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Growth, milk intake and behaviour of artificially reared sambar deer (Cervus unicolor)and red deer(Cervus elaphus) fawns

Published online by Cambridge University Press:  27 March 2009

G. Semiadi
Affiliation:
AgResearch, Flock House Agricultural Centre, Bulls, New Zealand Department of Animal Science, Massey University, Palmerston North, New Zealand
T. N. Barry
Affiliation:
Department of Animal Science, Massey University, Palmerston North, New Zealand
P. D. Muir
Affiliation:
AgResearch, Flock House Agricultural Centre, Bulls, New Zealand

Summary

Sambar deer (n = 8) and red deer (n = 8) fawns were successfully artificially reared to 70 days of age, using ewe milk replacer, at Flock House Agricultural Centre, New Zealand, during 1991. Sambar deer fawns had a lower overall milk consumption than red deer fawns (312 v. 359 g DM/day; P < 0·05), and showed an earlier peak in milk consumption, a faster rate of decline and earlier self weaning. Birth weight as a proportion of dam liveweight was lower for sambar than for red deer, but liveweight gains to weaning (347 v. 330 g/day) and 70 day weaning weights (300 v. 30·4 kg) were similar. The age at which deer commenced a range of activities, including eating forage and ruminating, was similar for both species, except that jumping activities commenced 5 days later in sambar than in red deer (P < 0·01). Following milk feeding, sambar fawns were less active than red deer fawns. It was concluded that sambar deer fawns can be successfully artificially reared using ewe milk replacer, but that extra precautions are needed to avoid scouring and abomasal bloat, which were more prevalent in sambar than in red deer fawns.

Type
Animals
Copyright
Copyright © Cambridge University Press 1993

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References

REFERENCES

Acharjyo, L. O. & Mishra, Ch. G. (1980). Notes on weight and size at birth of eight species of Indian wild ungulates in captivity. Journal of the Bombay Natural History Society 78, 373374.Google Scholar
Arman, P., Kay, R. N. B., Goodall, E. D. & Sharman, G. A. M. (1974). The composition and yield of milk from captive red deer (Cervus elaphus L.). Journal of Reproduction and Fertility 37, 6784.CrossRefGoogle ScholarPubMed
Barry, T. N., Suttie, J. M., Milne, J. A. & Kay, R. N. B. (1991). Control of food intake in domesticated deer. In Physiological Aspects of Digestion and Metabolism in Ruminants (Eds Tsuda, T., Sasaki, Y. & Kawashima, R.), pp. 385402. Tokyo: Academic Press.CrossRefGoogle Scholar
Chardonnet, P. (1988). Etude de factibilité technique et économique de l'élevage et de médecine vétérinaire des pays tropicaux.Google Scholar
de Vos, A. (1990). Applying experience in New Zealand deer farming to developing countries. Unasylva 41, 2632.Google Scholar
English, A. W. (1988). Disease of Deer. Sydney: The University of Sydney Post-Graduate Foundation in Veterinary Science.Google Scholar
Fennessy, P. F., Moore, G. H. & Muir, P. D. (1981). Artificial rearing of red deer calves. New Zealand Journal of Experimental Agriculture 9, 1721.CrossRefGoogle Scholar
Harris, L. H. (1971). Notes on the introduction and history of sambar deer in New Zealand. New Zealand Wildlife 35, 3342.Google Scholar
Hsia, L. C., Sun, Z. W. & Cheng, C. K. (1987). A survey of deer farms in Taiwan. In The 4th AAAP Animal Science Congress Proceedings, p. 432. Hamilton.Google Scholar
Kelly, R. W. & Whateley, J. A. (1975). Observations on the calving of red deer (Cervus elaphus) run in confined areas. Applied Animal Ethology 1, 293300.CrossRefGoogle Scholar
Lalouette, J. A. (1985). Development of deer farming in Mauritius. In Biology of Deer Production (Eds Fennessy, P. F. & Drew, K. R.). The Royal Society of New Zealand Bulletin 22, 379380.Google Scholar
Lee, P. C., Majluf, P. & Gordon, I. J. (1991). Growth, weaning and maternal investment from a comparative perspective. Journal of Zoology 225, 99114.CrossRefGoogle Scholar
Long, T. A., Cowan, R. L., Wolfe, C. W. & Swift, R. W. (1961). Feeding the white-tailed deer fawn. Journal of Wildlife Management 25, 9495.CrossRefGoogle Scholar
Louden, A. S. I. (1991). Nutritional physiology of some Asian ruminants. In Physiological Aspects of Digestion and Metabolism in Ruminants (Eds Tsuda, T., Sasaki, Y. & Kawashima, R.), pp. 403421. Proceedings of the 7th International Symposium on Ruminant Physiology. Tokyo: Academic Press.CrossRefGoogle Scholar
Louden, A. S. I., McNeilly, A. S. & Milne, J. A. (1983). Nutritional and lactational control of fertility in red deer. Nature 302, 145147.CrossRefGoogle Scholar
Louden, A. S. I., Darroch, A. D. & Milne, J. A. (1984). The lactation performance of red deer on hill and improved species pastures. Journal of Agricultural Science, Cambridge 102, 149158.CrossRefGoogle Scholar
Louden, A. S. I., Milne, J. A., Curlewis, J. D. & McNeilly, A. S. (1989). A comparison of the seasonal hormone changes and patterns of growth, voluntary food intake and reproduction in juvenile and adult red deer (Cervus elaphus) and Père David's deer (Elaphurus davidianus) hinds. Journal of Endocrinology 122, 733745.CrossRefGoogle Scholar
Mackenzie, A. R. (1985). Reproduction of farmed rusa deer (Cervus timorensis) in Southeast Queensland, Australia. In Biology of Deer Production (Eds Fennessy, P. F. & Drew, K. R.). The Royal Society of New Zealand Bulletin 11, 213215.Google Scholar
Milne, J. A. (1988). Management and nutrition of farmed red deer. In The Management and Health of Farmed Deer (Ed. Reid, H. W.), pp. 19. London: Kluwer Academic Press.Google Scholar
Moore, G. H. & Cowie, G. C. (1980/1981). Hand-rearing deer calves. The Deer Farmer, 2728.Google Scholar
Mylrea, G. E. (1991). Reproduction in tropical species. In Proceedings of a Deer Course for Veterinarians No. 8, pp. 249261. Sydney: Deer Branch of the New Zealand Veterinary Association.Google Scholar
Niezen, J. H., Barry, T. N., Hodgson, J., Wilson, P. R., Ataja, A. M., Parker, W. J. & Holmes, C. W. (1993). Growth responses in red deer calves and hinds grazing red clover, chicory or perennial ryegrass/white clover swards during lactation. Journal of Agricultural Science, Cambridge 121, 255263.CrossRefGoogle Scholar
Parker, K. L. & Wong, B. (1987). Raising black-tailed deer fawns at natural growth rate. Canadian Journal of Zoology 65, 2023.CrossRefGoogle Scholar
Rambotti, F. (1985). Deer farming in Italy. In Biology of Deer Production (Eds Fennessy, P. F. & Drew, K. R.). The Royal Society of New Zealand Bulletin 22, 387389.Google Scholar
Robbins, C. T. (1983). Wildlife Feeding and Nutrition. New York: Academic Press.Google Scholar
Robbins, C. T. & Moen, A. N. (1975). Milk consumption and weight gain of white tailed deer. Journal of Wildlife Management 39, 355360.CrossRefGoogle Scholar
Robbins, C. T., Oftedal, O. T. & O'Rourke, K. I. (1987). Lactation, early nutrition and hand-rearing of wild ungulates, with special reference to deer. In Biology and Management of the Cervidae (Ed. Wemmer, C. M.), pp. 429442. Washington: Smithsonian Institute Publishing.Google Scholar
Roughan, P. G. & Holland, R. (1977). Predicting in-vivo digestibilities of herbages by exhaustive enzymic hydrolysis of cell walls. Journal of the Science of Food and Agriculture 28, 10571064.CrossRefGoogle Scholar
Sharples, T. J. & Dumelow, J. (1990). Prediction of body dimensions of Mule and Scottish Blackface ewes from measurement of body weight. Animal Production 50, 491495.Google Scholar
Short, H. L. (1964). Postnatal stomach development of white-tailed deer. Journal of Wildlife Management 28, 445458.CrossRefGoogle Scholar
Slee, K. J. & Presidente, P. J. A. (1981). Biological and pathological features of sambar deer in Victoria. Part 1. Haematology, biochemistry and serology. Australian Deer 6, 714.Google Scholar
Statistical Analysis Systems. (1987). SAS/STAT Guide for Personal Computers, Version 6. Cary: SAS Institute Inc.Google Scholar
Stewart, J. W. F. (1985). Deer and development in Southwest Papua New Guinea. In Biology of Deer Production (Eds Fennessy, P. F. & Drew, K. R.). The Royal Society of New Zealand Bulletin 22, 381385.Google Scholar
van Mourik, S. (1983). A note on rearing rusa deer calf (Cervus rusa timorensis). The Federal Deerbreeder 2, 13.Google Scholar
Vigh-Larsen, F. (1988). Deer farming in Denmark, with special emphasis on the management and handling of fallow deer. In The Management and Health of Farmed Deer (Ed. Reid, H. W.), pp. 7073. London: Kluwer Academic Publishing.Google Scholar
Wodzicky, K. A. (1950). Introduced Mammals of New Zealand. Department of Science and Industrial Research Bulletin 98.Google Scholar
Woodford, K. (1991). Reproductive cycles and performance of rusa deer in the tropics and subtropics. In Proceedings of a Deer Course for Veterinarians No. 8, pp. 262267. Sydney: New Zealand Veterinary Association.Google Scholar