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Cold Exposure of Southdown and Welsh Mountain Sheep. 3. Changes in plasma calcium, phosphorus, magnesium, sodium and potassium levels

Published online by Cambridge University Press:  02 September 2010

A. R. Sykes
Affiliation:
A.R.C. Animal Breeding Research Organisation, West Mains Road, Edinburgh 9 and Moredun Research Institute, Edinburgh 9
A. C. Field
Affiliation:
A.R.C. Animal Breeding Research Organisation, West Mains Road, Edinburgh 9 and Moredun Research Institute, Edinburgh 9
J. Slee
Affiliation:
A.R.C. Animal Breeding Research Organisation, West Mains Road, Edinburgh 9 and Moredun Research Institute, Edinburgh 9
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Summary

Southdown and Welsh Mountain female sheep, equal numbers on high and low plane nutrition, were shorn and subjected to two acute cold exposures (−20°C, 4 mph wind) in climate chambers. Before the first exposure the sheep were kept in either a cool (+8°C) or a thermoneutral (+30°C) environment for two weeks. Between exposures these environmental temperatures were reversed within groups. Blood samples were withdrawn at the beginning and end of the two week exposures and on three occasions during acute cold exposure. Plasma analyses of Ca, P, Mg, Na and K were carried out. Exposure to +8°C caused a 12% reduction in plasma Mg levels of all sheep, but had no effect on Ca, Na or K levels. There were breed × temperature interactions with respect to plasma P levels. Acute cold exposure caused reductions in plasma Mg and Ca levels and an increase in plasma P levels of all groups of sheep. Changes in plasma Na and K levels could have been caused by plasma concentration.

Electrolyte levels initially displaced by exposure to +8°C showed no evidence of a return to normality two weeks later. Only for Ca was there evidence that prior exposure to +8°C modified the response to acute cold exposure.

Type
Research Article
Copyright
Copyright © British Society of Animal Science 1969

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References

REFERENCES

Allcroft, W. M. 1947. Seasonal hypomagnesaemia of the bovine without clinical symptoms. Vet. J. 103: 75100.Google ScholarPubMed
Armstrong, D. G., Blaxter, K. L., Clapperton, J. L., Graham, N. McC., and Wainman, F. W. 1960. Heat production and heat emission of two breeds of sheep. J. agric. Sci., Camb. 33: 395401.CrossRefGoogle Scholar
Baker, D. G. and Sellers, E. A. 1957. Electrolyte metabolism in the rat exposed to a low environmental temperature. Can. J. Biochem. Physiol. 35: 631636.CrossRefGoogle ScholarPubMed
Bass, D. E. and Henschel, A. 1956. Responses of body fluid compartments to heat and cold. Physiol. Rev. 36: 128144.CrossRefGoogle ScholarPubMed
Deb, C. and Hart, J. S. 1956. Haematological and body fluid compartment adjustments during acclimation to a cold environment. Can. J. Biochem. Physiol. 34: 959966.CrossRefGoogle Scholar
Field, A. C. 1964. Studies on magnesium in ruminant nutrition. 5. The indirect determination of the intake of magnesium, calcium and potassium by the grazing cow. Br. J. Nutr. 18: 357367.CrossRefGoogle ScholarPubMed
Hannon, J. P., Larson, A. M., and Young, D. W. 1958. Effect of cold acclimatization on plasma electrolyte levels. J. appl. Physiol. 13: 239240.CrossRefGoogle ScholarPubMed
Inglis, J. S. S., Weipers, M. and Pearce, P. J. 1959. Hypomagnesaemia in sheep. Vet. Rec. 71: 755763.Google Scholar
McAleese, D. M., and Forbes, R. M. 1961. The requirement and tissue distribution of magnesium in the rat as influenced by environmental temperature and dietary calcium. J. Nutr. 73: 93106.CrossRefGoogle Scholar
Neubeiser, R. E., Platner, W. S., and Shields, J. L. 1961. Magnesium in blood and tissues during cold acclimation. J. appl. Physiol. 16: 247249.CrossRefGoogle ScholarPubMed
Platner, W. S. and Hosko, M. J. Jnr. 1953. Mobility of serum magnesium in hypothermia. Am. J. Physiol. 174: 273276.CrossRefGoogle ScholarPubMed
Quinn, M., Bass, D. E. and Kleeman, C. R. 1953. Effect of acute cold exposure on serum potassium and magnesium and the electrocardiogram in man. Proc. Soc. exp. Biol. Med. 83: 660661.CrossRefGoogle ScholarPubMed
Suttle, N. F. and Field, A. C. 1967. Studies on magnesium in ruminant nutrition. 8. Effect of increased intakes of potassium and water on the metabolism of magnesium, phosphorus, sodium, potassium and calcium in sheep. Br. J. Nutr. 21: 819831.CrossRefGoogle Scholar
Suttle, N. F. and Field, A. C. 1969. Studies on magnesium in ruminant nutrition. 9. Effects of potassium and magnesium intakes on development of hypomagnesaemia in sheep. Br. J. Nutr (in the press).CrossRefGoogle Scholar
Sykes, A. R. and slee, J. 1969a. Cold exposure of Southdown and Welsh Mountain sheep. 1. Effects of breed, plane of nutrition and acclimatization to cold upon resistance to body cooling. Anim. Prod. 11: 6575.Google Scholar
Sykes, A. R. and Slee, J. 1969b. Cold exposure of Southdown and Welsh Mountain sheep. 2. Effects of breed, plane of nutrition and previous acclimatization to cold upon skin temperature, heart rate, shivering and respiration rate. Anim. Prod. 11: 7789.Google Scholar
Wiener, G. 1966. Genetic and other factors in the occurrence of swayback in sheep. J. comp. Path. 76: 435447.CrossRefGoogle ScholarPubMed
Wiener, G. and Field, A. C. 1966. Blood copper-levels in sheep in relation to genetic factors, parity and previous swayback history. Nature, Lond. 209: 835836.CrossRefGoogle ScholarPubMed