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Acclimatization of Scottish Blackface sheep to cold. 2. Skin temperature, heart rate, respiration rate, shivering intensity and skinfold thickness

Published online by Cambridge University Press:  02 September 2010

A. R. Sykes
Affiliation:
A.R.C. Animal Breeding Research Organisation, Edinburgh 9
J. Slee
Affiliation:
A.R.C. Animal Breeding Research Organisation, Edinburgh 9
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Extract

Closely shorn Scottish Blackface female sheep aged 9–14 months, half on high plane and half on low plane nutrition, were subjected, in climate chambers, to two short acute cold exposures down to −20°C. The acute exposures were separated by two weeks chronic exposure to a moderately subcriticai temperature (+8°C) or to a thermoneutral temperature (+30°C). Most of the sheep showed a greater resistance to body cooling at the second acute exposure (Slee and Sykes, 1967). This increased resistance to hypothermia, defined as acclimatization, was apparently influenced more by acute than by chronic cold exposure. The present paper deals with changes in skin temperature, heart rate, shivering intensity and skinfold thickness which also resulted from cold exposure, and accompanied acclimatization.

After acute cold exposure followed by chronic exposure to +8°C the following changes in these parameters were observed:

1. Extremity skin temperatures and heart rates were consistently increased at thermoneutral ambient temperatures.

2. Vasoconstriction of the extremities and increased heart rate, both of which normally occur during the early stages of cold exposure, were delayed.

3. Heart rates at sub-zero ambient temperatures were increased.

4. Cold-induced vasodilatation at sub-zero ambient temperatures was increased.

After acute cold treatment alone the intensity of shivering during the second acute exposure was reduced. Also the onset of foot vasoconstriction was slightly delayed.

A highly significant relationship was observed between shivering intensity and heart rate during cold exposure.

Plane of nutrition had less effect on the physiological responses to cooling than did previous cold experience.

It was suggested in discussion that the physiological responses associated with acclimatization were: elevated basal metabolic rate, delayed onset of vasoconstriction and delayed metabolic response to cold, and consequent lowering of the critical temperature. Summit metabolism was also increased and shivering intensity reduced during acute cold exposure. Some of these responses could have resulted from either acute or chronic moderate cold exposure. However their persistence, once induced, appeared to depend upon continued exposure to moderate cold.

Type
Research Article
Copyright
Copyright © British Society of Animal Science 1968

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References

Blair, J. R. 1951. Cold Injury. Trans. 1st Conf. Josiah Macy Jnr. Foundation, New York.Google Scholar
Blaxter, K. L., Graham, N. McC., Wainman, F. W. and Armstrong, D. G. 1959. Environmental temperature, energy metabolism and heat production in sheep. II. The partition of heat losses in closely clipped sheep. J. agric. Sci., Camb. 52: 2540.CrossRefGoogle Scholar
Bligh, J. 1963. Inhibition of thermal polypnoea in the closely shorn sheep. J. Physiol., Lond. 168: 764781.CrossRefGoogle ScholarPubMed
Booyens, J. and Hervey, G. R. 1960. The pulse rate as a means of measuring metabolic rate in man. Can. J. Biochem. Physiol. 38: 13011309.CrossRefGoogle Scholar
Budd, G. M. 1965. Effects of cold exposure and exercise in a wet, cold antarctic climate. J. appi. Physiol. 20: 417422.CrossRefGoogle Scholar
Budd, G. M. and Warhaft, N. 1966. Body temperature, shivering, blood pressure and heart rate during a standard cold stress in Australia and Antarctica. J. Physiol., Lond. 186: 216232.CrossRefGoogle ScholarPubMed
Carlson, L. D., Burns, H. L., Holmes, T. H. and Webb, P. P. 1953. Adaptive changes during exposure to cold. J. appi. Physiol. 5: 672676.CrossRefGoogle ScholarPubMed
Cottle, W. and Carlson, L. D. 1954. Adaptive changes in rats exposed to cold: caloric exchange. Am. J. Physiol. 178: 305308.CrossRefGoogle ScholarPubMed
Cottle, W. H. and Carlson, L. D. 1956. Regulation of heat production in cold adapted rats. Proc. Soc. exp. Biol. Med. 92: 845849.CrossRefGoogle Scholar
Davis, T. R. A. and Johnston, D. R. 1961. Seasonal acclimatization to cold in man. J. appi. Physiol. 16: 231234.CrossRefGoogle ScholarPubMed
Davis, T. R. A. 1963. Acclimatization to cold in man. In ‘Temperature, its Measurement and Control in Science and Industry’. III. Biology and Medicine, Reinhold, New York.Google Scholar
Depocas, F., Hart, J. S. and Héroux, O. 1957. Energy metabolism of the white rat after acclimation to warm and cold environments. J. appi. Physiol. 10: 393397.CrossRefGoogle ScholarPubMed
Desmarais, A. and Dugal, L. P. 1951. Circulation périphérique et teneur des surrènales en adrenaline et en artérenol (noradrenaline) chez le rat blanc exposé au froid. Can. J. med. Res. 29: 9094.Google Scholar
Eagan, C. J. 1963. Local vascular adaptations to cold. Fedn. Proc. Fedn. Am. Socs. exp. Biol. 22: 947952.Google Scholar
Elsner, R. W. 1963. Comparison of Australian aborigines, Alacaluf Indians and Andean Indians. Fedn. Proc. Fedn. Am. Socs. exp. Biol. 22: 840842.Google Scholar
Gelineo, M. S. 1934. Influence du milieu thermique d'adaptation sur la thermogenèse des homeothermes. Ann. Physiol. Physicochim. Biol. 10: 10831115.Google Scholar
Glaser, E. M. and Shephard, R. J. 1963. Simultaneous experimental acclimatization to heat and cold in man. J. Physiol., Lond. 169: 592602.CrossRefGoogle ScholarPubMed
Graham, N. McC. 19601961. C.S.I.R.O. Anim. Res. Labs. Ann. Rep., p. 94.Google Scholar
Hammel, H. T. 1964. Terrestrial animals in cold: recent studies of primitive man. In Handbook of Physiology, Section 4: Adaptation to the Environment. Am. Physiol. Soc, Washington.Google Scholar
Hardy, J. D. 1961. Physiology of temperature regulation. Physiol. Rev. 41: 521606.CrossRefGoogle ScholarPubMed
Hart, J. S. 1963. Physiological responses to cold in non-hibernating homeotherms. In Temperature, its Measurement and Control in Science and Industry. III. Biology and Medicine, Reinhold, New York.Google Scholar
Héroux, O. 1959. Comparison between seasonal and thermal acclimation in white rats. II. Surface temperature, vascularisation and in vitro respiration of the skin. Can. J. Biochem. Physiol. 37: 12471253.CrossRefGoogle ScholarPubMed
Hutchinson, J. C. D., Bennett, J. W. and Wodzicka-Tomaszewska, M. 1960. Cold stress after shearing with a snow comb. Proc. Aust. Soc. Anim. Prod. 3: 199203.Google Scholar
Joyce, J. P. and Blaxter, K. L. 1964(a). Respiration in sheep in cold environments. Bes. vet. Sci. 5: 506516.CrossRefGoogle Scholar
Joyce, J. P. and Blaxter, K. L. 1964(b). Effect of air movement, air temperature and infrared radiation on the energy requirements of sheep. Br. J. Nutr. 18: 527.CrossRefGoogle ScholarPubMed
Lewis, T. 1930. Observations upon the reactions of the vessels of the human skin to cold. Heart, 15: 177208.Google Scholar
Prosser, C. L. 1964. Perspectives of adaptation: theoretical aspects. In Handbook of Physiology, Section 4: Adaptations to the Environment. Am. Physiol. Soc, Washington.Google Scholar
Scholander, P. F., Hammel, H. T., Anderson, K. L. and Løyning, Y. 1958. Metabolic acclimation to cold in man. J. appi. Physiol. 12: 18.CrossRefGoogle ScholarPubMed
Sellers, E. A., Scott, J. W. and Thomas, N. 1953. Electrical activity of skeletal muscle of normal and acclimatized rats on exposure to cold. Am. J. Physiol. 177: 372376.CrossRefGoogle Scholar
Slee, J. 1964. Comparative responses of Tasmanian Merino and Scottish Blackface sheep to a falling environmental temperature. Proc. Aust. Soc. Anim. Prod. 5: 188189.Google Scholar
Slee, J. 1966. Variation in the responses of shorn sheep to cold exposure. Anim. Prod. 8: 425–34.Google Scholar
Slee, J. and Sykes, A. R. 1967. Acclimatisation of Scottish Blackface sheep to cold. 1. Rectal temperature responses. Anim. Prod. 9: 333347.Google Scholar
Webster, A. J. F. 1966. The establishment of thermal equilibrium in sheep exposed to cold environments. Bes. vet. Sci. 7: 454465.CrossRefGoogle ScholarPubMed
Webster, A. J. F. and Blaxter, K. L. 1966. The thermal regulation of 2 breeds of sheep exposed to air temperatures below freezing point. Res. vet. Sci. 7: 466479.CrossRefGoogle ScholarPubMed
Webster, M. E. D. and Lynch, J. J. 1966. Some physiological and behavioural con-sequences of shearing. Proc. Aust. Soc. Anim. Prod. 6: 234239.Google Scholar
Wodzicka-Tomaszewska, M. 1960. Effect of cold on the thickness and chemical composition of the skin in sheep. Proc. Aust. Soc. Anim. Prod. 3: 195198.Google Scholar
Wodzicka-Tomaszewska, M. 1963. The effect of shearing on the appetite of sheep. N.Z. J. agric. Res. 6: 440447.CrossRefGoogle Scholar