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Effect of feeding tuna oil or soyabean oil as supplements to sows in late pregnancy on piglet tissue composition and viability

Published online by Cambridge University Press:  09 March 2007

J. A. Rooke*
Affiliation:
Animal Biology Division, SAC, Craibstone Estate, Aberdeen AB21 9YA, UK
I. M. Bland
Affiliation:
Animal Biology Division, SAC, Craibstone Estate, Aberdeen AB21 9YA, UK
S. A. Edwards
Affiliation:
Animal Biology Division, SAC, Craibstone Estate, Aberdeen AB21 9YA, UK
*
*Corresponding author: Dr John Rooke, fax +44 (0)1224 711292, email j.rooke@ab.sac.ac.uk
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Abstract

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To investigate whether long-chain n-3 polyunsaturated fatty acids could cross the porcine placenta in late pregnancy and alter neonatal piglet tissue composition, multiparous sows (seven per diet) were fed on diets containing a supplement (30 g/kg) of either soyabean oil or tuna oil for the last 21 d of pregnancy and the first 7 d of lactation. The proportions of all fatty acids, except 18:1n-7, differed between diets: in particular, the tuna-oil-containing diet supplied more 22:6n-3 and less 18:2n-6 fatty acids than the soyabean-oil-containing diet. The proportions of n-3 fatty acids, particularly 22:6n-3 (g/100 g total fatty acids) in sow plasma, colostrum and milk were increased and the proportion of 18:2n-6 was decreased by feeding tuna oil. Piglet tissue n-3 fatty acid proportions (particularly 22:6n-3), obtained shortly after birth, were increased in piglets born to tuna-oil-fed sows compared with progeny of soyabean-oil-fed sows. The increase in the proportion of n-3 fatty acids (g/100 g total fatty acids) in piglet tissues as a result of tuna-oil feeding, compared with soyabean-oil-feeding, was in the order plasma>liver>erythrocytes>spleen>brain>retina. Piglets born to tuna-oil-fed sows had a lower viability score at birth than the progeny of soyabean-oil-fed sows. The proportions of long-chain n-3 fatty acid in tissues of new-born piglets were increased by feeding tuna oil to the sow in late pregnancy; however no improvements in piglet viability were observed.

Type
Research Article
Copyright
Copyright © The Nutrition Society 1998

References

Agricultural Research Council (1981) The Nutrient Requirements of Pigs. Slough: Commonwealth Agricultural Bureaux.Google Scholar
Arbuckle, LD, MacKinnon, MJ & Innis, SM (1994) Formula 18:2 (n-6) and 18:3(n-3) content and ratio influence long-chain polyunsaturated fatty acids in the developing piglet liver and central nervous system. Journal of Nutrition 124, 289298.CrossRefGoogle Scholar
British Nutrition Foundation (1992) Unsaturated Fatty Acids–Nutritional and Physiological Significance. The Report of the British Nutrition Foundation Task Force. London: Chapman and Hall.Google Scholar
Edwards, SA & Pike, I (1997) Effects of fishmeal on sow reproductive performance. Proceedings of the British Society of Animal Science 1997, p. 55. Penicuik: British Society of Animal Science.Google Scholar
Faldella, G, Govoni, M, Rosina, A, Marchiani, E, Salvioli, GP, Biagi, PL & Spano, C (1996) Visual evoked potentials and dietary long chain polyunsaturated fatty acids in preterm infants. Archives of Disease in Childhood 75, F108F112.Google Scholar
Farnworth, ER & Kramer, JKG (1989 a) Changes in the lipid composition of the internal organs of fetal pigs fed different dietary fats. Canadian Journal of Animal Science 69, 441448.CrossRefGoogle Scholar
Farnworth, ER & Kramer, JKG (1989 b) The effects of changing sow dietary fatty acids on fetal plasma acid patterns. Canadian Journal of Animal Science 69, 813817.Google Scholar
Foote, KD, Hrboticky, N, MacKinnon, MJ & Innis, SM (1990) Brain synaptosomal, liver, plasma, and red blood cell lipids in piglets fed exclusively on a vegetable-oil-containing formula with and without fish-oil supplements. American Journal of Clinical Nutrition 51, 10011006.CrossRefGoogle ScholarPubMed
Fritsche, KL, Alexander, DW, Cassity, NA & Huang, S-C (1993 a) Maternally-supplied fish oil alters piglet immune cell fatty acid profile and eicosanoid production. Lipids 28, 677682.CrossRefGoogle ScholarPubMed
Fritsche, KL, Huang, S-C & Cassity, NA (1993 b) Enrichment of omega-3 fatty acids in suckling pigs by maternal dietary fish oil supplementation. Journal of Animal Science 71, 18411847.CrossRefGoogle ScholarPubMed
Herpin, P, Le Dividich, J, & Amaral, N (1993) Effect of selection for lean tissue growth on body composition and physiological state of the pig at birth. Journal of Animal Science 71, 26452653.CrossRefGoogle ScholarPubMed
Herpin, P, Le Dividich, J, Hulin, JC, Fillaut, M, De Marco, F & Bertin, R (1996) Effects of the level of asphyxia during delivery on viability at birth and early postnatal vitality of newborn pigs. Journal of Animal Science 74, 20672075.CrossRefGoogle ScholarPubMed
Hrboticky, N, MacKinnon, MJ & Innis, SM (1991) Retina fatty acid composition of piglets fed from birth with a linoleic acid-rich vegetable-oil formula for infants. American Journal of Clinical Nutrition 53, 483490.CrossRefGoogle ScholarPubMed
Lawes Agricultural Trust (1987) Genstat 5 Reference Manual,. Oxford: Clarendon Press.Google Scholar
Le Dividich, J, Herpin, P, Mourot, J & Colin, A-P (1994) Effect of low fat colostrum on fat accretion and lipogenic enzyme activities in adipose tissue in the 1-day-old pig. Comparative Biochemistry and Physiology 108,A, 663671.CrossRefGoogle Scholar
Le Dividich, J, Herpin, P, Paul, E & Strullu, F (1997) Effect of fat content of colostrum on voluntary colostrum intake and fat utilization in newborn pigs. Journal of Animal Science 75, 707713.CrossRefGoogle ScholarPubMed
Makrides, M, Neumann, M, Byard, RW, Simmer, K & Gibson, RA (1994) Fatty acid composition of brain, retina, and erythrocytes in breast- and formula-fed infants. American Journal of Clinical Nutrition 60, 189194.Google Scholar
Ministry of Agriculture, Fisheries and Food (1992) Analysis of Agricultural Materials, 2nd ed., London: H.M. Stationery Office.Google Scholar
Ministry of Agriculture, Fisheries and Food (1993) Prediction of the Energy Value of Compound Feedingstuffs for Farm Animals,. London: MAFF Publications.Google Scholar
Olsen, SF, Hansen, HS, Sommer, S, Jensen, B, Sørensen, TIA, Secher, NJ & Zachariassen, P (1991) Gestational age in relation to marine n,-3 fatty acids in maternal erythrocytes: a study of women in the Faroe Islands and Denmark. American Journal of Obstetrics and Gynecology 164, 12031209.CrossRefGoogle Scholar
Olsen, SF, Sørensen, JD, Secher, NJ, Hedegaard, M, Henriksen, TB, Hansen, HS & Grant, A (1992) Randomised controlled trial of effect of fish-oil supplementation on pregnancy duration. Lancet 339, 10031007.CrossRefGoogle ScholarPubMed
Passingham, RE (1985) Rates of brain development in mammals including man. Brain, Behaviour and Evolution 26, 167175.Google Scholar
Pere, M-C, Dourmad, J-Y & Etienne, M (1997) Effect of number of pig embryos in the uterus on their survival and development and on maternal metabolism. Journal of Animal Science 75, 13371342.CrossRefGoogle ScholarPubMed
Purvis, JM, Clandinin, MT & Hacker, RR (1982) Fatty acid accretion during perinatal brain growth in the pig. A model for fatty acid accretion in human brain. Comparative Biochemistry and Physiology 72B, 195199.Google Scholar
Ramsay, TG, Karousis, J, White, ME & Wolverton, CK (1991) Fatty acid metabolism by the porcine placenta. Journal of Animal Science 69, 36453654.CrossRefGoogle ScholarPubMed
Rooke, JA, Bland, IM & Edwards, SA (1998) Effect of maternal fatty acid supply on umbilical cord and piglet tissue composition. Biochemical Society Transactions (In the Press).CrossRefGoogle Scholar
Ruwe, PJ, Wolverton, CK, White, ME & Ramsay, TG (1991) Effect of maternal fasting on fetal and placental lipid metabolism in swine. Journal of Animal Science 69, 19351944.CrossRefGoogle ScholarPubMed
Taugbol, O, Framstad, T & Saarem, K (1993) Supplements of cod liver oil to lactating sows. Influence on milk fatty acid composition and growth performance of piglets. Journal of Veterinary Medicine A 40, 437443.CrossRefGoogle ScholarPubMed
Thulin, AJ, Allee, GL, Harmon, DL & Davis, DL (1989) Utero-placental transfer of octanoic, palmitic and linoleic acids during late gestation in gilts. Journal of Animal Science 67, 738745.CrossRefGoogle ScholarPubMed
Trinder, P (1969) Determination of glucose in blood using glucose oxidase with an alternate hydrogen acceptor. Annals of Clinical Biochemistry 6, 2430.Google Scholar
Uauy, R, Birch, E, Birch, D & Peirano, P (1992) Visual and brain function measurements in studies of n,-3 fatty acids requirements. Journal of Pediatrics 120, S168S180.CrossRefGoogle Scholar
Varley, M (1995) The Neonatal Pig. Development and Survival, Wallingford: CAB International.Google Scholar
Wainwright, PE (1992) Do essential fatty acids play a role in brain and behavioral development? Neuroscience and Biobehavioral Reviews 16, 193205.Google Scholar
Weber, PC (1990) The modification of the arachidonic acid cascade by n,-3 fatty acids. In Advances in Prostaglandin, Thromboxane and Leukotriene Research, Vol. 20, pp. 233240. [Samuels-son, B, Dahlen, S-E, Fritsch, J and Hedquist, P, editors]. New York, NY: Raven Press.Google Scholar
Zaleski, HM & Hacker, RR (1993) Comparison of viability scoring and blood gas analysis as measures of piglet viability. Canadian Journal of Animal Science 73, 649653.CrossRefGoogle Scholar