Review: Biological determinants of between-animal variation in feed efficiency of growing beef cattle
Tài liệu tham khảo
Allen, 2014, Drives and limits to feed intake in ruminants, Animal Production Science, 54, 1513, 10.1071/AN14478
Archer, 1999, Potential for selection to improve efficiency of feed use in beef cattle: a review, Australian Journal of Agricultural Research, 50, 147, 10.1071/A98075
Arthur, 2012, Genetic improvement of feed efficiency, 93
Barea, 2010, Energy utilization in pigs selected for high and low residual feed intake, Journal of Animal Science, 88, 2062, 10.2527/jas.2009-2395
Basarab, 2013, Reducing GHG emissions through genetic improvement for feed efficiency: effects on economically important traits and enteric methane production, Animal, 7, 303, 10.1017/S1751731113000888
Basarab, 2003, Residual feed intake and body composition in young growing cattle, Canadian Journal of Animal Science, 83, 189, 10.4141/A02-065
Berry, 2013, Cell biology symposium: genetics of feed efficiency in dairy and beef cattle, Journal of Animal Science, 91, 1594, 10.2527/jas.2012-5862
Bonilha, 2017, Digestion and metabolism of low and high residual feed intake Nellore bulls, Tropical Animal Health and Production, 49, 529, 10.1007/s11250-017-1224-9
Bottje, 2009, Association of mitochondrial function and feed efficiency in poultry and livestock species, Journal of Animal Science, 87, E48, 10.2527/jas.2008-1379
Bottje, 2002, Association of mitochondrial function with feed efficiency within a single genetic line of male broilers, Poultry Science, 81, 546, 10.1093/ps/81.4.546
Castro Bulle, 2007, Growth, carcass quality, and protein and energy metabolism in beef cattle with different growth potentials and residual feed intakes, Journal of Animal Science, 85, 928, 10.2527/jas.2006-373
Caton, 2000, Metabolic components of energy expenditure in growing beef cattle - review, Asian-Australasian Journal of Animal Science, 13, 702, 10.5713/ajas.2000.702
Ceacero, 2016, Phenotypic and genetic correlations of feed efficiency traits with growth and carcass traits in Nellore cattle selected for postweaning weight, PLoS One, 11, e0161366, 10.1371/journal.pone.0161366
Coyle S, Fitzsimons C, Kenny DA, Kelly AK and McGee M 2016. Repeatability of feed efficiency in beef cattle offered grass silage and zero-grazed grass, Journal of Animal Science 94, 719 (Abstract).
Coyle, 2017, Feed efficiency correlations in beef cattle offered zero-grazed grass and a high-concentrate diet, Advances in Animal Biosciences, 8, 121
Chaves, 2015, Relationship of efficiency indices with performance, heart rate, oxygen consumption, blood parameters, and estimated heat production in Nellore steers, Journal of Animal Science, 93, 5036, 10.2527/jas.2015-9066
Davis ME, Wick MP and Maquivar MG 2012. Hormonal regulation of feed efficiency. In Feed efficiency in the beef industry (ed. RA Hill), pp. 175–198. Wiley-Blackwell, Ames, IA, USA.
Donoghue, 2015, Genetic parameters for methane production and relationships with production traits in Australian beef cattle, Association for the Advancement of Animal Breeding and Genetics, 21, 114
Donoghue, 2016, Genetic and phenotypic variance and covariance components for methane emission and postweaning traits in Angus cattle, Journal of Animal Science, 94, 1438, 10.2527/jas.2015-0065
Fereday, 1998, Variation in the apparent sensitivity of the insulin-mediated inhibition of proteolysis to amino acid supply determines the efficiency of protein utilization, Clinical Science, 95, 725, 10.1042/cs0950725
Fitzsimons, 2013, Methane emissions, body composition and rumen fermentation traits of beef heifers differing in phenotypic residual feed intake, Journal of Animal Science, 91, 5789, 10.2527/jas.2013-6956
Fitzsimons, 2014, Visceral organ weights, digestion and carcass characteristics of beef bulls differing in residual feed intake offered a high concentrate diet, Animal, 8, 949, 10.1017/S1751731114000652
Fitzsimons, 2017, Molecular physiology of feed efficiency in beef cattle, 120
Foote, 2014, Association of circulating active and total ghrelin concentrations with dry matter intake, growth, and carcass characteristics of finishing beef cattle, Journal of Animal Science, 92, 5651, 10.2527/jas.2014-8291
Foote, 2016, Leptin concentrations in finishing beef steers and heifers and their association with dry matter intake, average daily gain, feed efficiency, and body composition, Domestic Animal Endocrinology, 55, 136, 10.1016/j.domaniend.2015.12.007
Freetly, 2015, Methane production and methanogen levels in steers that differ in residual gain, Journal of Animal Science, 93, 2375, 10.2527/jas.2014-8721
Geay, 1984, Energy and protein utilization in growing cattle, Journal of Animal Science, 58, 766, 10.2527/jas1984.583766x
Gilbert, 2007, Genetic parameters for residual feed intake in growing pigs, with emphasis on genetic relationships with carcass and meat quality traits, Journal of Animal Science, 85, 3182, 10.2527/jas.2006-590
Gregorini, 2008, Review: the interaction of diurnal grazing pattern, ruminal metabolism, nutrient supply, and management in cattle, Professional Animal Scientist, 24, 308, 10.15232/S1080-7446(15)30861-5
Goopy, 2014, Low-methane yield sheep have smaller rumens and shorter rumen retention time, British Journal of Nutrition, 111, 578, 10.1017/S0007114513002936
Guan, 2008, Linkage of microbial ecology to phenotype: correlation of rumen microbial ecology to cattle’s feed efficiency, FEMS Microbiology Letters, 288, 85, 10.1111/j.1574-6968.2008.01343.x
Hawkins, 1991, Protein turnover: a functional appraisal, Functional Ecology, 5, 222, 10.2307/2389260
Herd, 2009, Physiological basis for residual feed intake, Journal of Animal Science, 87, E64, 10.2527/jas.2008-1345
Herd, 2014, Measures of methane production and their phenotypic relationships with dry matter intake, growth, and body composition traits in beef cattle, Journal of Animal Science, 92, 5267, 10.2527/jas.2014-8273
Herd, 2004, Biological basis for variation in residual feed intake in beef cattle. 1. Review of potential mechanisms, Australian Journal of Experimental Agriculture, 44, 423, 10.1071/EA02220
Herd, 2016, Associations among methane emission traits measured in the feedlot and in respiration chambers in Angus cattle bred to vary in feed efficiency, Journal of Animal Science, 94, 4882, 10.2527/jas.2016-0613
Hernandez-Sanabria, 2010, Correlation of particular bacterial PCR-denaturing gradient gel electrophoresis patterns with bovine ruminal fermentation parameters and feed efficiency traits, Applied and Environmental Microbiology, 76, 6338, 10.1128/AEM.01052-10
Huang, 2006, Estimation of genetic trend in IGF-I concentration and correlated response in growth traits in lines of Angus beef cattle divergently selected for serum IGF-I concentration, Journal of Animal Science, 84, 109
Jami, 2012, Composition and similarity of bovine rumen microbiota across individual animals, PloS One, 7, e33306, 10.1371/journal.pone.0033306
Jennings, 2011, Circulating ghrelin and leptin concentrations and growth hormone secretagogue receptor abundance in liver, muscle, and adipose tissue of beef cattle exhibiting differences in composition of gain, Journal of Animal Science, 89, 3954, 10.2527/jas.2010-3597
Johnson, 2003, The history of energetic efficiency research: Where have we been and where are we going?, Journal of Animal Science, 81, E27
Jones, 2011, Methane emissions from grazing Angus beef cows selected for divergent residual feed intake, Animal Feed Science and Technology, 166, 302, 10.1016/j.anifeedsci.2011.04.020
Karisa, 2014, Plasma metabolites associated with residual feed intake and other productivity performance traits in beef cattle, Livestock Science, 165, 200, 10.1016/j.livsci.2014.03.002
Kelly, 2010, Effect of divergence in residual feed intake on feeding behavior, blood metabolic variables, and body composition traits in growing beef heifers, Journal of Animal Science, 88, 109, 10.2527/jas.2009-2196
Kelly, 2011, mRNA expression of genes regulating oxidative phosphorylation in the muscle of beef cattle divergently ranked on residual feed intake, Physiological Genomics, 43, 12, 10.1152/physiolgenomics.00213.2009
Kenny DA, Fitzsimons C, Waters SM and McGee M 2018. Invited review: improving feed efficiency of beef cattle: current state of the art and future challenges. Animal, https://10.1017/S1751731118000976.
Kolath, 2006, The relationship between mitochondrial function and residual feed intake in Angus steers, Journal of Animal Science, 84, 861, 10.2527/2006.844861x
Kong, 2016, Transcriptome profiling of the rumen epithelium of beef cattle differing in residual feed intake, BMC Genomics, 12, 592, 10.1186/s12864-016-2935-4
Lancaster, 2014, Relationships between residual feed intake and hepatic mitochondrial function in growing beef cattle, Journal of Animal Science, 92, 3134, 10.2527/jas.2013-7409
Lawrence, 2012, Grazed grass herbage intake and performance of beef heifers with predetermined phenotypic residual feed intake classification, Animal, 6, 1648, 10.1017/S1751731112000559
Lefaucheur, 2011, Muscle characteristics and meat quality traits are affected by divergent selection on residual feed intake in pigs, Journal of Animal Science, 89, 996, 10.2527/jas.2010-3493
Li F 2017. Rumen microbiome associated with feed efficiency and host genetics in beef cattle. PhD thesis, University of Alberta, Edmonton, AB, Canada.
Lobley, 2000, The effects of breed and level of nutrition on whole-body and muscle protein metabolism in pure-bred Aberdeen Angus and Charolais beef steers, British Journal of Nutrition, 84, 275, 10.1017/S0007114500001550
Manafiazar, 2015, Effect of post-weaning residual feed intake classification on grazed grass intake and performance in pregnant beef heifers, Canadian Journal of Animal Science, 95, 369, 10.4141/cjas-2014-184
Meale, 2017, Exploration of biological markers of feed efficiency in young bulls, Journal of Agricultural and Food Chemistry, 65, 9817, 10.1021/acs.jafc.7b03503
Moloney, 2017, actors influencing the growth of meat animals, 19
Mu, 2016, Genetic correlations between female fertility and postweaning growth and feed efficiency traits in multibreed beef cattle, Canadian Journal of Animal Science, 96, 448, 10.1139/cjas-2015-0175
Nkrumah, 2006, Relationships of feedlot feed efficiency, performance, and feeding behavior with metabolic rate, methane production, and energy partitioning in beef cattle, Journal of Animal Science, 84, 145, 10.2527/2006.841145x
Oddy, 1995, Protein metabolism in lambs from lines divergently selected for weaning weight, The Journal of Agricultural Science, 124, 129, 10.1017/S0021859600071331
Ojano-Dirain, 2007, Gene expression in breast muscle and duodenum from low and high feed efficient broilers, Poultry Science, 86, 372, 10.1093/ps/86.2.372
Oliveira, 2016, Feed efficiency and enteric methane production of Nellore cattle in the feedlot and on pasture, Animal Production Science, 58, 886, 10.1071/AN16303
Ortigues-Marty, 2017, De l’énergie de la ration à l’utilisation des nutriments chez les ruminants: quel rôle pour les tissus splanchniques?, Cahiers de Nutrition et de Diététique, 52, 45, 10.1016/j.cnd.2016.09.005
Perkins, 2014, Residual feed intake studies in Angus-sired cattle reveal a potential role for hypothalamic gene expression in regulating feed efficiency, Journal of Animal Science, 92, 549, 10.2527/jas.2013-7019
Pope, 2011, Isolation of Succinivibrionaceae implicated in low methane emissions from Tammar wallabies, Science, 333, 646, 10.1126/science.1205760
Rauw, 1998, Undesirable side effects of selection for high production efficiency in farm animals: a review, Livestock Production Science, 56, 15, 10.1016/S0301-6226(98)00147-X
Relling, 2014, Short communication: plasma concentration of glucose-dependent insulinotropic polypeptide may regulate milk energy production in lactating dairy cows, Journal of Dairy Science, 97, 2440, 10.3168/jds.2013-7574
Relling, 2008, Abomasal infusion of casein, starch and soybean oil differentially affect plasma concentrations of gut peptides and feed intake in lactating dairy cows, Domestic Animal Endocrinology, 35, 35, 10.1016/j.domaniend.2008.01.005
Renand G and Krauss D 2002. Genetic relationship between fattening and slaughter traits in pure bred Charolais young bulls. In Proceedings of the 7th World Congress on Genetics Applied to Livestock Production, 19–23 August, Montpellier, France, Communication 10-08.
Richardson, 2004, Biological basis for variation in residual feed intake in beef cattle. 2. Synthesis of results following divergent selection, Australian Journal of Experimental Agriculture, 44, 431, 10.1071/EA02221
Richardson, 2004, Metabolic differences in Angus steers divergently selected for residual feed intake, Australian Journal of Experimental Agriculture, 44, 441, 10.1071/EA02219
Rius, 2012, Nitrogen metabolism and rumen microbial enumeration in lactating cows with divergent residual feed intake fed high-digestibility pasture, Journal of Dairy Science, 95, 5024, 10.3168/jds.2012-5392
Rolfe, 1997, Cellular energy utilization and molecular origin of standard metabolic rate in mammals, Physiological Reviews, 77, 731, 10.1152/physrev.1997.77.3.731
Saatchi, 2014, Large-effect pleiotropic or closely linked QTL segregate within and across ten US cattle breeds, BMC Genomics, 15, 442, 10.1186/1471-2164-15-442
Sauvant, 2016, Quantification of the main digestive processes in ruminants: the equations involved in the renewed energy and protein feed evaluation systems, Animal, 10, 755, 10.1017/S1751731115002670
Sharifabadi, 2012, Relationship between the activity of mitochondrial respiration chain complexes and feed efficiency in fat-tailed Ghezel lambs, Journal of Animal Science, 90, 1807, 10.2527/jas.2011-4791
Vincent, 2015, Divergent selection for residual feed intake affects the transcriptomic and proteomic profiles of pig skeletal muscle, Journal of Animal Science, 93, 2745, 10.2527/jas.2015-8928
Waterlow, 2006
Weber, 2016, Identification of gene networks for residual feed intake in Angus cattle using genomic prediction and RNA-seq, PloS One, 11, e0152274, 10.1371/journal.pone.0152274
Zetouni, 2017, Direct multitrait selection realizes the highest genetic response for ratio traits, Journal of Animal Science, 95, 1921