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Conjugated linoleic acid and its effects on animal products and health in single-stomached animals

Published online by Cambridge University Press:  05 March 2007

Michael J. Azain*
Affiliation:
Animal and Dairy Science Department, University of Georgia, Athens, Georgia, 30602, USA
*
Corresponding author: Dr M. J. Azain, fax +1 706 542 0399, mazain@arches.uga.edu
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Abstract

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Conjugated linoleic acids (CLA) have been shown to have anti-carcinogenic, anti-obesity, anti-atherogenic and immunomodulatory functions. The basis for these effects has not been fully explained, but probably involves effects of CLA on eicosanoid metabolism, cytokine production and\or gene expression. The predominant isomer (85–90%) in the natural sources of CLA has the cis-9, trans-11 configuration. As interest in CLA grew and synthetic forms became available, the number of studies examining the effects of dietary CLA in rodents, human subjects and livestock has increased greatly. In the late 1990 s the observation that CLA had anti-obesity effects was reported. Subsequently, it was determined that this effect in mice could be attributed to the trans-10, cw-12 isomer that, along with the cis-9,trans-11 isomer, predominates in the synthetic forms of CLA. The santi-obesity response varies in magnitude depending on species, and has not been consistent in non-rodents. In general, the response is greatest in mice and less or absent in other species. The basis for this lack of consistency is not clear and is unlikely to be accounted for by differences in the source of CLA. In the pig variation in body fat of animals may account for differences in responsiveness. There is no direct evidence of an anti-carcinogenic effect of CLA in human subjects or livestock. Indirect evidence from in vitro studies with cell lines, as well as epidemiological studies, suggest that CLA may be relevant as a natural anti-carcinogen. The immunomodulatory effects of CLA may have application in livestock production as an alternative to the use of feed antibiotics, or as a means of improving the response to vaccination and conferring disease resistance. The recent literature on the effects of CLA, with emphasis on its anti-obesity effects, is reviewed.

Type
Animal Nutrition and Metabolism Group Symposium on ‘Fatty acids, forages and food quality’
Copyright
Copyright © The Nutrition Society 2003

References

Averette-Gatlin, L, See, MT, Larick, DK, Lin, X & Odle, J (2002) Conjugated linoleic acid in combination with supplemental dietary fat alters pork fat quality. Journal of Nutrition 32, 31053112CrossRefGoogle Scholar
Aydin, R, Pariza, MW & Cook, ME (2001) Olive oil prevents the adverse effects of dietary conjugated linoleic acid on chick hatchability and egg quality. Journal of Nutrition 131, 800806CrossRefGoogle ScholarPubMed
Azain, MJ & Chi, F (2001) The anti-obesity effects of conjugated linoleic acid in the rat are accounted for by the trans -10, cis -12 isomer, but are gender dependent. Proceedings of the Nutrition Society 60 214AGoogle Scholar
Azain, MJ, Hausman, DB, Sisk, MB, Flatt, WP & Jewell, DE (2000) Dietary conjugated linoleic acid reduces rat adipose tissue cell size. Journal of Nutrition 130, 15481554CrossRefGoogle ScholarPubMed
Bartlett, JC & Chapman, DG (1961) Detection of hydrogenated fats in butter by measurement of cis-trans conjugated unsaturation. Journal of Agricultural and Food Chemistry 9, 5053CrossRefGoogle Scholar
Bassaganya-Riera, J, Hontecillas-Margarzo, R, Bregendahl, K, Wannemuehler, MJ & Zimmerman, DR (2001) Effects of dietary conjugated linoleic acid in nursery pigs of dirty and clean environments on growth, empty body composition and immune competence. Journal of Animal Science 79, 714721CrossRefGoogle ScholarPubMed
Baumgard, LH, Sangster, JK & Bauman, DE (2001) Milk fat synthesis in dairy cows is progressively reduced by increasing supplemental amounts of trans -10, cis -12 conjugated linoleic acid (CLA). Journal of Nutrition 131, 17641769CrossRefGoogle ScholarPubMed
Bee, G (2000) Dietary conjugated linoleic acid consumption during pregnancy and lactation influences growth and tissue composition in weaned pigs. Journal of Nutrition 130, 29812989CrossRefGoogle ScholarPubMed
Bee, G (2001) Dietary conjugated linoleic acids affect tissue lipid composition but not de novo lipogenesis in finishing pigs. Animal Research 50, 383389CrossRefGoogle Scholar
Blankson, H, Stakkestad, JA, Fagertun, H, Thom, E, Wadstein, J & Gudmundsen, O (2000) Conjugated linoleic acid reduces body fat mass in overweight and obese humans. Journal of Nutrition 130, 29432948Google ScholarPubMed
Brodie, AE, Manning, VA, Ferguson, KR, Jewell, DE & Hu, CY (1999) Conjugated linoleic acid inhibits differentiation of pre- and postconfluent 3T3-L1 preadipocytes but inhibits cell proliferation only in preconfluent cells. Journal of Nutrition 129, 602606CrossRefGoogle Scholar
Bulgarella, JA, Patton, D & Bull, AW (2001) Modulation of prostaglandin H synthase activity by conjugated linoleic acid (CLA) and specific CLA isomers. Lipids 36, 407412CrossRefGoogle ScholarPubMed
Chamruspollert, M & Sell, J (1999) Transfer of dietary conjugated linoleic acid to egg yolks of chickens. Poultry Science 78, 11381150CrossRefGoogle ScholarPubMed
Chin, SF, Lui, W, Storkson, JM, Ha, YL & Pariza, MW (1992) Dietary sources of conjugated diene isomers of linoleic acid, a newly recognized class of anticarcinogens. Journal of Food Composition and Analysis 5, 185197CrossRefGoogle Scholar
Chin, SF, Storkson, JM, Albright, KJ, Cook, ME & Pariza, MW (1994a) Conjugated linoleic acid is a growth factor for rats as shown by enhanced weight gain and improved feed efficiency. Journal of Nutrition 124, 23442349CrossRefGoogle ScholarPubMed
Chin, SF, Storkson, JM, Liu, W, Albright, KJ & Pariza, MW (1994b) Conjugated linoleic acid (9, 11- and 10, 12-octadecanoic acid) is produced in conventional but not germ-free rats fed linoleic acid. Journal of Nutrition 124, 694701CrossRefGoogle Scholar
Cook, ME, Miller, CC, Park, Y & Pariza, M (1993) Immune modulation by altered nutrient metabolism: Nutritional control of immune-induced growth depression. Poultry Science 72, 13011305CrossRefGoogle ScholarPubMed
Corl, BA, Baumgard, LH, Dwyer, DA, Griinari, M, Phillips, BS & Bauman, DE (2001) The role of Δ 9 -desaturase in the production of cis-9, trans-11 CLA. Journal of Nutritional Biochemistry 12, 622630CrossRefGoogle ScholarPubMed
DeLany, JP, Blohm, F, Truett, AA, Scimeca, JA & West, DB (1999) Conjugated linoleic acid rapidly reduces body fat content in mice without affecting energy intake. American Journal of Physiology 276 R1172 – R1179Google ScholarPubMed
Du, M & Ahn, DU (2002) Effect of dietary conjugated linoleic acid on the growth rate of live birds and on the abdominal fat content and quality of broiler meat. Poultry Science 81, 428433CrossRefGoogle ScholarPubMed
Dugan, MER, Aalus, JL, Lien, KA, Schaefer, AL & Kramer, JKG (1997) The effect of conjugated linoleic acid on fat to lean repartitioning and feed conversion in pigs. Canadian Journal of Animal Science 77, 723725CrossRefGoogle Scholar
Dugan, MER, Aalus, JL, Lien, KA, Schaefer, AL & Kramer, JKG (2001) Effects of feeding different levels of conjugated linoleic acid and total oil to pigs on live animal performance and carcass composition. Canadian Journal of Animal Science 81, 505510CrossRefGoogle Scholar
Eggert, JM, Belury, MA, Kempa-Steczko, A, Mills, SE & Schinkel, AP (2001) Effects of conjugated linoleic acid on the belly firmness and fatty acid composition of genetically lean pigs. Journal of Animal Science 79, 28662872CrossRefGoogle ScholarPubMed
Glaser, KR, Scheeder, MRL & Wenk, C (2000) Dietary C18:1 trans fatty acids increase conjugated linoleic acid in adipose tissue of pigs. European Journal of Lipid Science and Technology 102, 6846863.0.CO;2-R>CrossRefGoogle Scholar
Ha, YL, Grimm, NK & Pariza, MW (1989) Newly recognized anticarcinogenic fatty acids: identification and quantification in natural and processed chesses. Journal of Agricultural and Food Chemistry 37, 7581CrossRefGoogle Scholar
Hayek, MG, Han, SN, Wu, D, Watkins, BA, Meydani, M, Dorsey, JL, Smith, DE & Meydani, SN (1999) Dietary conjugated linoleic acid influences the immune response of young and old C57BL/6NCrlBR mice. Journal of Nutrition 129, 3238CrossRefGoogle Scholar
Hjartaker, A, Laake, P & Lund, E (2001) Childhood and adult milk consumption and risk of premenopausal breast cancer in a cohort of 48,884 women – The Norwegian women and cancer study. International Journal of Cancer 93, 888893CrossRefGoogle Scholar
Ip, C, Banni, S, Angioni, E, Carta, G, McGinley, J, Thompson, HJ, Barbano, D & Bauman, D (1999) Conjugated linoleic acidenriched butter fat alters mammary gland morphogenesis and reduces cancer risk in rats. Journal of Nutrition 129, 21352142CrossRefGoogle ScholarPubMed
Ip, C, Dong, Y, Ip, MM, Banni, S, Carta, G, Angioni, E, Murru, E, Spada, S, Melis, MP & Saebo, A (2002) Conjugated linoleic acid isomers and mammary cancer prevention. Nutrition and Cancer 43, 5258CrossRefGoogle ScholarPubMed
Ip, C, Scimeca, JA & Thompson, HJ (1994) Conjugated linoleic acid: A powerful anticarcinogen from animal sources. Cancer 74, 10501054 Suppl.Google Scholar
Jahreis, G, Fritsche, J, Mockel, P, Schone, F & Moller, U (1999) The potential anticarcinogenic, conjugated cis -9, trans -11 C18:2, in milk of different species: cow, goat, ewe, sow, mare, woman. Nutrition Research 19, 15411549CrossRefGoogle Scholar
Jarvinen, R, Knect, P, Seppanen, R & Teppo, L (1997) Diet and breast cancer risk in a cohort of Finnish women. Cancer Letters 114, 251253CrossRefGoogle Scholar
Kamlage, B, Hartmann, L, Gruhl, B & Blaut, M (1999) Intestinal microorganisms do not supply associated gnotobiotic rats with conjugated linoleic acid. Journal of Nutrition 129, 22122217CrossRefGoogle Scholar
Kelly, DS, Taylor, PC, Rudolph, IL, Benito, P, Nelson, GJ, Mackey, BE & Erickson, KL (2000) Dietary conjugated linoleic acid did not alter immune status in young healthy women. Lipids 35, 10651071CrossRefGoogle Scholar
Kepler, CR, Hirons, HP, McNeill, JJ & Tove, SB (1966) Intermediates and products of the biohydrogenation of linoleic acid by Butyrivibrio flibrisolvens. Journal of Biological Chemistry 242, 36123620Google Scholar
Kritchevsky, D (2000) Antimutagenic and some other effects of conjugated linoleic acid. British Journal of Nutrition 83, 459465CrossRefGoogle ScholarPubMed
Leskanich, CO, Matthews, KR, Warkup, CC, Noble, RC & Hazzledine, M (1997) The effect of dietary oil containing ( n -3) fatty acids on the fatty acid, physiochemical, and organoleptic characteristics of pig meat and fat. Journal of Animal Science 75 673CrossRefGoogle Scholar
Lin, H, Boylston, TD, Chang, MJ, Luedecke, LO & Shultz, TD (1995) Survey of the conjugated linoleic acid contents of dairy products. Journal of Dairy Science 78, 23582365CrossRefGoogle ScholarPubMed
Masters, N, McGuire, MA, Beerman, KA, Dasgupta, N & McGuire, MK (2002) Maternal supplementation with CLA decreases milk fat in humans. Lipids 37, 133138CrossRefGoogle ScholarPubMed
Miller, CC, Park, Y, Pariza, MW & Cook, ME (1994) Feeding conjugated linoleic acid to animals partially overcomes catabolic responses due to endotoxin injection. Biochemical and Biophysical Research Communications 198, 11071112CrossRefGoogle ScholarPubMed
Mougios, V, Matsakas, A, Petridou, A, Ring, S, Sagredos, A, Melissopoulou, A, Tsigilis, N & Nikolaidis, M (2001) Effect of supplementation with conjugated linoleic acid on human serum lipids and body fat. Journal of Nutritional Biochemistry 12, 585594CrossRefGoogle ScholarPubMed
Moya-Camarena, SY & Belury, MA (1999) Species differences in the metabolism and regulation of gene expression by conjugated linoleic acid. Nutrition Reviews 57, 336340CrossRefGoogle Scholar
Muller, HL, Stangl, GI & Kirchessner, M (1998) Energy balance of conjugated linoleic acid treated pigs. Journal of Animal Physiology and Animal Nutrition 81, 150156CrossRefGoogle Scholar
National, Cattlemans' & Beef, Association (2002) National Cattlemans' Beef Association. CBB/NCBA Human Nutrition Research Program. http://www.beefnutrition.org/research/.Google Scholar
National, Dairy Council (2002) National Dairy Council web site. http://www.nationaldairycouncil.org/.Google Scholar
O'Quinn, PR, Andrews, BS, Goodband, RD, Unruh, JA, Nelssen, JL, Woodworth, JC, Tokach, MD & Owen, KQ (2000b) Effects of modified tall oil and creatine monohydrate on growth performance, carcass characteristics, and meat quality of growing-finishing pigs. Journal of Animal Science 78, 23762382CrossRefGoogle ScholarPubMed
O'Quinn, PR, Nelssen, JL, Goodband, RD, Unruh, JA, Woodworth, JC, Smith, JS & Tokach, MD (2000a) Effects of modified tall oil versus a commercial source of conjugated linoleic acid and increasing levels of modified tall oil on growth performance and carcass characteristics of growing-finishing pigs. Journal of Animal Science 78, 23592368CrossRefGoogle ScholarPubMed
Ostrowska, E, Muralitharan, M, Cross, RF, Bauman, DE & Dunshea, FR (1999) Dietary conjugated linoleic acids increase lean tissue and decrease fat deposition in growing pigs. Journal of Nutrition 129, 20372042CrossRefGoogle ScholarPubMed
Overland, M, Taugbol, O, Haug, A & Sundstol, E (1996) Effect of fish-oil on growth performance, carcass characteristics, sensory parameters, and fatty acid composition in pigs. Acta Agriculturae Scandinavica 46, 1117CrossRefGoogle Scholar
Palombo, JD, Ganguly, A, Bistrian, BR & Menard, MP (2002) The antiproliferative effects of biologically active isomers of conjugated linoleic acid on human colorectal and prostatic cancer cells. Cancer Letters 177, 163172CrossRefGoogle ScholarPubMed
Pariza, MW, Park, Y & Cook, ME (2001) The biologically active isomers of conjugated linoleic acid. Progress in Lipid Research 40, 283298CrossRefGoogle ScholarPubMed
Park, HS, Ryu, JH, Ha, YL & Park, JHY (2001) Dietary conjugated linoleic acid induces apoptosis of colonic mucosa in 1,2-dimethylhydrazine-treated rats: a possible mechanism for the anticarcinogenic effect of CLA. British Journal of Nutrition 86, 549555CrossRefGoogle ScholarPubMed
Park, Y, Albright, KL, Liu, W, Storkson, JM, Cook, ME & Pariza, MW (1997) Effect of conjugated linoleic acid on body composition in mice. Lipids 32, 853858CrossRefGoogle ScholarPubMed
Park, Y, Albright, KJ, Storkson, JM, Liu, W, Cook, ME & Pariza, MW (1999a) Changes in body composition in mice during feeding and withdrawal of conjugated linoleic acid. Lipids 34, 243248CrossRefGoogle ScholarPubMed
Park, Y & Pariza, MW (2001) Lipoxygenase inhibitors inhibit heparin-releasable lipoprotein lipase activity in 3T3-L1 adipocytes and enhance body fat reduction in mice by conjugated linoleic acid. Biochimica et Biophysica Acta 1534, 2733CrossRefGoogle ScholarPubMed
Park, Y, Storkson, JM, Albright, KJ, Liu, W & Pariza, MW (1999b) Evidence that the trans -10, cis -12 isomer of conjugated linoleic acid induces body composition changes in mice. Lipids 34, 235241CrossRefGoogle ScholarPubMed
Poulos, SP, Azain, MJ & Hausman, GJ (2000) In utero dietary conjugated linoleic acid alters body composition and growth rate in newborn pigs. Journal of Animal Science 78 136 Suppl. 1Google Scholar
Poulos, SP, Sisk, M, Hausman, DB, Azain, MJ & Hausman, GJ (2001) Pre- and post-natal dietary conjugated linoleic acid (CLA) alters adipose tissue development, body weight gain and body composition in Sprague-Dawley rats. Journal of Nutrition 131, 27222731CrossRefGoogle Scholar
Ramsay, TG, Evock-Clover, CM, Steele, NC & Azain, MJ (2001) Dietary conjugated linoleic acid alters fatty acid composition of pig skeletal muscle and fat. Journal of Animal Science 79, 21522161CrossRefGoogle ScholarPubMed
Riserus, U, Berglund, L & Vessby, B (2001) Conjugated linoleic acid (CLA) reduced abdominal adipose tissue in obese middle aged men with signs of the metabolic syndrome, A randomized controlled trial. International Journal of Obesity 25, 11291135CrossRefGoogle Scholar
Roche, HM, Noone, E, Nugent, A & Gibney, MJ (2001) Conjugated linoleic acid, a novel therapeutic nutrient?. Nutrition Research Reviews 14, 173187CrossRefGoogle ScholarPubMed
Santora, JE, Palmquist, DL & Roehrig, KL (2000) Trans-vaccenic acid is desaturated to conjugated linoleic acid in mice. Journal of Nutrition 130, 208215CrossRefGoogle ScholarPubMed
Satory, D & Smith, SB (1999) Conjugated linoleic acid inhibits proliferation but stimulates lipid filling of murine 3T3-L1 preadipocytes. Journal of Nutrition 129, 9297CrossRefGoogle ScholarPubMed
Scollan, ND, Dhanoa, MS, Choi, NJ, Maeng, WJ, Enser, M & Wood, JD (2001) Biohydrogenation and digestion of long chain fatty acids in steers fed on different sources of lipid Journal of Agricultural Science, Cambridge 136, 345355CrossRefGoogle Scholar
Sisk, M, Hausman, DB, Martin, RJ & Azain, MJ (2001) Dietary conjugated linoleic acid reduces adiposity in lean, but not obese Zucker rats. Journal of Nutrition 131, 16681674CrossRefGoogle Scholar
Sugano, M, Tsujita, A, Yamasaki, M, Noguchi, M & Yamada, K (1998) Conjugated linoleic acid modulates tissue levels of chemical mediators and immunoglobulins in rats. Lipids 33, 521527CrossRefGoogle ScholarPubMed
Szymczyk, B, Pisulewski, PM, Szczurek, W & Hanczakowski, P (2001) Effects of conjugated linoleic acid on growth performance, feed conversion efficiency and subsequent carcass quality in broiler chickens. British Journal of Nutrition 85, 465473CrossRefGoogle ScholarPubMed
Takahashi, K, Kawamata, K, Akiba, Y, Iwata, T & Kasai, M (2002) Influence of dietary conjugated linoleic acid isomers on early inflammatory responses in male broiler chickens. British Poultry Science 43, 4753CrossRefGoogle ScholarPubMed
Taugbol, O (1993) Omega-3 fatty acid incorporation in fat and muscle tissues of growing pigs fed supplements of fish oil. Journal of Veterinary Medicine 40, 93101CrossRefGoogle ScholarPubMed
Terpstra, AHM (2001) Differences between humans and mice in efficacy of the body fat lowering effect of conjugated linoleic acid: Role of metabolic rate. Journal of Nutrition 131, 20672068CrossRefGoogle ScholarPubMed
Terpstra, AHM, Beynen, AC, Everts, H, Kocsis, S, Katan, MB & Zock, PL (2002) The decrease in body fat in mice fed conjugated linoleic acid is due to increases in energy expenditure and energy loss in excreta. Journal of Nutrition 132, 940945CrossRefGoogle ScholarPubMed
Thiel-Cooper, RL, Farrish, FC, Sparks, JC, Wigand, BR & Ewan, RC (2001) Conjugated linoleic acid changes swine performance and carcass composition. Journal of Animal Science 79, 18211828CrossRefGoogle ScholarPubMed
Thom, E, Wadstein, J & Gudmundsen, O (2001) Conjugated linoleic acid reduces body fat in healthy exercising humans. Journal of International Medical Research 29, 392396CrossRefGoogle ScholarPubMed
Tischendorf, F, Schone, F, Kirchheim, U & Jarhreis, G (2002) Influence of a conjugated linoleic acid mixture on growth, organ weights, carcass traits and meat quality in growing pigs. Journal of Animal Physiology and Animal Nutrition 86, 117128CrossRefGoogle ScholarPubMed
Tsuboyama-Kasaoka, N, Takahashi, M, Tanemura, K, Kim, H-J, Tange, T, Okuyama, H, Kasai, M, Ikemoto, S & Ezaki, O (2000) Conjugated linoleic acid supplementation reduces adipose tissue by apoptosis and develops lipodystrophy in mice. Diabetes 49, 15341542CrossRefGoogle ScholarPubMed
Turek, JJ, Li, Y, Schoenlein, IA, Allen, KGD & Watkins, BA (1998) Modulation of macrophage cytokine production by conjugated linoleic acids is influenced by the dietary n -6: n -3 fatty acid ratio. Journal of Nutritional Biochemistry 9, 258266CrossRefGoogle Scholar
Twibell, RG, Watkins, BA & Brown, PB (2001) Dietary conjugated linoleic acids and lipid source alter fatty acid composition of juvenile yellow perch, Perca falvescens. Journal of Nutrition 131, 23222328CrossRefGoogle Scholar
Twibell, RG, Watkins, BA, Rogers, L & Brown, PB (2000) Effects of conjugated linoleic acids on hepatic and muscle lipids in hybrid striped bass. Lipids 35, 155161CrossRefGoogle ScholarPubMed
Waylan, AT, O'Quinn, PR, Unruh, JA, Nelssen, JL, Goodband, RD, Woodworth, JC, Tocah, MD & Koo, SI (2002) Effects of modified tall oil and vitamin E on growth performance, carcass characteristics, and meat quality of growing-finishing pigs. Journal of Animal Science 80, 15751585CrossRefGoogle ScholarPubMed
Weber, TE, Schinkel, AP, Housekneckt, KL & Richert, BT (2001) Evaluation of conjugated linoleic acid and dietary antibiotics as growth promotants in weanling pigs. Journal of Animal Scienc 79, 25422549CrossRefGoogle ScholarPubMed
West, DB, Delany, JP, Camet, PM, Blohm, F, Truet, AA & Scimeca, J (1998) Effects of conjugated linoleic acid on body fat and energy metabolism in the mouse. American Journal of Physiology 275 R667 – R672Google ScholarPubMed
Whigham, LD, Cook, ME & Atkinson, RL (2000) Conjugated linoleic acid: Implications for human health. Pharmacological Research 42, 503510CrossRefGoogle ScholarPubMed
Whigham, LD, Higbee, A, Bjorling, DE, Park, Y, Pariza, MW & Cook, ME (2002) Decreased antigen-induced eicosanoid release in conjugated linoleic acid-fed guinea pigs. American Journal of Physiology 282 R1104 – R1112Google ScholarPubMed
Wiegand, BR, Sparks, JC, Parrish, FC & Zimmerman, DR (2002) Duration of feeding conjugated linoleic acid influences growth performance, carcass traits, and meat quality of finishing barrows. Journal of Animal Science 80, 637643CrossRefGoogle ScholarPubMed
Zambell, KL, Klein, NL, Van, Loan, MD, Gale, B, Benito, P, Kelley, DS, Nelson GJ (2000) Conjugated linoleic acid supplementation in humans: Effects on body composition and energy expenditure. Lipids 35, 777782CrossRefGoogle ScholarPubMed