Browse > Article
http://dx.doi.org/10.5851/kosfa.2021.e73

Fatty Acid Composition of Grain- and Grass-Fed Beef and Their Nutritional Value and Health Implication  

Kim, Margarette C. Nogoy (Department of Animal Science, Chungbuk National University)
Sun, Bin (Engineering Research Center of North-East Cold Region Beef Cattle Science & Technology Innovation, Ministry of Education, Department of Animal Science, Yanbian University)
Shin, Sangeun (Department of Animal Science, Chungbuk National University)
Lee, Yeonwoo (Department of Animal Science, Chungbuk National University)
Li, Xiang Zi (Engineering Research Center of North-East Cold Region Beef Cattle Science & Technology Innovation, Ministry of Education, Department of Animal Science, Yanbian University)
Choi, Seong Ho (Department of Animal Science, Chungbuk National University)
Park, Sungkwon (Department of Food Science and Biotechnology, Sejong University)
Publication Information
Food Science of Animal Resources / v.42, no.1, 2022 , pp. 18-33 More about this Journal
Abstract
Beef contains functional fatty acids such as conjugated linoleic acid and longchain fatty acids. This review summarizes results from studies comparing the fatty acid composition of beef from cattle fed either grass or grain-based feed. Since functional lipid components are contributed through dietary consumption of beef, the fatty acid composition is reported on mg/100 g of meat basis rather than on a percentage of total fat basis. Beef from grass-fed contains lesser total fat than that from grain-fed in all breeds of cattle. Reduced total fat content also influences the fatty acid composition of beef. A 100 g beef meat from grass-fed cattle contained 2,773 mg less total saturated fatty acids (SFA) than that from the same amount of grain-fed. Grass-fed also showed a more favorable SFA lipid profile containing less cholesterol-raising fatty acids (C12:0 to C16:0) but contained a lesser amount of cholesterol-lowering C18:0 than grain-fed beef. In terms of essential fatty acids, grass-fed beef showed greater levels of trans-vaccenic acid and long-chain n-3 polyunsaturated fatty acids (PUFA; EPA, DPA, DHA) than grain-fed beef. Grass-fed beef also contains an increased level of total n-3 PUFA which reduced the n-6 to n-3 ratio thus can offer more health benefits than grain-fed. The findings signify that grass-fed beef could exert protective effects against a number of diseases ranging from cancer to cardiovascular disease (CVD) as evidenced by the increased functional omega-3 PUFA and decreased undesirable SFA. Although grain-fed beef showed lesser EPA, DPA, and DHA, consumers should be aware that greater portions of grain-fed beef could also achieve a similar dietary intake of long-chain omega-3 fatty acids. Noteworthy, grain-fed beef contained higher total monounsaturated fatty acid that have beneficial roles in the amelioration of CVD risks than grass-fed beef. In Hanwoo beef, grain-fed showed higher EPA and DHA than grass-fed beef.
Keywords
beef; fatty acids; health; grain; grass;
Citations & Related Records
Times Cited By KSCI : 3  (Citation Analysis)
연도 인용수 순위
1 Zong G, Li Y, Wanders AJ, Alssema M, Zock PL, Willett WC, Hu FB, Sun Q. 2016. Intake of individual saturated fatty acids and risk of coronary heart disease in US men and women: Two prospective longitudinal cohort studies. BMJ 355:i5796.   DOI
2 Alfaia CPM, Alves SP, Martins SIV, Costa ASH, Fontes CMGA, Lemos JPC, Bessa RJB, Prates JAM. 2009. Effect of the feeding system on intramuscular fatty acids and conjugated linoleic acid isomers of beef cattle, with emphasis on their nutritional value and discriminatory ability. Food Chem 114:939-946.   DOI
3 Briggs MA, Petersen KS, Kris-Etherton PM. 2017. Saturated fatty acids and cardiovascular disease: Replacements for saturated fat to reduce cardiovascular risk. Healthcare 5:29.
4 Chowdhury R, Warnakula S, Kunutsor S, Crowe F, Ward HA, Johnson L, Franco OH, Butterworth AS, Forouhi NG, Thompson SG, Khaw KT, Mozaffarian D, Danesh J, Di Angelantonio E. 2014. Association of dietary, circulating, and supplement fatty acids with coronary risk: A systematic review and meta-analysis. Ann Intern Med 160:398-406.   DOI
5 Chung KY, Chang SS, Lee EM, Kim HJ, Park BH, Kwon EG. 2015. Effects of high energy diet on growth performance, carcass characteristics, and blood constituents of final fattening Hanwoo steers. Korean J Agric Sci 42:261-268.   DOI
6 Chung KY, Lee SH, Cho SH, Kwon EG, Lee JH. 2018. Current situation and future prospects for beef production in South Korea: A review. Asian-Australas J Anim Sci 31:951-960.   DOI
7 Chung KY, Lunt DK, Kawachi H, Yano H, Smith SB. 2007. Lipogenesis and stearoyl-CoA desaturase gene expression and enzyme activity in adipose tissue of short- and long-fed Angus and Wagyu steers fed corn- or hay-based diets. J Anim Sci 85:380-387.   DOI
8 Hunter JE, Zhang J, Kris-Etherton PM. 2010. Cardiovascular disease risk of dietary stearic acid compared with trans, other saturated, and unsaturated fatty acids: A systematic review. Am J Clin Nutr 91:46-63.   DOI
9 Duckett SK, Wagner DG, Yates LD, Dolezal HG, May SG. 1993. Effects of time on feed on beef nutrient composition. J Anim Sci 71:2079-2088.   DOI
10 Hammad S, Pu S, Jones PJ. 2016. Current evidence supporting the link between dietary fatty acids and cardiovascular disease. Lipids 51:507-517.   DOI
11 Hwang YH, Joo ST. 2017. Fatty acid profiles, meat quality, and sensory palatability of grain-fed and grass-fed beef from Hanwoo, American, and Australian crossbred cattle. Korean J Food Sci Anim Resour 37:153-161.   DOI
12 Micha R, Mozaffarian D. 2010. Saturated fat and cardiometabolic risk factors, coronary heart disease, stroke, and diabetes: A fresh look at the evidence. Lipids 45:893-905.   DOI
13 Greenwood PL, Gardner GE, Ferguson DM. 2018. Current situation and future prospects for the Australian beef industry: A review. Asian-Australas J Anim Sci 31:992-1006.   DOI
14 Garcia PT, Pensel NA, Sancho AM, Latimori NJ, Kloster AM, Amigone MA, Casal JJ. 2008. Beef lipids in relation to animal breed and nutrition in Argentina. Meat Sci 79:500-508.   DOI
15 Hwang YH, Joo ST. 2016. Fatty acid profiles of ten muscles from high and low marbled (quality grade 1++ and 2) Hanwoo steers. Korean J Food Sci Anim Resour 36:679-688.   DOI
16 Kris-Etherton PM. 1999. Monounsaturated fatty acids and risk of cardiovascular disease. Circulation 100:1253-1258.   DOI
17 Listrat A, Gagaoua M, Andueza D, Gruffat D, Normand J, Mairessec G, Picard B, Hocquettea JF. 2020. What are the drivers of beef sensory quality using metadata of intramuscular connective tissue, fatty acids and muscle fiber characteristics? Livest Sci 240:104209.   DOI
18 Pitchford WS, Deland MPB, Siebert BD, Malau-Aduli AEO, Bottema CDK. 2002. Genetic variation in fatness and fatty acid composition of crossbred cattle. J Anim Sci 80:2825-2832.   DOI
19 Realini CE, Duckett SK, Windham WR. 2004. Effect of vitamin C addition to ground beef from grass-fed or grain-fed sources on color and lipid stability, and prediction of fatty acid composition by near-infrared reflectance analysis. Meat Sci 68:35-43.   DOI
20 Pethick DW, Harper GS, Oddy VH. 2001. Growth, development and nutritional manipulation of marbling in cattle. Aust J Exp Agric 44:705-715.   DOI
21 Ponnampalam EN, Mann NJ, Sinclair AJ. 2006. Effect of feeding systems on omega-3 fatty acids, conjugated linoleic acid and trans fatty acids in Australian beef cuts: Potential impact on human health. Asia Pac J Clin Nutr 15:21-29.
22 Poore J, Nemecek T. 2018. Reducing food's environmental impacts through producers and consumers. Science 360:987-992.   DOI
23 Ruxton CHS, Reed SC, Simpson MJA, Millington KJ. 2004. The health benefits of omega-3 polyunsaturated fatty acids: A review of the evidence. J Hum Nutr Diet 17:449-459.   DOI
24 Sampath H, Ntambi JM. 2005. The fate and intermediary metabolism of stearic acid. Lipids 40:1187-1191.   DOI
25 Scollan N. 2003. Strategies for optimising the fatty acid composition of beef. Iger Innov 42-45.
26 Scollan N, Hocquette JF, Nuernberg K, Dannenberger D, Richardson I, Moloney A. 2006. Innovations in beef production systems that enhance the nutritional and health value of beef lipids and their relationship with meat quality. Meat Sci 74:17-33.   DOI
27 Simopoulos AP. 2008. The importance of the omega-6/omega-3 fatty acid ratio in cardiovascular disease and other chronic diseases. Exp Biol Med 233:674-688.   DOI
28 Or-Rashid MM, Odongo NE, McBride BW. 2007. Fatty acid composition of ruminal bacteria and protozoa, with emphasis on conjugated linoleic acid, vaccenic acid, and odd-chain and branched-chain fatty acids. J Anim Sci 85:1228-1234.   DOI
29 United States Department of Agriculture AMS [USDA-AMS]. 2009. United States standards for livestock and meat marketing claims, naturally raised claim for livestock and the meat and meat products derived from such livestock. Fed Regist 74:3541-3545.
30 Simopoulos AP. 2006. Evolutionary aspects of diet, the omega-6/omega-3 ratio and genetic variation: Nutritional implications for chronic diseases. Biomed Pharmacother 60:502-507.   DOI
31 Sitz BM, Calkins CR, Feuz DM, Umberger WJ, Eskridge KM. 2005. Consumer sensory acceptance and value of domestic, Canadian, and Australian grass-fed beef steaks. J Anim Sci 83:2863-2868.   DOI
32 Skeaff CM, Miller J. 2009. Dietary fat and coronary heart disease: Summary of evidence from prospective cohort and randomised controlled trials. Ann Nutr Metab 55:173-201.   DOI
33 Turner TD, Jensen J, Pilfold JL, Prema D, Donkor KK, Cinel B, Thompson DJ, Dugan MER, Church JS 2015. Comparison of fatty acids in beef tissues from conventional, organic and natural feeding systems in western Canada. Can J Anim Sci 95:49-58.   DOI
34 Hu FB, Stampfer MJ, Manson JE, Ascherio A, Colditz GA, Speizer FE, Hennekens CH, Willett WC. 1999. Dietary saturated fats and their food sources in relation to the risk of coronary heart disease in women. Am J Clin Nutr 70:1001-1008.   DOI
35 Duckett SK, Neel JPS, Lewis RM, Fontenot JP, Clapham WM. 2013. Effects of forage species or concentrate finishing on animal performance, carcass and meat quality. J Anim Sci 91:1454-1467.   DOI
36 Mensink RP, Zock PL, Kester ADM, Katan MB. 2003. Effects of dietary fatty acids and carbohydrates on the ratio of serum total to HDL cholesterol and on serum lipids and apolipoproteins: A meta-analysis of 60 controlled trials. Am J Clin Nutr 77:1146-1155.   DOI
37 Fukuda S, Suzuki Y, Murai M, Asanuma N, Hino T. 2006. Augmentation of vaccenate production and suppression of vaccenate biohydrogenation in cultures of mixed ruminal microbes. J Dairy Sci 89:1043-1051.   DOI
38 Jenkins TC, Wallace RJ, Moate PJ, Mosley EE. 2008. Board-invited review: Recent advances in biohydrogenation of unsaturated fatty acids within the rumen microbial ecosystem. J Anim Sci 86:397-412.   DOI
39 Lim SS, Vos T, Flaxman AD, Danaei G, Shibuya K, Adair-Rohani H, et al. 2012. A comparative risk assessment of burden of disease and injury attributable to 67 risk factors and risk factor clusters in 21 regions, 1990-2010: A systematic analysis for the Global Burden of Disease study 2010. Lancet 380:2224-2260.   DOI
40 Neel JPS, Fontenot JP, Clapham WM, Duckett SK, Felton EED, Scaglia G, Bryan WB. 2007. Effects of winter stocker growth rate and finishing system on: I. Animal performance and carcass characteristics. J Anim Sci 85:2012-2018.   DOI
41 Kien CL, Bunn JY, Stevens R, Bain J, Ikayeva O, Crain K, Koves TR, Muoio DM. 2014. Dietary intake of palmitate and oleate has broad impact on systemic and tissue lipid profiles in humans. Am J Clin Nutr 99:436-445.   DOI
42 Kucuk O, Hess BW, Ludden PA, Rule DC. 2001. Effect of forage: Concentrate ratio on ruminal digestion and duodenal flow of fatty acids in ewes. J Anim Sci 79:2233-2240.   DOI
43 Mente A, de Koning L, Shannon HS, Anand SS. 2009. A systematic review of the evidence supporting a causal link between dietary factors and coronary heart disease. Arch Intern Med 169:659-669.   DOI
44 Miller E, Kaur G, Larsen A, Loh SP, Linderborg K, Weisinger HS, Turchini GM, Cameron-Smith D, Sinclair AJ. 2013. A short-term n-3 DPA supplementation study in humans. Eur J Nutr 52:895-904.   DOI
45 Calder PC, Dangour AD, Diekman C, Eilander A, Koletzko B, Meijer GW, Mozaffarian D, Niinikoski H, Osendarp SJM, Pietinen P, Schuit J, Uauy R. 2010. Essential fats for future health. Proceedings of the 9th Unilever Nutrition Symposium, 26-27 May 2010. Eur J Clin Nutr 64:S1-S13.
46 Mensink RP. 2005. Effects of stearic acid on plasma lipid and lipoproteins in humans. Lipids 40:1201-1205.   DOI
47 Mensink RP, World Health Organization. 2016. Effects of saturated fatty acids on serum lipids and lipoproteins: A systematic review and regression analysis. World Health Organization, Geneva, Switzerland.
48 Ministry for Food, Agriculture, Forestry, and Fisheries [MFAFF]. 2007. Processing standard for meat products act, grading, fabrication and cutting of beef carcass. Ministry for Food, Agriculture, Forest and Fisheries, Seoul, Korea. p 82.
49 Devillard E, McIntosh FM, Newbold CJ, Wallace RJ. 2006. Rumen ciliate protozoa contain high concentrations of conjugated linoleic acids and vaccenic acid, yet do not hydrogenate linoleic acid or desaturate stearic acid. Br J Nutr 96:697-704.
50 Duckett SK, Neel JPS, Fontenot JP, Clapham WM. 2009a. Effects of winter stocker growth rate and finishing system on: III. Tissue proximate, fatty acid, vitamin, and cholesterol content. J Anim Sci 87:2961-2970.   DOI
51 Nuernberg K, Dannenberger D, Nuernberg G, Ender K, Voigt J, Scollan ND, Wood JD, Nute GR, Richardson RI. 2005. Effect of a grass-based and a concentrate feeding system on meat quality characteristics and fatty acid composition of longissimus muscle in different cattle breeds. Livest Prod Sci 94:137-147.   DOI
52 Krishnan S, Cooper JA. 2014. Effect of dietary fatty acid composition on substrate utilization and body weight maintenance in humans. Eur J Nutr 53:691-710.   DOI
53 Lawrence GD. 2013. Dietary fats and health: Dietary recommendations in the context of scientific evidence. Adv Nutr 4:294-302.   DOI
54 Leheska JM, Thompson LD, Howe JC, Hentges E, Boyce J, Brooks JC, Shriver B, Hoover L, Miller MF. 2008. Effects of conventional and grass-feeding systems on the nutrient composition of beef. J Anim Sci 86:3575-3585.   DOI
55 U.S. Department of Agriculture, U.S. Department of Health and Human Services. 2010. Dietary guidelines for Americans, 2010. 7th ed. U.S. Government Printing Office, Washington, DC, USA.
56 Aldai N, Dugan MER, Kramer JKG, Martinez A, Lopez-Campos O, Mantecon AR, Osoro K. 2011. Length of concentrate finishing affects the fatty acid composition of grass-fed and genetically lean beef: An emphasis on trans-18:1 and conjugated linoleic acid profiles. Animal 5:1643-1652.   DOI
57 Daley CA, Abbott A, Doyle PS, Nader GA, Larson S. 2010. A review of fatty acid profiles and antioxidant content in grassfed and grain-fed beef. Nutr J 9:10   DOI
58 Dilzer A, Park Y. 2012. Implication of conjugated linoleic acid (CLA) in human health. Crit Rev Food Sci Nutr 52:488-513.   DOI
59 Van Elswyk ME, McNeill SH. 2014. Impact of grass/forage feeding versus grain finishing on beef nutrients and sensory quality: The U.S. experience. Meat Sci 96:535-540.   DOI
60 Waters SM, Kelly JP, O'Boyle P, Moloney AP, Kenny DA. 2009. Effect of level and duration of dietary n-3 polyunsaturated fatty acid supplementation on the transcriptional regulation of Δ9-desaturase in muscle of beef cattle. J Anim Sci 87:244-252.   DOI
61 Williamson CS, Foster RK, Stanner SA, Buttriss JL. 2005. Red meat in the diet. Nutr Bull 30:323-355.   DOI
62 Grandin T. 2016. Evaluation of the welfare of cattle housed in outdoor feedlot pens. Vet Anim Sci 1-2:23-28.   DOI
63 Nijdam D, Rood T, Westhoek H. 2012. The price of protein: Review of land use and carbon footprints from life cycle assessments of animal food products and their substitutes. Food Policy 37:760-770.   DOI
64 Najar-Villarreal F, Boyle EAE, Danler RD, O'Quinn TG, Houser TA, Gonzalez JM. 2019. Fatty acid composition, proximate analysis, and consumer sensory evaluation of United States retail grass-fed ground beef. Meat Muscle Biol 3:389-398.   DOI
65 Simopoulos AP. 1991. Omega-3 fatty acids in health and disease and in growth and development. Am J Clin Nutr 54:438-463.   DOI
66 John Wallace R, Chaudhary LC, McKain N, McEwan NR, Richardson AJ, Vercoe PE, Walker ND, Paillard D. 2006. Clostridium proteoclasticum: A ruminal bacterium that forms stearic acid from linoleic acid. FEMS Microbiol Lett 265:195-201.   DOI
67 French P, Stanton C, Lawless F, O'Riordan EG, Monahan FJ, Caffrey PJ, Moloney AP. 2000. Fatty acid composition, including conjugated linoleic acid, of intramuscular fat from steers offered grazed grass, grass silage, or concentratebased diets. J Anim Sci 78:2849-2855.   DOI
68 Duckett SK, Neel JPS, Sonon RN Jr, Fontenot JP, Clapham WM, Scaglia G. 2007. Effects of winter stocker growth rate and finishing system on: II. Ninth-tenth-eleventh-rib composition, muscle color, and palatability. J Anim Sci 85:2691-2698.   DOI
69 Duckett SK, Pratt SL, Pavan E. 2009b. Corn oil or corn grain supplementation to steers grazing endophyte-free tall fescue. II. Effects on subcutaneous fatty acid content and lipogenic gene expression. J Anim Sci 87:1120-1128.   DOI
70 European Food Safety Authority. 2010. Scientific opinion on dietary reference values for fats, including saturated fatty acids, polyunsaturated fatty acids, monounsaturated fatty acids, trans fatty acids, and cholesterol. EFSA J 8:1461.
71 Hayek MN, Garrett RD. 2018. Nationwide shift to grass-fed beef requires larger cattle population. Environ Res Lett 13:084005.   DOI
72 Hilmia N, Noor RR, Sumantri C, Gurnadi RE, Priyanto R. 2017. Polymorphism of stearoyl-CoA desaturase (SCD1) gene in Indonesian local cattle. J Indones Trop Anim Agric 42:1-5.   DOI
73 Ziehl A, Thilmany DD, Umberger WJ. 2005. A cluster analysis of natural beef product consumers by shopping behavior, importance of production attributes, and demographics. J Food Distrib Res 36:209-217.
74 Capper JL. 2012. Is the grass always greener? Comparing the environmental impact of conventional, natural and grass-fed beef production systems. Animals 2:127-143.   DOI
75 United States Department of Agriculture AMS [USDA-AMS]. 2007. United States standards for livestock and meat marketing claims, grass (forage) fed claim for ruminant livestock and the meat products derived from such livestock. Fed Regist 72:58631-58637.
76 Wood JD, Enser M. 1997. Factors influencing fatty acids in meat and the role of antioxidants in improving meat quality. Br J Nutr 78:S49-S60.   DOI
77 Jo C, Cho SH, Chang J, Nam KC. 2012. Keys to production and processing of Hanwoo beef: A perspective of tradition and science. Anim Front 2:32-38.
78 Drouillard JS. 2018. Current situation and future trends for beef production in the United States of America: A review. Asian-Australas J Anim Sci 31:1007-1016.   DOI
79 Yehuda S, Rabinovtz S, Carasso RL, Mostofsky DI. 1996. Essential fatty acids preparation (Sr-3) improves Alzheimer's patients quality of life. Int J Neurosci 87:141-149.   DOI
80 Yu S, Derr J, Etherton TD, Kris-Etherton PM. 1995. Plasma cholesterol-predictive equations demonstrate that stearic acid is neutral and monounsaturated fatty acids are hypocholesterolemic. Am J Clin Nutr 61:1129-1139.   DOI