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Effects of dietary omega-3 polyunsaturated fatty acids on growth and immune response of weanling pigs

  • Li, Qizhang (Department of Animal Sciences, Institute of Food and Agricultural Sciences, University of Florida) ;
  • Brendemuhl, Joel H. (Department of Animal Sciences, Institute of Food and Agricultural Sciences, University of Florida) ;
  • Jeong, Kwang C. (Department of Animal Sciences, Institute of Food and Agricultural Sciences, University of Florida) ;
  • Badinga, Lokenga (Department of Animal Sciences, Institute of Food and Agricultural Sciences, University of Florida)
  • Received : 2014.05.31
  • Accepted : 2014.07.17
  • Published : 2014.07.31

Abstract

The recognition that omega-3 polyunsaturated fatty acids (n-3 PUFA) possess potent anti-inflammatory properties in human models has prompted studies investigating their efficacy for animal growth and immunity. This study examined the effect of feeding an n-3 PUFA-enriched diet on growth and immune response of weanling piglets. Newly weaned pigs (averaging $27{\pm}2$ days of age and $8.1{\pm}0.7kg$ of body weight) were assigned randomly to receive a control (3% vegetable oil, n = 20) or n-3 PUFA-supplemented (3% marine n-3 PUFA, n = 20) diet for 28 day after weaning. Female pigs consuming the n-3 PUFA-enriched diet were lighter at week 4 post-weaning than those fed the vegetable oil supplement. Weanling pigs gained more weight, consumed more feed and had better growth to feed ratios between days 14 and 28 than between days 0 and 14 post-weaning. Plasma insulin-like growth factor I (IGF-I) decreased between days 0 ($87.2{\pm}17.0ng/mL$) and 14 ($68.3{\pm}21.1ng/mL$) after weaning and then increased again by day 28 ($155.2{\pm}20.9ng/mL$). In piglets consuming the vegetable oil-enriched diet, plasma tumor necrosis factor alpha (TNF-${\alpha}$) increased from $37.6{\pm}14.5$ to $102.9{\pm}16.6pg/mL$ between days 0 and 14 post-weaning and remained high through day 28 ($99.0{\pm}17.2pg/mL$). The TNF-${\alpha}$ increase detected in the piglets fed vegetable oil was not observed in the piglets fed n-3 PUFA. Results indicate that weaning induces considerable immune stress in piglets and that this stress can be mitigated by dietary supplementation of n-3 PUFA.

Keywords

References

  1. Le Dividich J, Seve B: Effects of underfeeding during the weaning period on growth, metabolism, and hormonal adjustments in the piglet. Domest Anim Endocrinol 2000, 19:63-74. https://doi.org/10.1016/S0739-7240(00)00067-9
  2. Montagne L, Boudry G, Favier C, Le Huerou-Luron I, Lalles JP, Seve B: Main intestinal markers associated with the changes in gut architecture and function in piglets after weaning. Br J Nutr 2007, 97:45-57. https://doi.org/10.1017/S000711450720580X
  3. Pie S, Lalles JP, Blazy F, Laffitte J, Seve B, Oswald IP: Weaning is associated with an up-regulation of expression of inflammatory cytokines in the intestine of piglets. J Nutr 2004, 134:641-647.
  4. Cromwell GL: Why and how antibiotics are used in swine production. Anim Biotechnol 2002, 13:7-27. https://doi.org/10.1081/ABIO-120005767
  5. Vondruskova H, Slamova R, Trckova M, Zraly Z, Pavlik I: Alternatives to antibiotic growth promoters in prevention of diarrhoea in weaned piglets: a review. Vet Medic 2010, 5:199-224.
  6. Liu YL, Li DF, Gong LM, Yi GF, Gaines AM, Carroll JA: Effects of fish oil supplementation on the performance and immunological, adrenal, and somatotropic responses of weaned pigs after an Escherichia coli lipopolysaccharide challenge. J Anim Sci 2003, 81:2758-2765. https://doi.org/10.2527/2003.81112758x
  7. Gabler NK, Radcliffe JS, Spencer JD, Webel DM, Spurlock ME: Feeding long-chain n-3 polyunsaturated fatty acids during gestation increases intestinal glucose absorption potentially via the acute activation of AMPK. J Nutr Biochem 2009, 20:17-25. https://doi.org/10.1016/j.jnutbio.2007.11.009
  8. Heo JM, Opapeju FO, Pluske JR, Kim JC, Hampson DJ, Nyachoti CM: Gastrointestinal health and function in weaned pigs: a review of feeding strategies to control post-weaning diarrhoea without using in-feed antimicrobial compounds. J Anim Physiol Anim Nutr 2012, 97:207-237.
  9. Calder PC: Omega-3 fatty acids and inflammatory processes. Nutrients 2010, 2:355-374. https://doi.org/10.3390/nu2030355
  10. Calder PC: Omega-3 polyunsaturated fatty acids and inflammatory processes: nutrition or pharmacology? Br J Clin Pharmacol 2012, 75:645-662.
  11. Carroll JA, Gaines AM, Spencer JD, Allee GL, Kattesh HG, Roberts MP, Zannelli ME: Effect of menhaden fish oil supplementation and lipopolysaccharide exposure on nursery pigs. I. Effects on the immune axis when fed diets containing spray-dried plasma. Domest Anim Endocrinol 2003, 24:341-351. https://doi.org/10.1016/S0739-7240(03)00017-1
  12. Korver DR, Klasing KC: Dietary fish oil alters specific inflammatory immune responses in chicks. J Nutr 1997, 127:2039-2046.
  13. Eastwood L, Kish PR, Beaulieu AD, Leterme P: Nutritional value of flaxseed meal for swine and its effects on the fatty acid profile of the carcass. J Anim Sci 2009, 87:3607-3619. https://doi.org/10.2527/jas.2008-1697
  14. Baillie RA, Takada R, Nakamura M, Clarke SD: Coordinate induction of peroxisomal acyl-CoA oxidase and UCP-3 by dietary fish oil: a mechanism for decreased body fat deposition. Prostaglandins Leukot Essent Fatty Acids 1999, 60:351-356. https://doi.org/10.1016/S0952-3278(99)80011-8
  15. Belzung F, Raclot T, Groscolas R: Fish oil n-3 fatty acids selectively limit the hypertrophy of abdominal fat depots in growing rats fed high-fat diets. Am J Physiol 1993, 264:R1111-R1118. https://doi.org/10.1152/ajpcell.1993.264.5.C1111
  16. Hill JO, Peters JC, Lin D, Yakubu F, Greene H, Swift L: Lipid accumulation and body fat distribution is influenced by type of dietary fat fed to rats. Int J Obes Relat Metab Disord 1993, 17:223-236.
  17. Jump DB, Clark SD, Thelen A, Liimatta M: Coordinate regulation of glycolytic and lipogenic gene expression by polyunsaturated fatty acids. J Lipid Res 1994, 35:1076-1084.
  18. Noreen EE, Sass MJ, Crowe ML, Pabon VA, Brandauer J, Averill LK: Effects of supplemental fish oil on resting metabolic rate, body composition, and salivary cortisol in healthy adults. J Int Soc Sports Nutr 2010, 7:31-37. https://doi.org/10.1186/1550-2783-7-31
  19. Thissen JP, Verniers J: Inhibition by interleukin-$1{\beta}$ and tumor necrosis factor-$\alpha$ of the insulin-like growth factor I messenger ribonucleic acid response to growth hormone in rat hepatocyte primary culture. Endocrinology 1997, 138:1078-1084. https://doi.org/10.1210/endo.138.3.4966
  20. Bemelmans MH, van Tits LJ, Buurman WA: Tumor necrosis factor: Function, release and clearance. Crit Rev Immunol 1996, 16:1-11. https://doi.org/10.1615/CritRevImmunol.v16.i1.10
  21. Lo CJ, Chiu KC, Fu M, Lo R, Helton S: Fish oil decreases tumor necrosis factor gene transcription by altering the NF-${\kappa}Β$ activity. J Surg Res 1999, 82:216-221. https://doi.org/10.1006/jsre.1998.5524
  22. Novak TE, Babcock TA, Jho DH, Helton WS, Espat NJ: NF-${\kappa}Β$ inhibition by $\dot{{\omega}}$-3 fatty acids modulates LPS-stimulated macrophage TNF-$\alpha$ transcription. Am J Physiol Lung Cell Mol Physiol 2003, 284:L84-L89. https://doi.org/10.1152/ajplung.00077.2002
  23. Zhao Y, Joshi-Barve S, Barve S, Chen LH: Eicosapentaenoic acid prevents LPS-induced TNF-$\alpha$ expression by preventing NF-kB activation. J Am Coll Nutr 2004, 23:71-78. https://doi.org/10.1080/07315724.2004.10719345
  24. Gaines AM, Carroll JA, Yi GF, Allee GL, Zannelli ME: Effect of menhaden fish oil supplementation and lipopolysaccharide exposure on nursery pigs. II. Effects on the immune axis when fed simple or complex diets containing no spray-dried plasma. Domest Anim Endocrinol 2003, 24:353-365. https://doi.org/10.1016/S0739-7240(03)00016-X
  25. Malekshahi Moghadam A, Saedisomeolia A, Djalali M, Djazayery A, Pooya S, Sojoudi F: Efficacy of omega-3 fatty acid supplementation on serum levels of tumour necrosis factor-alpha, C-reactive protein and interleukin-2 in type 2 diabetes mellitus patients. Singapore Med J 2012, 53:615-619.
  26. Friendship RM, Lumsden JH, McMillan I, Wilson MR: Hematology and biochemistry reference values for Ontario swine. Can J Comp Med 1984, 48:390-393.
  27. Wilson GD, Harvey DG, Snook CR: A review of factors affecting blood biochemistry in the pig. Br Vet J 1972, 128:596-610. https://doi.org/10.1016/S0007-1935(17)36632-0
  28. Quiroz-Rocha GF, LeBlanc SJ, Duffield TF, Wood D, Leslie KE, Jacobs RM: Reference limits for biological and hematological analytes of dairy cows one week before and one week after parturition. Can Vet J 2009, 50:383-388.
  29. Littell RC, Henry PR, Ammerman CB: Statistical analysis of repeated measures data using SAS procedures. J Anim Sci 1998, 76:1216-1231.

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