Artificial selection for improved energy efficiency is reaching its limits in broiler chickens
暂无分享,去创建一个
[1] L. Frewer,et al. A Systematic Review of Public Attitudes, Perceptions and Behaviours Towards Production Diseases Associated with Farm Animal Welfare , 2016 .
[2] M. D. Vries,et al. Comparing environmental impacts for livestock products: A review of life cycle assessments , 2010 .
[3] Hans H. Cheng,et al. Genome-wide assessment of worldwide chicken SNP genetic diversity indicates significant absence of rare alleles in commercial breeds , 2008, Proceedings of the National Academy of Sciences.
[4] E. Moran,et al. Evaluation of the parameters needed to describe the overall growth, the chemical growth, and the growth of feathers and breast muscles of broilers. , 1999, Poultry science.
[5] R. Gous. Nutritional limitations on growth and development in poultry , 2010 .
[6] C. W. Tallentire,et al. Breeding for efficiency in the broiler chicken: A review , 2016, Agronomy for Sustainable Development.
[7] C. W. Tallentire,et al. Environmental impact trade-offs in diet formulation for broiler production systems in the UK and USA , 2017 .
[8] S. Leeson,et al. Broiler response to diet energy. , 1996, Poultry science.
[9] I. D. Boer,et al. Environmental impacts of genetic improvement of growth rate and feed conversion ratio in fish farming under rearing density and nitrogen output limitations , 2016 .
[10] S. Schiavon,et al. Use of simple body measurements and allometry to predict the chemical growth and feed intake in pigs , 2007 .
[11] I Leinonen,et al. Predicting the environmental impacts of chicken systems in the United Kingdom through a life cycle assessment: egg production systems. , 2012, Poultry science.
[12] J. Bruinsma,et al. World agriculture towards 2030/2050: the 2012 revision , 2012 .
[13] R. Pym,et al. Selection for food conversion in broilers: Direct and correlated responses to selection for body‐weight gain, food consumption and food conversion ratio , 1979 .
[14] M. Finkbeiner,et al. Environmental impact of using specialty feed ingredients in swine and poultry production: A life cycle assessment. , 2016, Journal of animal science.
[15] The tipping point of the perceptions of the Dutch broiler industry: the case of the ‘plofkip’ , 2014 .
[16] D. Fremaut,et al. Selection for Growth Performance in Broiler Chickens Associates with Less Diet Flexibility , 2015, PloS one.
[17] E. Wisman,et al. Selection for Body Weight at Eight Weeks of Age: 6. Changes in Appetite and Feed Utilization , 1966 .
[18] M. Smith,et al. The effects of genetic selection for increased growth rate on mucosal and muscle weights in the different regions of the small intestine of the domestic fowl (Gallus domesticus). , 1991, Comparative biochemistry and physiology. A, Comparative physiology.
[19] I. D. Boer,et al. Environmental impacts of genetic improvement in growth rate and feed conversion in fish farming under density and nitrogen limitation , 2014 .
[20] D. Layton,et al. A Meta Analysis of Willingness to Pay Studies , 2007 .
[21] E. Valceschini,et al. Poultry meat consumption trends in Europe , 2008 .
[22] G. B. Havenstein,et al. Growth, livability, and feed conversion of 1957 versus 2001 broilers when fed representative 1957 and 2001 broiler diets. , 2003, Poultry science.
[23] H. Boekholt,et al. Effect of dietary energy restriction on retention of protein, fat and energy in broiler chickens. , 1994, British Poultry Science.
[24] J. Meullenet,et al. Estimation of factors associated with the occurrence of white striping in broiler breast fillets. , 2013, Poultry science.
[25] B. Hargis,et al. White striping and woody breast myopathies in the modern poultry industry: a review. , 2016, Poultry science.
[26] Walter Klöpffer,et al. Life cycle assessment , 1997, Environmental science and pollution research international.
[27] P. Bikker,et al. Cultivation, processing and nutritional aspects for pigs and poultry of European protein sources as alternatives for imported soybean products , 2013 .
[28] F. E. Robinson,et al. Growth, efficiency, and yield of commercial broilers from 1957, 1978, and 20051 , 2014, Poultry science.
[29] William G. Hill,et al. Estimation, effectiveness and opportunities of long term genetic improvement in animals and maize , 2008 .
[30] Xin Zhao,et al. Prebiotics and gut microbiota in chickens. , 2015, FEMS microbiology letters.
[31] F. Mussini. Comparative Response of Different Broiler Genotypes to Dietary Nutrient Levels , 2012 .
[32] W. Bessei. Welfare of broilers: a review , 2006 .
[33] F. Soglia,et al. Meat quality in fast-growing broiler chickens , 2015 .
[34] T. Rodenburg,et al. The role of breeding and genetics in the welfare of farm animals , 2012 .
[35] C. Kroeze. N2O from animal waste. Methodology according to IPCC Guidelines for National Greenhouse Gas Inventories. , 1997 .
[36] L. Frewer,et al. Citizens, consumers and farm animal welfare: A meta-analysis of willingness-to-pay studies , 2017 .
[37] J. Meullenet,et al. Consumer acceptance of visual appearance of broiler breast meat with varying degrees of white striping. , 2012, Poultry science.
[38] S. Avendaño,et al. The role of sustainable commercial pig and poultry breeding for food security , 2013 .
[39] E. C. Mattos,et al. Heritability and genetic correlation estimates for performance and carcass and body composition traits in a male broiler line. , 2006, Poultry science.
[40] M. Mitchell,et al. Skeletal muscle fibre growth and growth associated myopathy in the domestic chicken ( Gallus domesticus ) , 2006, British poultry science.
[41] E. C. Mattos,et al. Comparison of different models to estimate genetic parameters for carcass traits in a commercial broiler line. , 2010, Genetics and molecular research : GMR.
[42] Robert C. Wolpert,et al. A Review of the , 1985 .
[43] B. Carré,et al. Comparison of gastrointestinal transit times between chickens from D+ and D- genetic lines selected for divergent digestion efficiency. , 2010, Animal : an international journal of animal bioscience.
[44] J. Jankowski,et al. Growth Performance, Carcass Traits and Meat Quality of Slower-growing and Fast-growing Chickens Raised with and without Outdoor Access , 2011 .
[45] N. Sellier,et al. Effects of wheat quality on digestion differ between the D+ and D- chicken lines selected for divergent digestion capacity. , 2006, Poultry science.
[46] D. Pollock. A geneticist's perspective from within a broiler primary breeder company. , 1999, Poultry science.
[47] Ilias Kyriazakis,et al. How can we improve the environmental sustainability of poultry production? , 2016, Proceedings of the Nutrition Society.
[48] I. Kyriazakis,et al. Potential environmental benefits of prospective genetic changes in broiler traits. , 2016, Poultry science.
[49] J. Mench,et al. Performance, livability, and carcass yield of slow- and fast-growing chicken genotypes fed low-nutrient or standard diets and raised indoors or with outdoor access. , 2008, Poultry science.
[50] S. Mignon-Grasteau,et al. Breeding for feed efficiency and adaptation to feed in poultry , 2008 .
[51] E. Feierstein,et al. Comparison of a modern broiler line and a heritage line unselected since the 1950s. , 2009, Poultry science.