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Efficiency of utilization of essential amino acids in growing rats at different levels of intake

Published online by Cambridge University Press:  09 March 2007

J. Heger
Affiliation:
Research Institute of Feed Supplements and Veterinary Drugs, 254 49 Jilové, Czechoslovakia
Z. Frydrych
Affiliation:
Research Institute of Feed Supplements and Veterinary Drugs, 254 49 Jilové, Czechoslovakia
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Abstract

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1. Nitrogen balance was studied in growing male SPF-rats fed on diets in which each essential amino acid was varied from zero to about 120% of optimum requirement. From the balance results, optimum and maintenance requirements were estimated as well as the efficiency of utilization of amino acids for growth and growth + maintenance.

2. N balance increased with increasing dietary level of the deficient amino acid; the response gradually diminished as the content of the amino acid approached optimum. At zero level of intake, negative N balance was found for all amino acids except histidine. The highest loss of body N was found in the sulphur-amino-acid-free diet and the lowest one in the lysine-free diet.

3. Maximal utilization of essential amino acids for growth was found at dietary levels corresponding to 30–60% of optimum requirement and ranged from about 0.65 to 0.85 except for S amino acids and histidine. The utilization of S amino acids was about 0.55 while that of histidine exceeded 1.0. The utilization of amino acids for growth-tmaintenance was maximal at the lowest levels of intake and gradually decreased as the dietary concentration of the limiting amino acid increased. At dietary levels near optimum the utilization was about 06–07, except for S amino acids where the utilization was less than 0.5.

Type
Papers on General Nutrition
Copyright
Copyright © The Nutrition Society 1985

References

REFERENCES

Aguilar, T. S., Harper, A. E. & Benevenga, N. J. (1972). Journal of Nutrition 102, 11991208.CrossRefGoogle Scholar
Ashida, A. & Yoshida, A. (1975). In Proceedings of the 9th Congress of Nutrition, vol. 3, pp. 321331. Basel: Karger.Google Scholar
Associaton of Official Agricultural Chemists (1970). Official Methods of Analysis, pp. 800801. Washington, DC: Association of Official Agricultural Chemists.Google Scholar
Bender, A. E. (1965). Proceedings of the Nutrition Society 24, 190196.CrossRefGoogle Scholar
Benditt, E. P., Woolridge, C. H., Stefee, C. H. & Frazier, L. E. (1950). Journal of Nutrition 40, 335350.CrossRefGoogle Scholar
Bunce, G. E. & King, K. W. (1969 a). Journal of Nutrition 98, 159167.CrossRefGoogle Scholar
Bunce, G. E. & King, K. W. (1969 b). Journal of Nutrition 98, 168176.CrossRefGoogle Scholar
Burroughs, E. W., Burroughs, H. S. & Mitchell, H. H. (1940). Journal of Nutrition 19, 363384.CrossRefGoogle Scholar
Dawson, R. & Milne, G. (1976). Proceedings of the Nutrition Society 35, 81A.Google Scholar
Heger, J.Frydrych, Z. & Froněk, P. (1983). Animal Feed Science and Technology 8, 163176.CrossRefGoogle Scholar
Hegsted, D. M. (1964). In Mammalian Protein Metabolism, vol. 2, pp. 135171 [Munro, H. N. editor]. New York: Academic Press.CrossRefGoogle Scholar
King, K. W. (1963). Federation Proceedings 22, 11151121.Google Scholar
Mercer, L. P., Farnell, K. E., Morgan, P. H., Longenecker, H. E. & Lewis, J. R. (1977). Nutrition Reports International 15, 17.Google Scholar
Mitchell, H. H. (1964). In Protein and Amino Acid Metabolism, pp. 1143 [Albanese, A. A. editor]. New York: Academic Press.Google Scholar
Morris, T. R. (1983). In Recent Advances in Animal Nutrition—1983, pp. 1324 [Haresign, W editor]. London: Buttenvorths.CrossRefGoogle Scholar
National Research Council (1978). Nutrient Requirements of the Laboratory Rat, pp. 1326. Washington, DC: National Academy of Science.Google Scholar
Nehring, K., Beyer, M. & Hoffmann, B. (1972). Futtermitteltabellenwerk. Berlin: VEB Deutsche Landwirtschaftsverlag.Google Scholar
Nelder, J. A. (1966). Biometrics 22, 128141.CrossRefGoogle Scholar
Ousterhout, L. E. (1960). Journal of Nutrition 70, 226232.CrossRefGoogle Scholar
Pellett, P. L. & Kaba, H. (1972). Journal of Nutrition 102, 6168.CrossRefGoogle Scholar
Peng, Y. S. (1979). Journal of Nutrition 109, 19161924.CrossRefGoogle Scholar
Rosenberg, H. R., Culik, R. & Eckert, R. E. (1959). Journal of Nutrition 69, 217228.CrossRefGoogle Scholar
Said, A. K. & Hegsted, D. M. (1970). Journal of Nutrition 100, 13631375.CrossRefGoogle Scholar
Schwartz, H. G., Taylor, M. W. & Fisher, H. (1958). Journal of Nutrition 65, 2537.CrossRefGoogle Scholar
Smith, E. B. & Johnson, B. C. (1967). British Journal of Nutrition 21, 1727.CrossRefGoogle Scholar
Yamashita, K. & Ashida, K. (1969). Journal of Nutrition 99, 267273.CrossRefGoogle Scholar
Yokogoshi, H. & Yoshida, A. (1976). Journal of Nutrition 106, 4857.CrossRefGoogle Scholar
Yokogoshi, H. & Yoshida, A. (1981). Nutrition Reports International 23, 517523.Google Scholar
Yoshida, A. & Ashida, K. (1969). Agricultural and Biological Chemistry 33, 4349.CrossRefGoogle Scholar
Yoshida, A. & Moritoki, K. (1974). Nutrition Reports International 9, 159168.Google Scholar