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Uptake of labelled phenylalanine into different blood fractions in the portal vein and cranial mesenteric vein of lambs

Published online by Cambridge University Press:  27 March 2009

S. A. Neutze
Affiliation:
Department of Animal Science, University of Sydney, Camden, NSW 2570, Australia
J. M. Gooden
Affiliation:
Department of Animal Science, University of Sydney, Camden, NSW 2570, Australia
V. H. Oddy
Affiliation:
Cattle and Beef Industry Cooperative Research Centre (Meat Quality), University of New England, Armidale, NSW 2351, Australia

Summary

Four lambs (mean 27 kg liveweight) offered 900 g/day lucerne chaff were prepared with catheters in the portal vein (PV), cranial mesenteric vein (CMV), femoral artery (FA) and abomasum. L-[2,6-3H]phenylalanine (Phe) and 14C-(Phe)casein were infused into the abomasum in separate experiments. Concurrent samples of blood from the PV, CMV and FA were prepared as four fractions: plasma, deproteinized whole blood, free Phe in deproteinized whole blood, and whole blood. Ratios of net label uptakes in different blood fractions indicated that red blood cells and blood proteins were unlikely to contribute to net Phe uptake into the PV or CMV. Small peptides may have contributed up to 20% to total appearance of Phe in the PV and CMV. However, net uptake of peptides from the lumen was probably zero. It was concluded that the Phe uptake and, by implication, total amino acid uptake from the lumen of the small intestine into the PV and CMV were as free amino acids.

Type
Animals
Copyright
Copyright © Cambridge University Press 1996

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References

REFERENCES

Adibi, S. A. & Phillips, E. (1968). Evidence for greater absorption of amino acids from peptide than from free form in human intestine. Clinical Research 16, 446.Google Scholar
Alpers, D. H. (1986). Uptake and fate of absorbed amino acids and peptides in the mammalian intestine. Federation Proceedings 45, 22612267.Google ScholarPubMed
Attaix, D. (1988). Influence de l' âge el du sewage sur la synthèse protéique chez l' agneau. Thèse de Doctorat d'Etat, l'Université Blaise Pascal, Clermont II, France.Google Scholar
Christensen, H. N. (1977). Implications of the cellular transport step for amino acid metabolism. Nutrition Reviews 35, 129133.Google Scholar
Dawson, R. & Holdsworth, E. S. (1962). An investigation into protein digestion with 14C-labelled protein. 1. The general pattern of 14C incorporation in body tissues and fluids of the rat up to 3 h after feeding. British Journal of Nutrition 16, 1326.CrossRefGoogle ScholarPubMed
Dawson, R. & Porter, J. W. G. (1962). An investigation into protein digestion with 14C-labelled protein. 2. The transport of 14C-labelled nitrogenous compounds in the rat and cat. British Journal of Nutrition 16, 2738.Google Scholar
Dickinson, J. C, Rosenblum, H. & Hamilton, P. B. (1965). Ion exchange chromatography of the free amino acids in the plasma of the newborn infant. Pediatrics 36, 213.Google Scholar
Dolezalova, V. & Brada, Z. (1964). Quantitative microfractionation of sulphosalicylic acid-soluble substances from human serum. Clinica Chimica Ada 10, 3438.Google Scholar
Elwyn, D. H., Launder, W. J., Parikh, H. C. & Wise, E. M. (1972). Roles of plasma and erythrocytes in interorgan transport of amino acids in dogs. American Journal of Physiology 222, 13331342.Google Scholar
Felig, P., Wahren, J. & Räf, L. (1973). Evidence of interorgan amino-acid transport by blood cells in humans. Proceedings of the National Academy of Sciences, USA 70, 17751779.Google Scholar
Hara, H., Funabiki, R., Iwata, M. & Yamazaki, K. (1984). Portal absorption of small peptides in rats under unrestrained conditions. Journal of Nutrition 114, 11221129.CrossRefGoogle ScholarPubMed
Harris, P. M., Waghorn, G. C. & Lee, J. (1990). Nutritional partitioning of growth for productive gain. Proceedings of the New Zealand Society of Animal Production 50, 8190.Google Scholar
Heitmann, R. N. & Bergman, E. N. (1980). Transport of amino acids in whole blood and plasma of sheep. American Journal of Physiology 239, E242E247.Google ScholarPubMed
Huntington, G. B. (1987). Net absorption from portaldrained viscera of nitrogenous compounds by beef heifers fed on diets differing in protein solubility or degradability in the rumen. British Journal of Nutrition 57, 109114.Google Scholar
Jois, M. (1986). Amino acid metabolism in ruminants. PhD thesis, University of Sydney, Australia.Google Scholar
Katz, M. L. & Bergman, E. N. (1969). A method for simultaneous cannulation of the major splanchnic blood vessels of the sheep. American Journal of Veterinary Research 30, 655661.Google Scholar
Koeln, L. L., Schlagheck, T. G. & Webb, K. E. jr, (1993). Amino acid flux across the gastrointestinal tract and liver of calves. Journal of Dairy Science 76, 22752285.CrossRefGoogle ScholarPubMed
Lee, H.-M., Forde, M.D., Lee, M. C. & Bucher, D. J. (1979). Fluorometric microbore amino acid analyzer: the construction of an inexpensive, highly sensitive instrument using o-pthalaldehyde as a detection agent. Analytical Biochemistry 96, 298307.CrossRefGoogle Scholar
Lowry, O. H., Rosebrough, N. J., Farr, A. L. & Randall, R. J. (1951). Protein measurement with the Folin phenol reagent. Journal of Biological Chemistry 193, 265275.CrossRefGoogle ScholarPubMed
Macrae, J. C. & Reeds, P. J. (1980). Prediction of protein deposition in ruminants. In Protein Deposition in Animals (Eds Buttery, P. J. & Lindsay, D. B.), pp. 225249. London: Butterworths.CrossRefGoogle Scholar
Mccormick, M. E. & Webb, K. E. jr, (1982). Plasma free, erythrocyte free and plasma peptide amino acid exchange of calves in steady state and fasting metabolism. Journal of Nutrition 112, 276282.CrossRefGoogle ScholarPubMed
Mccormick, M. E. & Webb, K. E. jr, (1987). Serum proteins as carriers of amino acids to and from the hindlimbs of fed and fasted calves. Journal of Animal Science 64, 586593.CrossRefGoogle ScholarPubMed
Neutze, S. A., Oddy, V. H., Gooden, J. M., Forbes, W. A. & Warren, H. M. (1990). Portal uptake of amino acids by sheep given oaten chaff supplemented with rumen escape protein. Proceedings of the Nutrition Society of Australia 15, 145.Google Scholar
Neutze, S. A., Oddy, V. H. & Gooden, J. M. (1994). A cranial mesenteric vein preparation for measurement of amino acid uptake by lambs. Journal of Agricultural Science, Cambridge 122, 309314.Google Scholar
Oddy, V. H. (1986). Muscle protein metabolism in lambs. PhD thesis, University of Cambridge.Google Scholar
Prior, R. L., Huntington, G. B. & Britton, R. A. (1981). Influence of diet on amino acid absorption in beef cattle and sheep. Journal of Nutrition 111, 22122222.CrossRefGoogle ScholarPubMed
Seal, C. J. & Parker, D. S. (1991). Isolation and characterization of circulating low molecular weight peptides in steer, sheep and rat portal and peripheral blood. Comparative Biochemistry and Physiology 99B, 679685.Google Scholar
Seal, C. J. & Parker, D. S. (1993). Net absorption of low molecular weight peptides by the mesenteric- and portaldrained viscera of steers. Proceedings of the Nutrition Society 52, 190A.Google Scholar
Steinhardt, H. J. & Adibi, S. A. (1983). Kinetics and characteristics of absorption of essential and nonessential amino acids from a mixture of twelve dipeptides in human intestine. Gastroenterology 84, 1323.Google Scholar
Tagari, H. & Bergman, E. N. (1978). Intestinal disappearance and portal blood appearance of amino acids in sheep. Journal of Nutrition 108, 790803.Google Scholar
Webb, K. E. jr, Matthews, J. C. & Dirienzo, D. B. (1992). Peptide absorption: a review of current concepts and future perspectives. Journal of Animal Science 70, 32483257.CrossRefGoogle ScholarPubMed
Webb, K. E. jr, Dirienzo, D. B. & Matthews, J. C. (1993). Recent developments in gastrointestinal absorption and tissue utilization of peptides: a review. Journal of Dairy Science 76, 351361.Google Scholar
Wolff, J. E., Bergman, E. N. & Williams, H. H. (1972). Net metabolism of plasma amino acids by liver and portal-drained viscera of fed sheep. American Journal of Physiology 233, 438446.CrossRefGoogle Scholar