包括2 r -(4或8或)5、7,8-trimethyltocol(存款准备金率-α生育酚),2 r -(4, 8或)5,7日8-trimethyltocol (RSR -α生育酚),2 r -(4或8)5,7日8-trimethyltocol (RRS -α生育酚),2 r -(4, 8) 5, 7日8-trimethyltocol (RSS -α生育酚),2 s -(4, 8) 5, 7日8-trimethyltocol (SSS -α生育酚),2 s -(4或8)5,7日8-trimethyltocol (SRS -α生育酚),2 s -(4, 8或)5、7,8-trimethyltocol (SSR -α生育酚),和2 s - (4),8或)5、7、8-trimethyltocol (SRR -α生育酚)。由于厌氧瘤胃中广泛的微生物发酵,反刍动物对生育酚和生育三烯醇的预吸收代谢与单胃动物不同。本试验采用4 × 4拉丁方设计,采用4期试验,研究了燕麦烘烤和去皮处理对奶牛消化道代谢(合成、消化)和肠道生育酚消化率的影响。饲喂含全燕麦、去皮燕麦、烤燕麦和去皮烤燕麦的全混合随意日粮,均在混合日粮前卷成卷。对4个处理的总均值进行统计学分析,检验总均值是否异于零。去皮和烘烤均不影响瘤胃α-生育酚的平衡和消化率。各处理平均α-生育酚瘤胃降解量为279 mg/d, P = 0.02;P值表明各处理间的平均值不为零),合成2R-α-生育酚(133 mg/d, P <0.01;RRS-、RSR-和RSS-α-生育酚的总和)和2S-α-生育酚(190 mg/d;P & lt;0.01, SSS-、SRS-、SSR和SRR-α-生育酚的总和),而RRR-α-生育酚在瘤胃中形成(221 mg/d, P = 0.10)。各处理的平均值表明,小肠对生育酚的消化率依次为:α-生育三烯醇>天然α-生育酚;合成α-生育酚;2R-(4'R, 8'R)-,7,8-二甲基苯酚(γ-生育酚)。各处理小肠消化率和饲料-回肠消化率的平均值依次为:RRR-α-生育酚>合成2R-α-生育酚;2 s -α生育酚。结果表明,在厌氧条件下瘤胃中RRR-α-生育酚的形成是第一个证据。此外,合成的α-生育酚立体异构体、γ-生育酚和α-生育三烯醇在瘤胃中被降解。小肠对合成的2R-和2S-α-生育酚的吸收存在差别。
Formation of RRR-α-tocopherol in rumen and intestinal digestibility of tocopherols in dairy cows
Tocopherol sources in diets are often a combination of all-rac-α-tocopheryl acetate (synthetic α-tocopherol) from vitamin supplements and natural tocopherols and 2R-(4′R, 8′R)-5,7,8-trimethyltocotrienol (α-tocotrienols) from the feed sources. Synthetic α-tocopherol consists of 8 different stereoisomers including 2R-(4′R, 8′R)-5,7,8-trimethyltocol (RRR-α-tocopherol), 2R-(4′S, 8′R)-5,7,8-trimethyltocol (RSR-α-tocopherol), 2R-(4′R, 8′S)-5,7,8-trimethyltocol (RRS-α-tocopherol), 2R-(4′S, 8′S)-5,7,8-trimethyltocol (RSS-α-tocopherol), 2S-(4′S, 8′S)-5,7,8-trimethyltocol (SSS-α-tocopherol), 2S-(4′R, 8′S)-5,7,8-trimethyltocol (SRS-α-tocopherol), 2S-(4′S, 8′R)-5,7,8-trimethyltocol (SSR-α-tocopherol), and 2S-(4′R, 8′R)-5,7,8-trimethyltocol (SRR-α-tocopherol). The pre-absorption metabolism of tocopherols and tocotrienols in ruminants differs from monogastric animals due to the extensive microbial fermentation in the anaerobic rumen. The current study investigated the impact of toasting and decortication of oats on metabolism in the digestive tract (synthesis, digestion), and intestinal digestibility of tocopherols in dairy cows by using 4 ruminal and intestinal cannulated Danish Holstein cows in a 4 × 4 Latin square design for 4 periods. Cows were fed a total mixed ration ad libitum containing different forms of oats: whole oat, decorticated oat, toasted oat, and decorticated toasted oat, all rolled before mixed ration. Overall means across 4 treatments were statistically analyzed, testing whether overall means were different from zero. Decortication or toasting did not affect the balance or digestibility of α-tocopherols in rumen. Average across treatments showed the ruminal degradation of synthetic α-tocopherol (279 mg/d, P = 0.02; P-value shows that average across treatments is different from zero), synthetic 2R-α-tocopherol (133 mg/d, P < 0.01; summation of RRS-, RSR- and RSS-α-tocopherol), and 2S-α-tocopherol (190 mg/d; P < 0.01, summation of SSS-, SRS-, SSR, and SRR-α-tocopherol), while RRR-α-tocopherol was formed in the rumen (221 mg/d, P = 0.10). The average across treatments showed that small intestinal digestibility of tocopherols ranked in the following order: α-tocotrienol > natural α-tocopherol > synthetic α-tocopherols > 2R-(4′R, 8′R)-,7,8-dimethyltocol (γ-tocopherol). The average across treatments for small intestinal and feed-ileum digestibility ranked in the following order: RRR-α-tocopherol > synthetic 2R-α-tocopherol > 2S-α-tocopherol. Results showed the first evidence for RRR-α-tocopherol formation under anaerobic conditions in the rumen. In addition, synthetic α-tocopherol stereoisomers, γ-tocopherol and α-tocotrienol were degraded in the rumen. There was a discrimination against absorption of synthetic 2R- and 2S-α-tocopherol in the small intestine.
期刊介绍:
Animal Nutrition encompasses the full gamut of animal nutritional sciences and reviews including, but not limited to, fundamental aspects of animal nutrition such as nutritional requirements, metabolic studies, body composition, energetics, immunology, neuroscience, microbiology, genetics and molecular and cell biology related to primarily to the nutrition of farm animals and aquatic species. More applied aspects of animal nutrition, such as the evaluation of novel ingredients, feed additives and feed safety will also be considered but it is expected that such studies will have a strong nutritional focus. Animal Nutrition is indexed in SCIE, PubMed Central, Scopus, DOAJ, etc.