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Comparison of n–3 fatty acid sources in laying hen rations for improvement of whole egg nutritional quality: a review

Published online by Cambridge University Press:  09 March 2007

Mary E. Van Elswyk
Affiliation:
Department of Poultry Science, Graduate Faculty of Nutrition, Texas A&M University, Texas Agricultural Experiment Station, College Station, TX, 77843-2472, USA
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Abstract

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The nutritional manipulation of the diets of laying hens to include sources of n–3 fatty acids promotes the deposition of these nutrients into egg yolk. n–3 Fatty acid-rich eggs may provide an exciting alternative food source for enhancing consumer intake of these proposed healthful fatty acids. Care must be taken when designing n–3 fatty acid-rich poultry rations, however, to assure that the resulting egg fatty acid profile is useful for promoting consumer health yet maintaining egg sensory quality. In study 1 laying hens were fed on diets supplemented with graded levels of menhaden oil (MO), rich in both eicosapentaenoic acid (EPA; 20:5n–3) and docosahexaenoic acid (DHA; 22: 6n–3), for 4 weeks to determine maximal yolk fatty acid deposition attainable without sensory compromise. Yolk fatty acids were analysed for an additional 4 weeks, post-MO removal, to investigate yolk n–3 fatty acid tenacity. Dietary MO levels between 15 and 30g/kg yielded the greatest yolk n–3 fatty acid content; however, only eggs from birds fed with 15g MO/kg were considered acceptable by trained flavour panelists. Evaluation of eggs from hens fed with 15g MO/kg during storage verified that the shelf-life of enriched eggs was comparable with that of typical eggs. In study 2, graded levels of whole or ground flaxseed were used for the deposition of linolenic acid (LNA; 18:3n–3) and to determine in vivo production of DHA from dietary LNA for yolk deposition. Flaxseed form influenced yolk n–3 fatty acids only when given at 150 g/kg diet. In vivo production of DHA, while significant, was not enhanced by increasing the level of dietary flaxseed nor by grinding the seed. In the third study, a DHA-rich natural marine alga (MA) was investigated as an n–3 fatty acid supplement. Despite similar DHA profiles, dietary MA was found to be more efficient for yolk DHA deposition than dietary MO. These studies suggest that there are numerous viable n–3 fatty acid supplements for poultry rations. It must be realized, however, that the fatty acid profile of the final product varies substantially depending on which supplement is fed.

Type
A Review
Copyright
Copyright © The Nutrition Society 1997

References

REFERENCES

Aymond, W. M. & Van Elswyk, M. E. (1995). Yolk thiobarbituric acid reactive substances and n–3 fatty acids in response to whole and ground flaxseed. Poultry Science 74, 13881394.CrossRefGoogle ScholarPubMed
Connor, W. E., Neuringer, M. & Reisbick, S. (1991). Essential fatty acids: the importance of n–3 fatty acids in the retina and brain. Nutrition Reviews 50, 2129.CrossRefGoogle Scholar
Ginsberg, H. N., Karmally, W., Siddiqui, M., Holleran, S., Tall, A. R., Rumsey, S. C., Deckelbaum, R. J., Blaner, W. S. & Ramakrishnan, R. (1994). A dose-response study of the effects of dietary cholesterol on fasting and postprandial lipid and lipoprotein metabolism in healthy young men. Arteriosclerosis and Thrombosis 14, 576586.CrossRefGoogle ScholarPubMed
Folch, J., Lees, M. & Sloane-Stanley, G. H. (1957). A simple method for the isolation and purification of total lipids from animal tissues. Journal of Biological Chemistry 226, 497509.CrossRefGoogle ScholarPubMed
Hargis, P. S. (1988). Modifying egg yolk cholesterol in the domestic fowl-a review. World's Poultry Science 44, 1729.CrossRefGoogle Scholar
Hargis, P. S. & Van Elswyk, M. E. (1993). Manipulating the fatty acid composition of poultry meat and eggs for the health conscious consumer. World's Poultry Science 49, 251264.CrossRefGoogle Scholar
Hargis, P. S., Van Elswyk, M. E. & Hargis, B. M. (1991). Dietary modification of yolk lipid with menhaden oil. Poultry Science 70, 874883.CrossRefGoogle ScholarPubMed
Herber, S. M. & Van Elswyk, M. E. (1996). Dietary marine algae promote efficient deposition of n–3 fatty acids for the production of enriched shell eggs. Poultry Science 75, 15011507.CrossRefGoogle ScholarPubMed
Keli, S. O., Feskens, E. J. M. & Kromhout, D. (1994). Fish consumption and risk: the Zutphen study. Stroke 25, 328332.CrossRefGoogle ScholarPubMed
Kromhout, D., Bosschieter, E. B. & Coulander, C. (1985). The inverse relationship between fish consumption and 20-year mortality from coronary heart disease. New England Journal of Medicine 312, 12051209.CrossRefGoogle Scholar
Larmond, E. (1977). Laboratory Methods for Sensory Evaluation of Food. Publication no. 1637. Ottawa: Canadian Department of Agriculture.Google Scholar
Marshall, A. C., Sams, A. R. & Van Elswyk, M. E. (1995). Oxidative stability and sensory quality of stored eggs from hens fed 1·5% menhaden oil. Journal of Food Science 59, 561563.CrossRefGoogle Scholar
Meilgaard, M., Civille, G. C. & Carr, B. T. (1989). Sensory Evaluation Techniques, 1st ed., p. 135, Champaign, IL: AOCS Press.Google Scholar
Nettleton, J. A. (1991). N–3 fatty acids: comparison of plant and seafood sources in human nutrition. Journal of the American Dietetic Association 91, 331337.CrossRefGoogle ScholarPubMed
Nettleton, J. A. (1993). Are n–3 fatty acids essential nutrients for fetal and infant development? Journal of the American Dietetic Association 93, 5864.CrossRefGoogle ScholarPubMed
Rhee, K. S. (1978). Minimization of further lipid peroxidation in the distillation 2-thiobarbituric acid test of fish and meat. Journal of Food Science 43, 17761778.CrossRefGoogle Scholar
Simopolous, A. P. & Salem, N. (1991). Egg yolk as a source of long-chain polyunsaturated fatty acids in infant feeding. American Journal of Clinical Nutrition 55, 411414.CrossRefGoogle Scholar
Tarladgis, B. G., Watts, B. M. & Younathan, M. T. (1960). A distillation method for the quantitative determination of malonaldehyde in rancid foods. Journal of the American Oil Chemists' Society 37, 4448.CrossRefGoogle Scholar
United States Department of Agriculture (1993). Nutrition: Eating for Good Health. Agriculture Information Bulletin no. 685. Washington, DC: USDA.Google Scholar
Van Elswyk, M. E., Dawson, P. L. & Sams, A. R. (1995). Dietary menhaden oil influences sensory characteristics and headspace volatiles of shell eggs. Journal of Food Science 60, 8589.CrossRefGoogle Scholar
Van Elswyk, M. E., Sams, A. R. & Hargis, P. S. (1992). Composition, functionality, and sensory evaluation of eggs from hens fed dietary menhaden oil. Journal of Food Science 57, 342344, 349.CrossRefGoogle Scholar