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Pattern of milk production of East Friesland and Scottish Blackface ewes and associated blood metabolite and hormone profiles

Published online by Cambridge University Press:  02 September 2010

S. M. Rhind
Affiliation:
Macaulay Land Use Research Institute, Craigiebuckler, Aberdeen AB9 2Q
J. Bass
Affiliation:
Macaulay Land Use Research Institute, Craigiebuckler, Aberdeen AB9 2Q
J. M. Doney
Affiliation:
Macaulay Land Use Research Institute, Craigiebuckler, Aberdeen AB9 2Q
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Abstract

Patterns of milk production and circulating blood metabolite and hormone concentrations were determined throughout a 14-week lactation in groups of 10 twin-rearing East Friesland EF) and Scottish Blackface (SBF) ewes. All ewes were offered, ad libitum, a pelleted diet throughout the experiment and milk yields were measured weekly. Pooled blood samples (six samples, 20-min intervals), collected before feeding, on 1 day of each week, were assayed for plasma glucose, non-esterfied fatty acids, 3-hydroxybutyrate (3-OHB), albumin, total protein, insulin, growth hormone (GH), cortisol, prolactin, thyroxine (T4), and triiodothyronine (T3). At weeks 2, 4,10, and 14, samples were collected at 20-min intervals for 8 h and assayed individually for plasma insulin, GH, cortisol, and prolactin. Mean daily intakes and milk yields of ewes were similar in the two breeds. Mean pre-feeding concentrations of most blood metabolites during the experiment were also similar in ewes of the two breeds but SBF ewes had higher plasma concentrations of 3-OHB (0·67 v. 0·43 mmol/l; P < 0·01) and total protein (73·2 v. 66·4 g/l; P < 0·001). SBF ewes had higher overall mean concentrations of insulin (9·53 v. 4·36 mU/l; P < 0·001), cortisol (7·59 v. 573 μg/l; P < 0·05), prolactin (457·1 v. 316·1 μg/l; P < 0·05), and T3 (1.32 v. 1·12 μg/l; P < 0·001). GH and T4 profiles were similar in the two breeds. Following the daily introduction of fresh food, there were significant increases in concentration of insulin (P < 0·001) and cortisol (P < 0·01) while there was a decrease in mean concentrations of GH (P < 0·001) and prolactin (P < 0·01). There were significant interactions between breed and feeding effects on insulin, GH, cortisol and prolactin concentrations. Patterns of milk production in ewes of these breeds were associated with changes in insulimGH ratios both before and after feeding which may be of a causal nature.

Type
Research Article
Copyright
Copyright © British Society of Animal Science 1992

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References

Annison, E. F., Linzell, J. L., Fazakerley, S. and Nichols, B. W. 1967. The oxidation and utilization of palmitate, stearate, oleate and acetate by the mammary gland of the fed goat in relation to their overall metabolism and the role of plasma phospholipids and neutral lipids in milk fat synthesis. Biochemical Journal 102: 637647.CrossRefGoogle ScholarPubMed
Cowan, R. T., Robinson, J. J., McDonald, I. and Smart, R. 1980. Effects of body fatness at lambing and diet in lactation on body tissue loss, feed intake and milk yield of ewes in early lactation. Journal of Agricultural Science, Cambridge 95: 497514.CrossRefGoogle Scholar
Doney, J. M., Peart, J. N., Smith, W. F. and Louda, F. 1979. A consideration of the techniques for estimation of milk yield by suckled sheep and a comparison of estimates obtained by two methods in relation to the effect of breed, level of production and stage of lactation. Journal of Agricultural Science, Cambridge 92: 123132.CrossRefGoogle Scholar
Failing, J. F., Buckley, M. W. and Zak, B. 1960. Automatic determination of serum proteins. American Journal of Clinical Pathology 33: 8388.CrossRefGoogle Scholar
Foot, J. Z., Skedd, E. and McFarlane, D. N. 1979. Body composition in lactating sheep and its indirect measurement in the live animal using tritiated water. Journal of Agricultural Science, Cambridge 92: 6981.CrossRefGoogle Scholar
Hart, I. C., Bines, J. A., Morant, S. V. and Ridley, J. L. 1978. Endocrine control of energy metabolism in the cow: comparison of the levels of hormones (prolactin, growth hormone, insulin and thyroxine) and metabolites in the plasma of high- and low-yielding cattle at various stages of lactation. Journal of Endocrinology 77: 333345.CrossRefGoogle ScholarPubMed
Hart, I. C., Flux, D. S., Andrews, P. and McNeilly, A. S. 1975. Radioimmunoassay for ovine and caprine growth hormones: its application to the measurement of basal circulating levels of growth hormone in the goat. Hormone and Metabolic Research 7: 3540.CrossRefGoogle Scholar
McCance, I. 1959. The determination of milk yield in the Merino ewe. Australian Journal of Agricultural Research 10: 839853.CrossRefGoogle Scholar
McNeilly, A. S. and Andrews, P. 1974. Purification and characterization of caprine prolactin. Journal of Endocrinology 60: 359367.CrossRefGoogle ScholarPubMed
Paterson, D. S. P. 1963. Some observations on the estimation of non-esterified fatty acid concentrations in cow and sheep plasma. Research in Veterinary Science 4: 230237.CrossRefGoogle Scholar
Peart, J. N. 1973. Milk production of Westphalian milch sheep. 6th annual report, Hill Farming Research Organisation, p. 6.Google Scholar
Peart, J. N., Doney, J. M. and Smith, W. F. 1979. Lactation patterns in Scottish Blackface and East Friesland × Scottish Blackface cross-bred ewes. Journal of Agricultural Science, Cambridge 92: 133138.CrossRefGoogle Scholar
Rhind, S. M., Bass, J., Doney, J. M. and Hunter, E. A. 1991. Effect of litter size on the milk production blood metabolite profiles and endocrine status of ewes lambing in January and April. Animal Production 53: 7180.Google Scholar
Richardson, T. 1977. A modification of the Trinder Auto Analyzer method for glucose. Annals of Clinical Biochemistry 14: 223226.CrossRefGoogle Scholar
Spencer, K. and Price, C. P. 1977. Influence of reagent quality and reaction conditions on the determination of serum albumin by the bromocresol green dye-binding method. Annals of Clinical Biochemistry 14: 105115.CrossRefGoogle Scholar
Tindal, J. S., Knaggs, G. S., Hart, I. C. and Blake, L. A. 1978. Release of growth hormone in lactating and non-lactating goats in relation to behaviour, stages of sleep, electro-encephalograms, environmental stimuli and levels of prolactin, insulin, glucose and free fatty acids in the circulation. Journal of Endocrinology 76: 333346.CrossRefGoogle Scholar
Trenkle, A. 1981. Endocrine regulation of energy metabolism in ruminants. Federation Proceedings 40: 25362541.Google ScholarPubMed
Tucker, H. A. 1988. Lactation and its hormonal control. In Physiology of Reproduction (ed. Knobil, E. and Neill, J.), pp 22352263. Raven Press, New York.Google Scholar
Weekes, T. E. C. and Godden, P. M. M. 1981. Nutrition and metabolic hormones. In Hormones and metabolism in ruminants, proceedings of Agricultural Research Council Workshop, pp. 99111.Google Scholar
Wilcox, A. A., Carroll, W. E., Sterling, R. E., Davis, H. A. and Ware, A. G. 1966. Use of the Berthelot reaction in automated analysis of serum urea nitrogen. Clinical Chemistry 12: 151157.CrossRefGoogle ScholarPubMed
Zivin, J. A. and Snarr, J. F. 1973. An automated colorimetric method for the measurement of 3-hydroxybutyrate concentration. Analytical Biochemistry 52: 456461.CrossRefGoogle ScholarPubMed