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Breed and sex effects on the development and proportions of muscle, fat and bone in pigs

Published online by Cambridge University Press:  27 March 2009

A. Fortin
Affiliation:
Agricultural and Food Research Council, Institute of Food Research – Bristol Laboratory, Langford, Bristol, BS18 7DY
J. D. Wood
Affiliation:
Agricultural and Food Research Council, Institute of Food Research – Bristol Laboratory, Langford, Bristol, BS18 7DY
O. P. Whelehan
Affiliation:
Agricultural and Food Research Council, Institute of Food Research – Bristol Laboratory, Langford, Bristol, BS18 7DY

Summary

The development and proportions of muscle, fat and bone were studied in 341 entire male and female Iron Age (European Wild Pig × Tamworth), Pietrain and Large White pigs ranging in live weight from 12 to 370 kg. The number of pigs was: Large White, 138 entire males and 112 females; Pietrain, 41 entire males and 31 females; Iron Age, eight entire males and 11 females. The breeds and sexes were compared in terms of the allometric growth coefficients of tissues (b) and of tissue weights at constant side weight and constant weight of total side bone.

At the geometric mean for side weight (26·5 kg), Pietrain carcasses had the most muscle (16 kg), followed by Large White (15kg) and Iron Age (11 kg), but the least fat (6 kg). Large White and Iron Age carcasses had 7 and 12 kg of fat, respectively. Relative to side weight, the earliest maturing tissue, bone, was particularly slow growing in Iron Age pigs (b = 0·627) and relatively fast growing in Large Whites (b = 0·801). The opposite was true for fat, the latest maturing tissue, and consequently Iron Age (b = 1·345) and Large White (b = 1·164) pigs were identified as early and late maturing, respectively. Pietrains had a higher growth coefficient for fat relative to side weight (b = 1·249) and lower growth coefficient for bone (b = 0·713) than Large Whites. The difference in percentage fat between Pietrains and Large Whites decreased slightly between 65 and 120 kg live weight. In terms of tissue growth patterns, Pietrains therefore demonstrated early maturing characteristics compared with Large Whites, and it is possible that a low voluntary feed intake under ad libitum feeding conditions prevents them from expressing these characteristics in terms of percentage of fat in the side. Pietrains had a particularly high muscle:bone ratio (6·2 at the mean side weight) compared with Large White (5·2) and Iron Age pigs (5·3).

The difference in carcass composition between entire males and females was breeddependent. Entire male carcasses were slightly leaner overall and had a lower muscle: bone ratio than those of females, but tissue allometric growth patterns were similar in the two sexes.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1987

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References

Berg, R. T., Andersen, B. B. & Liboriussen, T. (1978). Growth of bovine tissues. I. Genetic influences on growth patterns of muscle, fat and bone in young bulls. Animal Production 26, 245258.Google Scholar
Brown, A. J. & Williams, D. R. (1977). Pig Carcass Evaluation – Measurement of Composition Using Anatomical Dissection. Memorandum. Agricultural Research Council, Meat Research Institute 33, pp. 116.Google Scholar
Clausen, H. (1953). The improvement of pigs. The George Scott Robertson Memorial Lecture, Queen's University of Belfast Press, Belfast.Google Scholar
Crawford, M. A., Hare, W. K. & Whitehouse, D. B. (1984). Nutrient partitioning in domesticated and non-domesticated animals. In Fats and Animal Nutrition (ed. Wiseman, J.), pp. 471479. London: Butterworths.CrossRefGoogle Scholar
Cuthbertson, A. & Pomeroy, R. W. (1962). Quantitative anatomical studies of the composition of the pig at 50, 68 and 92 kg carcass weight. II. Gross composition and skeletal composition. Journal of Agricultural Science, Cambridge 59, 215223.CrossRefGoogle Scholar
Davies, A. S. (1974). A comparison of tissue development in Pietrain and Large White pigs from birth to 64 kg live weight. I. Growth changes in carcass composition. Animal Production 19, 367376.Google Scholar
Davies, A. S., Pearson, G. & Carr, J. R. (1980). The carcass composition of male, castrated male and female pigs resulting from two levels of feeding. Journal of Agricultural Science, Cambridge 95, 251259.CrossRefGoogle Scholar
Evans, D. G. & Kempster, A. J. (1979). The effects of genotype, sex and feeding regimen on pig carcass development. 1. Primary components, tissues and joints. Journal of Agricultural Science, Cambridge 93, 339347.CrossRefGoogle Scholar
Fowler, V. R., Taylor, A. G. & Livingstone, R. M. (1969). Nutritional implications of differences in tissue growth due to sex. In Meat Production from Entire Male Animals (ed. Rhodes, D. N.), pp. 5161. London: Churchill.Google Scholar
Goenaga, P. R. & Carden, A. E. (1979). A comparison of tissue weight distribution in Landrace, Hampshire and Duroc Jersey pigs. Journal of Agricultural Science, Cambridge 93, 271280.CrossRefGoogle Scholar
Gregory, N. G., Lister, D. & Lovell, R. D. (1981). The effect of chronic neonatal guanethidine treatment on body composition in pigs. Veterinary Research Communications 5, 177182.CrossRefGoogle ScholarPubMed
Henson, J. (1978). Iron Age pigs. The Ark 5, 5960.Google Scholar
Hetzer, H. O. (1945). Inheritance of coat color in swine. 1. General survey of major color variations in swine. Journal of Heredity 36, 121128.CrossRefGoogle Scholar
Howard, A. N. & Smith, W. C. (1976). The Belgian Pietrain as a sire of cross bred pigs slaughtered at 64 kg live weight. 1. Performance and carcass characteristics. Animal Production 23, 389393.Google Scholar
Lean, I. J., Curran, M. K., Duckworth, J. E. & Holmes, W. (1972). Studies of Belgian Pietrain pigs. 1. A comparison of Pietrain, Landrace and Pietrain Landrace crosses in growth, carcass characteristics and meat quality. Animal Production 15, 19.Google Scholar
Lister, D., Perry, B. N. & Wood, J. D. (1983). Meat production. In Nutritional Physiology of Farm Animals (ed. Rook, J. A. F. and Thomas, P. C.). London: Longman.Google Scholar
McMeekan, C. P. (1940). Growth and development of, the pig, with special reference to carcass quality characteristics. 1. Age changes in growth and development. Journal of Agricultural Science, Cambridge 30, 292343.Google Scholar
Richmond, R. J. & Berg, R. T. (1971). Tissue development in swine as influenced by live weight, breed, sex and ration. Canadian Journal of Animal Science 51, 3139.CrossRefGoogle Scholar
Seebeck, R. M. (1968). Developmental studies of body composition. Animal Breeding Abstracts 36, 167181.Google Scholar
Steel, R. G. D. & Torrie, J. H. (1960). Principles and Procedures of Statistics. New York: McGraw-Hill.Google Scholar
Walstra, P., Bergström, P. L. & Mateman, G. (1984). Genetic and sex effects on the distribution of fat deposition. In Fat Quality in Lean Pigs (ed. Wood, J. D.). Meat Research Institute Special Report 2, pp. 117125.Google Scholar
Webb, A. J. & Jordan, C. H. C. (1978). Halothane sensitivity as a field test for stress-susceptibility in the pig. Animal Production 26, 157168.Google Scholar
Wood, J. D., Lodge, G. A. & Lister, D. (1979). Response to different rates of energy intake by Gloucester Old Spot and Large White boars and gilts given the same total feed allowance. Animal Production 28, 371380.Google Scholar