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18 - Thermoregulation and energetics

Published online by Cambridge University Press:  05 June 2012

Jutta Schmid
Affiliation:
University of Ulm
Joanna M. Setchell
Affiliation:
University of Surrey, Roehampton
Deborah J. Curtis
Affiliation:
University of Surrey, Roehampton
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Summary

INTRODUCTION

The study of how animals apportion their time and energy (energetics) can provide much insight into physiology, ecology and evolution (Bartholomew, 1982; Schmidt-Nielsen, 1997). Body temperature has a profound effect on the ability of animals to function effectively. Since all animals generate heat internally to some extent, energetics is closely linked to the problem of heat management and thermoregulation. For example, homeothermic or ‘warm-blooded’ animals (birds and mammals) must produce a great amount of heat in order to maintain a high and constant body temperature in cold as well as in warm surroundings (Schmidt-Nielsen, 1997). Moreover, natural environments can be extremely variable in their thermal attributes and consequently animals show behavioural and physiological adaptations that enable them to cope with these external gradients.

In recent years, there has been a tremendous increase in methodologies and techniques applicable to studies of energy expenditure and thermoregulation. This is particularly true for the study of daily energy requirements and body temperature rhythms of wild animals behaving normally in their natural habitats. In this contribution, I therefore review methods for the study of energetics and mechanisms of temperature regulation in primates (although these can generally be applied to almost all mammalian species). I also briefly mention other possibilities for physiological measurements. All procedures described here require capture of the study animals, and some require invasive surgical intervention. They therefore raise ethical questions when dealing with wild animals and/or endangered species, and require governmental permits and authorisation.

Type
Chapter
Information
Field and Laboratory Methods in Primatology
A Practical Guide
, pp. 271 - 281
Publisher: Cambridge University Press
Print publication year: 2003

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References

Audet, D. &Thomas, D. W. (1996). Evaluation of the accuracy of body temperature measurement using external transmitters. Can. J. Zool. 74 1778–81CrossRefGoogle Scholar
Bartholomew, G. A. (1982). Energy metabolism. In Animal Physiology: Principles and Adaptations, ed. M. S. Gordon, pp. 46–93. New York: Macmillan
Gursky, S. (1998). Effects of radio transmitter weight on a small nocturnal primate. Am. J. Primatol. 46 145–553.0.CO;2-W>CrossRefGoogle ScholarPubMed
Lifson, N. & McClintock, R. (1966). Theory of use of the turnover rates of body water for measuring energy and material balance. J. Theor. Biol. 12 46–74CrossRefGoogle ScholarPubMed
Michel, J. B.Wood, J. M.Hofbauer, K. G.Corvol, P. & Menard, J. (1984). Blood pressure effects of renin inhibition by human renin antiserum in normotensive marmosetsAm. J. Physiol. 246 F309–F316Google ScholarPubMed
Schartz, R. L. & Zimmermann, J. L. (1996). The time and energy budget of the male dickcissel (Spiza americana). Condor 73 65–76CrossRefGoogle Scholar
Schmid, J.Ruf, T. & Heldmaier, G. (2000). Metabolism and temperature regulation during daily torpor in the smallest primate, the pygmy mouse lemur (Microcebus myoxinus) in Madagascar. J. Comp. Physiol. B 170 59–68CrossRefGoogle Scholar
Schmidt-Nielsen, K. (1997). Animal Physiology: Adaptation and Environment. Cambridge: Cambridge University Press
Schnell, C. R. & Wood, J. M. (1993). Measurement of blood pressure and heart rate by telemetry in conscious, unrestrained marmosets. Am. J. Physiol. 264 H1509–H1516Google ScholarPubMed
Speakman, J. R. (1997). Doubly Labelled Water. Theory and Practice. London: Chapman & Hall
Weathers, W. W.Buttemer, W. A.Hayworth, A. M. & Nagy, K. A. (1984). An evaluation of time-budget estimates of daily energy expenditure in birdsAuk 101 459–72Google Scholar
Wood, J. M.Heusser, C.Gulati, N.Forgiarini, P. & Hofbauer, K. G. (1987). An Sustained reduction in blood pressure during chronic administration of renin inhibitor to normotensive marmosets. J. Cardiovasc. Pharmacol. 7, Suppl. 10, S96–S98CrossRefGoogle Scholar

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