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Effects of night enclosure and extensive walking on the productivity of zebu cattle

Published online by Cambridge University Press:  27 March 2009

M. J. Nicholson
Affiliation:
International Livestock Centre for Africa, P.O. Box 5689, Addis Ababa, Ethiopia

Summary

The effects of night enclosure and walking 3000 km on growing and breeding cattle were examined over an 8-month period. Walking consisted of an 8 h walk of 40 km every 3rd day and experimental cattle were enclosed each night for 11 h. In addition, all cattle were allowed water once every 3 days. In cattle which both walked and were enclosed, a reduction of nearly 40% in grazing time was recorded. This was associated with a depression of dry-matter intake of only 12%, suggesting an intensification of eating in response to a restriction of grazing time. The overall effects of walking and enclosing on productivity, as determined by adult weight loss, calf and weaner growth, calving percentage and birth weight, were negligible and masked by the greater effects of poor nutrition during the dry season which affected all the animals. It is concluded that the additional energetic requirements for walking are small and this is attributed to adaptation, fitness and a possible depression of metabolic rate. These factors may explain why the observed costs of walking were lower than those reported in the literature.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1987

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References

Bondsma, J. C. (1949). Breeding cattle for increased adaptability to tropical and sub-tropical environments. Journal of Agricultural Science, Cambridge 39, 204221.CrossRefGoogle Scholar
Brosh, A., Shkolnik, A. & Choshniak, I. (1986). Metabolic effects of infrequent drinking and low-quality feed on bedouin goats. Ecology 67, 10861090.CrossRefGoogle Scholar
Conniffe, D. (1971). Treatment comparisons in grazing trials using the animal as experimental unit. Journal of Agricultural Science, Cambridge 77, 227235.CrossRefGoogle Scholar
Conniffe, D. (1972). The design and analysis of grazing experiments. Ph.D. thesis, University College, Dublin.Google Scholar
Dahl, G. (1979). Suffering grass: subsistence and society of Waso Borana. Department of Social Anthropology, University of Stockholm.Google Scholar
Finch, V. A. & King, J. M. (1979). Adaptation to undernutrition and water deprivation in the African zebu: changes in energy requirements. Research Coordination Meeting on Water Requirements of Tropical Herbivores based on Measurements with Tritiated Water, Nairobi. Vienna: International Atomic Energy Agency.Google Scholar
Goerino, H. K. & Van Soest, P. J. (1970). Forage fiber analyses. In Agricultural Handbook No. 379, pp. 815. U.S. Department of Agriculture.Google Scholar
Harvey, W. R. (1979). Least-Squares Analysis of Data with Unequal Subclass Numbers. United States Department of Agriculture, United States Government Printing Service.Google Scholar
Hodgson, J. (1982). Ingestive Behaviour. In Herbage Intake Handbook (ed. Leaver, J. D.), pp. 7394. Hurley: British Grassland Society.Google Scholar
Joblin, A. D. H. (1960). The influence of night grazing on the growth rates of zebu cattle in East Africa. Journal of British Grassland Society 15, 212215.CrossRefGoogle Scholar
King, J. M. (1983). Livestock water needs in pastoral Africa. Research Report No.7. Addis Ababa: International Livestock Centre for Africa.Google Scholar
Ledger, H. P. (1977). The utilization of dietary energy by steers during periods of restricted food intake and subsequent realimentation. 2. The comparative energy requirements of penned and exercised steers for long term maintenance at constant live weight. Journal of Agricultural Science, Cambridge 88, 2733.CrossRefGoogle Scholar
Ledger, H. P. & Sayers, A. R. (1977). The utilization of dietary energy by steers during periods of restricted food intake and subsequent realimentation. I. The effect of time on the maintenance requirements of steers held at constant live weights. Journal of Agricultural Science, Cambridge 88, 1126.CrossRefGoogle Scholar
Little, D. A. (1983). Bovine body composition and phosphorus storage. Ph.D. thesis, University of Queensland.Google Scholar
Ministry of Agriculture, Fisheries and Food (1984). Energy Allowances and Feeding Systems for Ruminants. Reference Book 433. London: Her Majesty's Stationery Office.Google Scholar
Maloiy, G. M. O., Hehlund, N. C., Prager, L. M., Cavagna, G. A. & Taylor, C. R. (1986). Energetic cost of carrying loads. Nature 319, 668669.CrossRefGoogle ScholarPubMed
Nicholson, M. J. (1985 a). Pastoralism and milk production. In Milk Production in Developing Countries (ed. Smith, A. J.), p. 424. Centre for Tropical Veterinary Medicine, University of Edinburgh.Google Scholar
Nicholson, M. J. (1985 b). The water requirements of African livestock. Outlook on Agriculture 14, 156164.CrossRefGoogle Scholar
Nicholson, M. J. (1986). The effect of drinking frequency on some aspects of the productivity of zebu cattle. Journal of Agricultural Science, Cambridge 108, 111120.Google Scholar
Nicholson, M. J. & Butterworth, M. H. (1986). A Guide to Condition Scoring of Zebu Cattle. 2nd edn.Addis Ababa: International Livestock Centre for Africa.Google Scholar
Nicholson, M. J. & Sayers, A. R. (1987). Relationships between body weight, condition score and heart girth changes in Borana cattle. Tropical Animal Health and Production 19(2), 115120.CrossRefGoogle Scholar
Payne, W. J. A. (1965). Specific problems of semi-arid environments. Qualitas Plantarum et Materia Vegetabiles 12, 269294.CrossRefGoogle Scholar
Penning, P. D. & Johnson, R. H. (1983). The use of internal markers to estimate herbage digestibility and intake. 2. Indigestible acid detergent fibre. Journal of Agricultural Science, Cambridge 100, 133138.CrossRefGoogle Scholar
Ribeiro, J. M. de C. R., Brockway, J. M. & Webster, A. J. F. (1977). A note on the energy cost of walking in cattle. Animal Production 25, 107110.Google Scholar
Sandford, S. (1983). Organization and management of water supplies in tropical Africa. Research Report No. 8. Addis Ababa: International Livestock Centre for Africa.Google Scholar
Whitehead, R. J., Lawrence, M. & Prentice, A. M. (1986). Incremental dietary needs to support pregnancy. In Nutrition in Pregnancy and Lactation. Proceedings of the VIIIth International Congress of Nutrition (ed. Taylor, T. J. and Jenkins, N. J.). London: John Libbey.Google Scholar
Wigg, P. M. & Owen, M. A. (1973). Studies on water consumption, night grazing and growth of Boran and crossbred steers at Kongwa, Tanzania. East African Agriculture Forestry Journal 38, 361366.CrossRefGoogle Scholar
Yeates, N. T. M. & Murray, D. M. (1966). Walking trials with cattle. 1. Breed comparison in moderate heat. Journal of Agricultural Science, Cambridge 67, 353358.CrossRefGoogle Scholar