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Articles

Aspects of selection for feed efficiency in meat producing poultry

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Pages 77-88 | Received 30 Mar 2012, Accepted 17 Jul 2012, Published online: 23 Sep 2019

References

  • AGGREY, S., KARNUAH, A., SEBASTIAN, B. and ANTHONY, N. (2010) Genetic properties of feed efficiency parameters in meat-type chickens. Genetics Selection Evolution 42: 25-29.
  • ARTHUR, P., RENAND, G. and KRAUSS, D. (2001) Genetic and phenotypic relationships among different measures of growth and feed efficiency in young Charolais bulls. Livestock Production Science 68: 131-139.
  • BERRY, D. and CROWLEY, J. (2012) Residual intake and body weight gain: A new measure of efficiency in growing cattle. Journal of Animal Science 90: 109-115.
  • BOTTJE, W. and CARSTENS, G. (2009) Association of mitochondrial function and feed efficiency in poultry and livestock species. Journal of Animal Science 87: 48-63.
  • BYERLY, T.C. (1941) Feed and other costs of producing market eggs (Vol. A1). Maryland: University of Maryland, Agricultural Experiment Station.
  • CAMPO, J. and RODRIGUEZ, M. (1990) Relative efficiency of selection methods to improve a ratio of two traits in Tribolium. Theoretical and Applied Genetics 80: 343-348.
  • CASE, L., MILLER, S. and WOOD, B. (2010) Genetic parameters of feed efficiency traits in the turkey (Meleagris gallopavo). Proceedings of the 9th World Congress on Genetics Applied to Livestock Production, Leipzig, CD ROM communication, 0221.
  • CASE, L.A., WOOD, B.J. and MILLER, S.P. (2012) The genetic parameters of feed efficiency and its component traits in the turkey (Meleagris gallopavo). Genetics Selection Evolution 44: 2.
  • CHARLES, D. (1986) Temperature for broilers. World's Poultry Science Journal 42: 249-258.
  • DAVIS, N., PRESCOTT, N., SAVORY, C. and WATHES, C. (1999) Preferences of growing fowls for different light intensities in relation to age, strain and behaviour. Animal Welfare 8: 193-203.
  • DE VERDAL, H., NARCY, A., BASTIANELLI, D., CHAPUIS, H., MEME, N., LE BIHAN-DUVAL, E. and MIGNON-GRASTEAU, S. (2010) Selection for excretion traits in chicken. Proceedings of the 9th World Congress on Genetics Applied to Livestock Production, Leipzig, CD ROM communication, 0123.
  • DE VERDAL, H., NARCY, A., BASTIANELLI, D., CHAPUIS, H., MEME, N., URVOIX, S., LE BIHAN-DUVAL, E. and MIGNON-GRASTEAU, S. (2011) Improving the efficiency of feed utilization in poultry by selection. 2. Genetic parameters of excretion traits and correlations with anatomy of the gastro-intestinal tract and digestive efficiency. BMC genetics 12: 71-81.
  • DONOHUE, M. and CUNNINGHAM, D. (2009) Effects of grain and oilseed prices on the costs of US poultry production. The Journal of Applied Poultry Research 18: 325-337.
  • DRANSFIELD, E. and SOSNICKI, A. (1999) Relationship between muscle growth and poultry meat quality. Poultry Science 78: 743-746.
  • EL-DEEN, M.B., EL TAHAWY, W., ATTIA, Y. and MEKY, M. (2009) Inheritance of age at sexual maturity and its relationships with some production traits of Japanese quail. Egyptian Poultry Science 28: 1217-1232.
  • EMMERSON, D. (1997) Commercial approaches to genetic selection for growth and feed conversion in domestic poultry. Poultry Science 76: 1121-1125.
  • FAMULA, T. (1990) The equivalence of two linear methods for the improvement of traits expressed as ratios. Theoretical and Applied Genetics 79: 853-856.
  • FAOSTAT (2009) Livestock Primary Production Data. Retrieved from http://faostat.fao.org.
  • FIALA, N. (2008) Meeting the demand: An estimation of potential future greenhouse gas emissions from meat production. Ecological Economics 67: 412-419.
  • GATES, R., CASEY, K., WHEELER, E., XIN, H. and PESCATORE, A. (2008) US broiler ammonia emissions inventory model. Atmospheric Environment 42: 3342-3350.
  • GROEN, A., JIANG, X., EMMERSON, D. and VEREIJKEN, A. (1998) A deterministic model for the economic evaluation of broiler production systems. Poultry Science 77: 925-933.
  • GUNSETT, F. (1984) Linear index selection to improve traits defined as ratios. Journal of Animal Science 59: 1185-1193.
  • GUY, G., ROUSSELOT-PAILLEY, D. and ROUVIER, R. (1998) Growth description of female mule ducks. Annales de Zootechnie 47: 303-310.
  • HAVENSTEIN, G., FERKET, P. and QURESHI, M. (2003) Growth, livability, and feed conversion of 1957 versus 2001 broilers when fed representative 1957 and 2001 broiler diets. Poultry Science 82: 1500-1508.
  • HAVENSTEIN, G., FERKET, P., SCHEIDELER, S. and LARSON, B. (1994) Growth, livability, and feed conversion of 1957 vs 1991 broilers when fed” typical” 1957 and 1991 broiler diets. Poultry Science 73: 1785-1794.
  • HAVENSTEIN, G.B., FERKET, P.R., GRIMES, J.L., QURESHI, M.A. and NESTOR, K.E. (2007) Comparison of the performance of 1966-versus 2003-type turkeys when fed representative 1966 and 2003 turkey diets: Growth rate, livability, and feed conversion. Poultry Science 86: 232-240.
  • HILL, R. and AZAIN, M. (2009) Growth and development symposium: The molecular basis for feed efficiency. Journal of Animal Science 87: 39-40.
  • HOWIE, J., AVENDANO, S., TOLKAMP, B. and KYRIAZAKIS, I. (2011) Genetic parameters of feeding behavior traits and their relationship with live performance traits in modern broiler lines. Poultry Science 90: 1197.
  • JIANG, X., GROEN, A. and BRASCAMP, E. (1998) Economic values in broiler breeding. Poultry Science 77: 934-943.
  • JOHNSON, D.E. and WARD, G.M. (1996) Estimates of animal methane emissions. Environmental Monitoring and Assessment 42: 133-141.
  • KENNEDY, B., VAN DE WERF, J. and MEUWISSEN, T. (1993) Genetics and statistical properties of residual feed intake. Journal of Animal Science 71: 3239-3250.
  • KHALDARI, M., PAKDEL, A., MEHRABANI YEGANE, H., NEJATI JAVAREMI, A. and BERG, P. (2010) Response to selection and genetic parameters of body and carcass weights in Japanese quail selected for 4-week body weight. Poultry Science 89: 1834-1841.
  • KOCH, R.M., SWIGER, L., CHAMBERS, D. and GREGORY, K. (1963) Efficiency of feed use in beef cattle. Journal of Animal Science 22: 486-494.
  • KONCA, Y., KIRKPINAR, F. and ABUK, M. (2009) Effects of dietary ascorbic acid on blood haematological profile, serum biochemical components and tonic immobility reaction of male turkeys under summer condition. The Journal of Poultry Science 46: 105-111.
  • LEENSTRA, F.R. and PIT, R. (1987) Fat deposition in a broiler sire strain. Poultry Science 66: 193-202.
  • LESSCHEN, J., VAN DEN BERG, M., WESTHOEK, H., WITZKE, H. and OENEMA, O. (2011) Greenhouse gas emission profiles of European livestock sectors. Animal Feed Science and Technology 166: 16-28.
  • LUITING, P. (1990) Genetic variation of energy partitioning in laying hens: causes of variation in residual feed consumption. World's Poultry Science Journal 46: 133-152.
  • LUITING, P. (1999) The role of genetic variation in feed intake and its physiological aspects: Results from selection experiments, in: VANDERHEIDE, D., HUISMAN, E.A., KANIS, A., OSSE, J.W.M. & VERSTEGEN, M.W.A. (Eds) Regulation of feed intake, pp. 75-88 (CABI Publishing, Wallingford, UK).
  • LUITING, P., SCHRAMA, J., VAN DER HEL, W. and URFF, E. (1991) Metabolic differences between White Leghorns selected for high and low residual food consumption. British Poultry Science 32: 763-782.
  • MELO, J.E., ROMANO, E., CANET, Z. and MIQUEL, M.C. (2006) Genetic parameters of growth and feed efficiency in a free-range broiler stock. Proceedings of the 8th World Congress on Genetics Applied to Livestock Production, CD ROM communication, 336–441.
  • MILES, D., OWENS, P. and ROWE, D. (2006) Spatial variability of litter gaseous flux within a commercial broiler house: ammonia, nitrous oxide, carbon dioxide, and methane. Poultry Science 85: 167-172.
  • NAHASHON, S., ADEFOPE, N., AMENYENU, A. and WRIGHT, D. (2005) Effects of dietary metabolizable energy and crude protein concentrations on growth performance and carcass characteristics of French guinea broilers. Poultry Science 84: 337-344.
  • NIDRI, A., MIGNON-GRASTEAU, S., SELLIER, N., TIXIER-BOICHARD, M. and BEAUMONT, C. (2006) Genetic relationships between feed conversion ratio, growth curve and body composition in slow-growing chickens. British Poultry Science 47: 273-280.
  • NKRUMAH, J., BASARAB, J., WANG, Z., LI, C., PRICE, M., OKINE, E., CREWS, D. and MOORE, S. (2007) Genetic and phenotypic relationships of feed intake and different measures of feed efficiency with growth and carcass merit of beef cattle. Journal of Animal Science 85: 2711-2720.
  • OENEMA, O., WRAGE, N., VELTHOF, G., GROENIGEN, J.W., DOLFING, J. and KUIKMAN, P. (2005) Trends in global nitrous oxide emissions from animal production systems. Nutrient Cycling in Agroecosystems 72: 51-65.
  • PAKDEL, A., VAN ARENDONK, J.A.M., VEREIJKEN, A.L.J. and BOVENHUIS, H. (2005) Genetic parameters of ascites-related traits in broilers: Correlations with feed efficiency and carcase traits. British Poultry Science 46: 43-53.
  • PINGEL, H. (2011) Results of selection for breast muscle percentage and feed conversion ratio in Pekin ducks. Biotechnology in Animal Husbandry 27: 769-776.
  • PYM, R. and NICHOLLS, P. (1979) Selection for food conversion in broilers: Direct and correlated responses to selection for body weight gain, food consumption and food conversion ratio. British Poultry Science 20: 73-86.
  • RETAILLEAU, R. (1999) Comparison of the growth and body composition of 3 types of ducks: Pekin, Muscovy and Mule. Proceedings of the 1st World Conference on Waterfowl, Taichung, p. 597-602.
  • ROMERO, L.F., ZUIDHOF, M.J., RENEMA, R.A., NAEIMA, A. and ROBINSON, F.E. (2009a) Characterization of energetic efficiency in adult broiler breeder hens. Poultry Science 88: 227-235.
  • ROMERO, L.F., ZUIDHOF, M.J., RENEMA, R.A., NAEIMA, A.N. and ROBINSON, F.E. (2009b) Effects of maternal energetic efficiency on egg traits, chick traits, broiler growth, yield, and meat quality. Poultry Science 88: 236-245.
  • SCHMIT, T.M., VERTERAMO, L. and TOMEK, W.G. (2009) Implications of growing biofuels demands on Northeast livestock feed costs. Agricultural and Resource Economics Review 38: 200-212.
  • SCHENKEL, F., MILLER, S. and WILTON, J. (2004) Genetic parameters and breed differences for feed efficiency, growth, and body composition traits of young beef bulls. Canadian Journal of Animal Science 84: 177-185.
  • SKINNER-NOBLE, D. and TEETER, R. (2003) Components of feed efficiency in broiler breeding stock: energetics, performance, carcass composition, metabolism, and body temperature. Poultry Science 82: 1080-1090.
  • SWENNEN, Q., JANSSENS, G., DECUYPERE, E. and BUYSE, J. (2004) Effects of substitution between fat and protein on feed intake and its regulatory mechanisms in broiler chickens: energy and protein metabolism and diet-induced thermogenesis. Poultry Science 83: 1997-2004.
  • TU, X., DU, S., TANG, L., XIN, H. and WOOD, B. (2011) A real-time automated system for monitoring individual feed intake and body weight of group housed turkeys. Computers and Electronics in Agriculture 75: 313-320.
  • TUFARELLI, V., DARIO, M. and LAUDADIO, V. (2007) Effect of xylanase supplementation and particle-size on performance of guinea fowl broilers fed wheat-based diets. International Journal of Poultry Science 6: 302-307.
  • VAN BEBBER, J. and MERCER, J. (1994) Selection for efficiency in broilers: A comparison of residual feed intake with feed conversion ratio. Proceedings of the 5th World Congress on Genetics Applied to Livestock Production, Guelph, p. 53-60.
  • VAN DER WERF, J.H.J. (2004) Is it useful to define residual feed intake as a trait in animal breeding programmes? Australian Journal of Experimental Agriculture 44: 405-409.
  • VARKOOHI, S., MORADI SHAHR BABAK, M., PAKDEL, A., NEJATI JAVAREMI, A., ZAGHARI, M. and KAUSE, A. (2010) Response to selection for feed conversion ratio in Japanese quail. Poultry Science 89: 1590-1598.
  • VARKOOHI, S., PAKDEL, A., MORADI SHAHR BABAK, M., NEJATI JAVAREMI, A., KAUSE, A. and ZAGHARI, M. (2011) Genetic parameters for feed utilization traits in Japanese quail. Poultry Science 90: 42-47.
  • VERGE, X.P.C., DYER, J.A., DESJARDINS, R.L. and WORTH, D. (2009) Long-term trends in greenhouse gas emissions from the Canadian poultry industry. Journal of Applied Poultry Research 18: 210-222.
  • WANG, S.Y. and HUANG, D.J. (2005) Assessment of greenhouse gas emissions from poultry enteric fermentation. Asian-Autralasian Journal of Animal Science 18: 873-878.
  • WOOD, B.J. (2009) Calculating economic values for turkeys using a deterministic production model. Canadian Journal of Animal Science 89: 201-213.

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