综述 REVIEW

乳脂品质及其通过饲粮措施进行优化的研究进展

  • 宋欣悦 ,
  • 杨丽 ,
  • 王启瑞 ,
  • 孙小琴
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  • 西北农林科技大学动物科技学院, 杨凌 712100
宋欣悦(1996—),女,河南新乡人,硕士研究生,动物营养与饲料科学专业。E-mail:xinyues718@nwsuaf.edu.cn

收稿日期: 2022-03-08

  网络出版日期: 2022-10-17

基金资助

陕西省重点研发项目(2020NY-189)

Research Progress of Milk Fat Quality and Its Optimization through Dietary Measures

  • SONG Xinyue ,
  • YANG Li ,
  • WANG Qirui ,
  • SUN Xiaoqin
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  • College of Animal Science and Technology, Northwest A&F University, Yangling 712100, China

Received date: 2022-03-08

  Online published: 2022-10-17

摘要

乳脂是乳的重要营养指标之一,其含量和组成与乳品质和人体健康密切相关。针对乳脂的组成特点和人体健康需求,降低其中对健康不利的饱和脂肪酸含量而增加对健康有益的功能性成分含量,可以优化乳脂品质,提高乳和乳制品的质量并增加乳品附加值。改变饲养方式或饲粮组成可以方便有效地实现乳脂优化,其中以放牧或饲喂新鲜牧草最为安全有效。本文在阐述乳脂中主要功能性脂质的基础上综述了乳脂优化的目标、方式及国内外优化乳脂的主要饲粮措施,以期为国内乳脂优化或乳品质提高相关研究和生产提供参考。

本文引用格式

宋欣悦 , 杨丽 , 王启瑞 , 孙小琴 . 乳脂品质及其通过饲粮措施进行优化的研究进展[J]. 动物营养学报, 2022 , 34(9) : 5535 -5542 . DOI: 10.3969/j.issn.1006-267x.2022.09.009

Abstract

Milk fat is one of the important nutritional compounds in milk, its content and composition are closely related to quality of dairy products and human health. According to its composition characteristics and human health needs, the quality of milk fat can be improved by reducing the contents of saturated fatty acids that have negative effects on human health and increasing the contents of functional components that are beneficial to health. The quality of milk and dairy products and their added value can be increased as well. The optimization of milk fat can be easily and effectively realized by changing feeding pattern or dietary composition, among which pasture grazing and fresh forage supplementation are the most natural and effective methods. Based on the summarization of the major functional lipids in milk, this paper reviewed the milk fat optimization targets, methods and major dietary measures used to optimize milk fat at home and abroad, in order to provide reference for the research and practice related to milk fat optimization or dairy products quality improvement.

参考文献

[1] SIRI-TARINO P W, SUN Q, HU F B, et al.Saturated fat, carbohydrate, and cardiovascular disease[J].American Journal of Clinical Nutrition, 2010, 91(3):502-509.  
[2] BENBROOK C M, DAVIS D R, HEINS B J, et al.Enhancing the fatty acid profile of milk through forage-based rations, with nutrition modeling of diet outcomes[J].Food Science & Nutrition, 2018, 6(3):681-700.  
[3] TVRZICKA E, KREMMYDA L S, STANKOVA B, et al.Fatty acids as biocompounds:their role in human metabolism, health and disease-a review.Part 1:classification, dietary sources and biological functions[J].Biomedical Papers of the Medical Faculty of the University Palacky, Olomouc, Czechoslovakia, 2011, 155(2):117-130.  
[4] GÓMEZ-CORTÉS P, JUÁREZ M, DE LA FUENTE M A.Milk fatty acids and potential health benefits:an updated vision[J].Trends in Food Science & Technology, 2018, 81:1-9.
[5] MAGAN J B, O'CALLAGHAN T F, KELLY A L, et al.Compositional and functional properties of milk and dairy products derived from cows fed pasture or concentrate-based diets[J].Comprehensive Reviews in Food Science and Food Safety, 2021, 20(3):2769-2800.  
[6] ASTAKHOVA L, NGARA M, BABICH O, et al.Short chain fatty acids (SCFA) reprogram gene expression in human malignant epithelial and lymphoid cells[J].PLoS One, 2016, 11(7):e0154102.
[7] GHOSH S K, PERRINE S P, WILLIAMS R M, et al.Histone deacetylase inhibitors are potent inducers of gene expression in latent EBV and sensitize lymphoma cells to nucleoside antiviral agents[J].Blood, 2012, 119(4):1008-1017.  
[8] VERARDO V, GÓMEZ-CARAVACA A M, ARRÁEZ-ROMÁN D, et al.Recent advances in phospholipids from colostrum, milk and dairy by-products[J].International Journal of Molecular Sciences, 2017, 18(1):173.
[9] ŚREDNICKA-TOBER D, BARAÑSKI M, SEAL C J, et al.Higher PUFA and n-3 PUFA, conjugated linoleic acid, α-tocopherol and iron, but lower iodine and selenium concentrations in organic milk:a systematic literature review and meta-and redundancy analyses[J].British Journal of Nutrition, 2016, 115(6):1043-1060.  
[10] LORDAN R, TSOUPRAS A, MITRA B, et al.Dairy fats and cardiovascular disease:do we really need to be concerned?[J].Foods, 2018, 7(3):29.
[11] PALMQUIST D L, LOCK A L, SHINGFIELD K J, et al.Biosynthesis of conjugated linoleic acid in ruminants and humans[J].Advances in Food and Nutrition Research, 2005, 50:179-217.
[12] RODRÍGUEZ-ALCALÁ L M, CASTRO-GÓMEZ M P, PIMENTEL L L, et al.Milk fat components with potential anticancer activity-a review[J].Bioscience Reports, 2017, 37(6):BSR20170705.
[13] LOCK A L, BAUMAN D E.Modifying milk fat composition of dairy cows to enhance fatty acids beneficial to human health[J].Lipids, 2004, 39(12):1197-1206.  
[14] BAUMAN D E, GRIINARI J M.Regulation and nutritional manipulation of milk fat.Low-fat milk syndrome[J].Advances in Experimental Medicine and Biology, 2000, 480:209-216.
[15] BUTLER G, STERGIADIS S, SEAL C, et al.Fat composition of organic and conventional retail milk in northeast England[J].Journal of Dairy Science, 2011, 94(1):24-36.  
[16] SCHENNINK A, HECK J M L, BOVENHUIS H, et al.Milk fatty acid unsaturation:genetic parameters and effects of stearoyl-CoA desaturase (SCD1) and acyl CoA:diacylglycerol acyltransferase 1(DGAT1)[J].Journal of Dairy Science, 2008, 91(5):2135-2143.  
[17] PEGOLO S, CECCHINATO A, MELE M, et al.Effects of candidate gene polymorphisms on the detailed fatty acids profile determined by gas chromatography in bovine milk[J].Journal of Dairy Science, 2016, 99(6):4558-4573.  
[18] KHIAOSA-ARD R, KREUZER M, LEIBER F.Apparent recovery of C18 polyunsaturated fatty acids from feed in cow milk:a meta-analysis of the importance of dietary fatty acids and feeding regimens in diets without fat supplementation[J].Journal of Dairy Science, 2015, 98(9):6399-6414.  
[19] CAPUANO E, GRAVINK R, BOERRIGTER-EENLING R, et al.Fatty acid and triglycerides profiling of retail organic, conventional and pasture milk:implications for health and authenticity[J].International Dairy Journal, 2015, 42:58-63.
[20] KAY J K, ROCHE J R, KOLVER E S, et al.A comparison between feeding systems (pasture and TMR) and the effect of vitamin E supplementation on plasma and milk fatty acid profiles in dairy cows[J].Journal of Dairy Research, 2005, 72(3):322-332.  
[21] RIUZZI G, DAVIS H, LANZA I, et al.Multivariate modelling of milk fatty acid profile to discriminate the forages in dairy cows' ration[J].Scientific Reports, 2021, 11(1):23201.
[22] CHILLIARD Y, GLASSER F, FERLAY A, et al.Diet, rumen biohydrogenation and nutritional quality of cow and goat milk fat[J].European Journal of Lipid Science and Technology, 2007, 109(8):828-855.  
[23] COPPA M, CHASSAING C, FERLAY A, et al.Potential of milk fatty acid composition to predict diet composition and authenticate feeding systems and altitude origin of European bulk milk[J].Journal of Dairy Science, 2015, 98(3):1539-1551.  
[24] BAARS T, WOHLERS J, ROHRER C, et al.Patterns of biodynamic milk fatty acid composition explained by a climate-geographical approach[J].Animals, 2019, 9(3):111.
[25] MOSCOVICI JOUBRAN A, PIERCE K M, GARVEY N, et al.Invited review:a 2020 perspective on pasture-based dairy systems and products[J].Journal of Dairy Science, 2021, 104(7):7364-7382.  
[26] FERREIRO T, GAYOSO L, RODRÍGUEZ-OTERO J L.Milk phospholipids:organic milk and milk rich in conjugated linoleic acid compared with conventional milk[J].Journal of Dairy Science, 2015, 98(1):9-14.  
[27] ALOTHMAN M, HOGAN S A, HENNESSY D, et al.The"grass-fed"milk story:understanding the impact of pasture feeding on the composition and quality of bovine milk[J].Foods, 2019, 8(8):350.
[28] LEE B H, CORAZZIN M, PIASENTIER E, et al.Milk and Montasio-type cheese fatty acid composition from cows grazing on timothy and reed canarygrass pasture or fed indoor[J].Grassland Science, 2019, 65(4):226-232.  
[29] COUVREUR S, HURTAUD C, LOPEZ C, et al.The linear relationship between the proportion of fresh grass in the cow diet, milk fatty acid composition, and butter properties[J].Journal of Dairy Science, 2006, 89(6):1956-1969.  
[30] O'CALLAGHAN T F, FAULKNER H, MCAULIFFE S, et al.Quality characteristics, chemical composition, and sensory properties of butter from cows on pasture versus indoor feeding systems[J].Journal of Dairy Science, 2016, 99(12):9441-9460.  
[31] BÄR C, SUTTER M, KOPP C, et al.Impact of herbage proportion, animal breed, lactation stage and season on the fatty acid and protein composition of milk[J].International Dairy Journal, 2020, 109:104785.
[32] DHIMAN T R, ANAND G R, SATTER L D, et al.Conjugated linoleic acid content of milk from cows fed different diets[J].Journal of Dairy Science, 1999, 82(10):2146-2156.  
[33] 孙小琴.放牧奶牛乳脂肪酸组成及瘤胃脂肪酸代谢规律的研究[D].博士学位论文.杨凌:西北农林科技大学, 2012. SUN X Q.Milk fatty acid composition and rumen fatty acid metabolism of grazing dairy cows[D].Ph.D.Thesis.Yangling:Northwest A&F University, 2012.(in Chinese)
[34] STAMPA E, SCHIPMANN-SCHWARZE C, HAMM U.Consumer perceptions, preferences, and behavior regarding pasture-raised livestock products:a review[J].Food Quality and Preference, 2020, 82:103872.
[35] MITANI T, KOBAYASHI K, UEDA K, et al.Discrimination of"grazing milk"using milk fatty acid profile in the grassland dairy area in Hokkaido[J].Animal Science Journal, 2016, 87(2):233-241.  
[36] MOHAMMED R, STANTON C S, KENNELLY J J, et al.Grazing cows are more efficient than zero-grazed and grass silage-fed cows in milk rumenic acid production[J].Journal of Dairy Science, 2009, 92(8):3874-3893.  
[37] MENDOZA A, CAJARVILLE C, REPETTO J L.Short communication:intake, milk production, and milk fatty acid profile of dairy cows fed diets combining fresh forage with a total mixed ration[J].Journal of Dairy Science, 2016, 99(3):1938-1944.  
[38] 陈博.新鲜黑麦草取代粗饲料对奶山羊乳脂肪酸组成和瘤胃脂肪酸代谢的影响研究[D].硕士学位论文.杨凌:西北农林科技大学, 2016. CHEN B.Effect of replacing roughage with fresh ryegrass on milk fatty acid composition and ruminal fatty acid metabolism of dairy goats[D].Master's Thesis.Yangling:Northwest A&F University, 2016.(in Chinese)
[39] FERLAY A, MARTIN B, PRADEL P, et al.Influence of grass-based diets on milk fatty acid composition and milk lipolytic system in Tarentaise and Montbeliarde cow breeds[J].Journal of Dairy Science, 2006, 89(10):4026-4041.  
[40] SHINGFIELD K J, REYNOLDS C K, LUPOLI B, et al.Effect of forage type and proportion of concentrate in the diet on milk fatty acid composition in cows given sunflower oil and fish oil[J].Animal Science, 2005, 80(2):225-238.  
[41] HURTAUD C, DUTREUIL M, COPPA M, et al.Characterization of milk from feeding systems based on herbage or corn silage with or without flaxseed and authentication through fatty acid profile[J].Dairy Science & Technology, 2014, 94(2):103-123.  
[42] KLIEM K E, MORGAN R, HUMPHRIES D J, et al.Effect of replacing grass silage with maize silage in the diet on bovine milk fatty acid composition[J].Animal, 2008, 2(12):1850-1858.  
[43] CHILLIARD Y, FERLAY A, DOREAU M.Effect of different types of forages, animal fat or marine oils in cow's diet on milk fat secretion and composition, especially conjugated linoleic acid (CLA) and polyunsaturated fatty acids[J].Livestock Production Science, 2001, 70(1/2):31-48.
[44] NIELSEN T S, STRAARUP E M, VESTERGAARD M, et al.Effect of silage type and concentrate level on conjugated linoleic acids, trans-C18:1 isomers and fat content in milk from dairy cows[J].Reproduction, Nutrition, Development, 2006, 46(6):699-712.  
[45] SAMKOVÁ E, PEŠEK M, ŠPIČKA J, et al.The effect of feeding diets markedly differing in the proportion of grass and maize silages on bovine milk fat composition[J].Czech Journal of Animal Science, 2009, 54(3):93-100.  
[46] SCHULZ F, WESTREICHER-KRISTEN E, MOLKENTIN J, et al.Effect of replacing maize silage with red clover silage in the diet on milk fatty acid composition in cows[J].Journal of Dairy Science, 2018, 101(8):7156-7167.  
[47] STERK A, JOHANSSON B E O, TAWEEL H Z H, et al.Effects of forage type, forage to concentrate ratio, and crushed linseed supplementation on milk fatty acid profile in lactating dairy cows[J].Journal of Dairy Science, 2011, 94(12):6078-6091.  
[48] BERNARD L, SHINGFIELD K J, ROUEL J, et al.Effect of plant oils in the diet on performance and milk fatty acid composition in goats fed diets based on grass hay or maize silage[J].British Journal of Nutrition, 2009, 101(2):213-224.
[49] LERMA-REYES I, MENDOZA-MARTÍNEZ G D, ROJO-RUBIO R, et al.Influence of supplemental canola or soybean oil on milk yield, fatty acid profile and postpartum weight changes in grazing dairy goats[J].Asian-Australasian Journal of Animal Sciences, 2018, 31(2):225-229.  
[50] VAZIRIGOHAR M, DEHGHAN-BANADAKY M, REZAYAZDI K, et al.Fat source and dietary forage-to-concentrate ratio influences milk fatty-acid composition in lactating cows[J].Animal, 2014, 8(1):163-174.  
[51] LOOR J J, HERBEIN J H, JENKINS T C.Nutrient digestion, biohydrogenation, and fatty acid profiles in blood plasma and milk fat from lactating Holstein cows fed canola oil or canolamide[J].Animal Feed Science and Technology, 2002, 97(1):65-82.
[52] GIVENS D I, KLIEM K E, HUMPHRIES D J, et al.Effect of replacing calcium salts of palm oil distillate with rapeseed oil, milled or whole rapeseeds on milk fatty-acid composition in cows fed maize silage-based diets[J].Animal, 2009, 3(7):1067-1074.  
[53] HRISTOV A N, DOMITROVICH C, WACHTER A, et al.Effect of replacing solvent-extracted canola meal with high-oil traditional canola, high-oleic acid canola, or high-erucic acid rapeseed meals on rumen fermentation, digestibility, milk production, and milk fatty acid composition in lactating dairy cows[J].Journal of Dairy Science, 2011, 94(8):4057-4074.  
[54] CHILLIARD Y, MARTIN C, ROUEL J, et al.Milk fatty acids in dairy cows fed whole crude linseed, extruded linseed, or linseed oil, and their relationship with methane output[J].Journal of Dairy Science, 2009, 92(10):5199-5211.  
[55] SULTANA H, ISHIDA T, SHINTAKU T, et al.Effect of feeding Ca-salts of fatty acids from soybean oil and linseed oil on c9, t11-CLA production in ruminal fluid and milk of Holstein dairy cows[J].Asian-Australasian Journal of Animal Sciences, 2008, 21(9):1262-1270.  
[56] SHINGFIELD K J, REYNOLDS C K, HERVÁS G, et al.Examination of the persistency of milk fatty acid composition responses to fish oil and sunflower oil in the diet of dairy cows[J].Journal of Dairy Science, 2006, 89(2):714-732.  
[57] THANH L P, SUKSOMBAT W.Milk yield, composition, and fatty acid profile in dairy cows fed a high-concentrate diet blended with oil mixtures rich in polyunsaturated fatty acids[J].Asian-Australasian Journal of Animal Sciences, 2015, 28(6):796-806.  
[58] FRANKLIN S T, MARTIN K R, BAER R J, et al.Dietary marine algae (Schizochytrium sp.) increases concentrations of conjugated linoleic, docosahexaenoic and transvaccenic acids in milk of dairy cows[J].The Journal of Nutrition, 1999, 129(11):2048-2054.  
[59] WELD K A, ARMENTANO L E.The effects of adding fat to diets of lactating dairy cows on total-tract neutral detergent fiber digestibility:a meta-analysis[J].Journal of Dairy Science, 2017, 100(3):1766-1779.  
[60] BOUGOUIN A, MARTIN C, DOREAU M, et al.Effects of starch-rich or lipid-supplemented diets that induce milk fat depression on rumen biohydrogenation of fatty acids and methanogenesis in lactating dairy cows[J].Animal, 2019, 13(7):1421-1431.  
[61] TORAL P G, BERNARD L, BELENGUER A, et al.Comparison of ruminal lipid metabolism in dairy cows and goats fed diets supplemented with starch, plant oil, or fish oil[J].Journal of Dairy Science, 2016, 99(1):301-316.  
[62] MEIGNAN T, LECHARTIER C, CHESNEAU G, et al.Effects of feeding extruded linseed on production performance and milk fatty acid profile in dairy cows:a meta-analysis[J].Journal of Dairy Science, 2017, 100(6):4394-4408.  
[63] KLIEM K E, REYNOLDS C K, HUMPHRIES D J, et al.Incremental effect of a calcium salt of cis-monounsaturated fatty acids supplement on milk fatty acid composition in cows fed maize silage-based diets[J].Journal of Dairy Science, 2013, 96(5):3211-3221.  
[64] KLIEM K E, HUMPHRIES D J, GRANDISON A S, et al.Effect of a whey protein and rapeseed oil gel feed supplement on milk fatty acid composition of Holstein cows[J].Journal of Dairy Science, 2019, 102(1):288-300.  
[65] BRITO A F, PETIT H V, PEREIRA A B D, et al.Interactions of corn meal or molasses with a soybean-sunflower meal mix or flaxseed meal on production, milk fatty acid composition, and nutrient utilization in dairy cows fed grass hay-based diets[J].Journal of Dairy Science, 2015, 98(1):443-457.  
[66] RAZZAGHI A, VALIZADEH R, GHAFFARI M H, et al.Liquid molasses interacts with buffers to affect ruminal fermentation, milk fatty acid profile, and milk fat synthesis in dairy cows fed high-concentrate diets[J].Journal of Dairy Science, 2020, 103(5):4327-4339.  
[67] DE NAZARÉ SANTOS TORRES R, BERTOCO J P A, DE ARRUDA M C G, et al.Meta-analysis to evaluate the effect of including molasses in the diet for dairy cows on performance, milk fat synthesis and milk fatty acid[J].Livestock Science, 2021, 250:104551.
[68] 魏冉月.蔗糖和乳糖部分取代饲粮玉米影响奶牛乳脂合成的效果及机制研究[D].硕士学位论文.杨凌:西北农林科技大学, 2018. WEI R Y.Effect and mechanism of partially substituting dietary corn grain with sucrose and lactose on milk fat synthesis of dairy cows[D].Master's Thesis.Yangling:Northwest A&F University, 2018.(in Chinese)
[69] KICZOROWSKA B, SAMOLIŃSKA W, MARCZUK J, et al.Comparative effects of organic, traditional, and intensive production with probiotics on the fatty acid profile of cow's milk[J].Journal of Food Composition and Analysis, 2017, 63:157-163.
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