Journal of Animal and Veterinary Advances

Year: 2011
Volume: 10
Issue: 12
Page No. 1551 - 1556

Potential Environmental Benefits of Residual Feed Intake as Strategy to Mitigate Methane Emissions in Sheep

Authors : A. Muro-Reyes, H. Gutierrez-Banuelos, L.H. Diaz-Garcia, F.J. Gutierrez-Pina, L.M. Escareno-Sanchez, R. Banuelos-Valenzuela, C.A. Medina-Flores and A. Corral Luna

References

Archer, J.A. and L. Bergh, 2000. Duration of performance tests for growth rate, feed intake and feed efficiency in four biological types of beef cattle. Livest. Prod. Sci., 65: 47-55.
CrossRef  |  

Arthur, P.F., J.A. Archer, D.J. Johnson, R.M. Herd, E.C. Richardson and P.F. Parnell, 2001. Genetic and phenotypic variance and covariance components for feed intake, feed efficiency and other postweaning traits in Angus cattle. J. Anim. Sci., 79: 2805-2811.
Direct Link  |  

Baker, S.D., J.I. Szasz, T.A. Klein, P.S. Kuber and C.W. Hunt et al., 2006. Residual feed intake of purebred Angus steers: Effects on meat quality and palatability. J. Anim. Sci., 84: 938-945.
PubMed  |  

Basarab, J.A., M.A. Price, J.L. Aalhus, E.K. Okine, W.M. Snelling and K.L. Lyle, 2003. Residual feed intake and body composition in young growing cattle. Can. J. Anim. Sci., 83: 189-204.

Boadi, D., C. Benchaar, J. Chiquette and D. Masse, 2004. Mitigation strategies to reduce enteric methane emissions from dairy cows: Update review. Can. J. Anim. Sci., 84: 319-335.
CrossRef  |  Direct Link  |  

Carstens, G.E. and M.S. Kerley, 2009. Biological basis for variation in energetic efficiency of beef cattle. Proceedings of the Beef Improvement Federation 41st Annual Research Symposium, April 30-May 3, Sacramento, California, USA., pp: 124-131.

Golden, J.W., M.S. Kerley and W.H. Kolath, 2008. The relationship of feeding behavior to residual feed intake in crossbred Angus steers fed traditional and no-roughage diets. J. Anim. Sci., 86: 180-186.
PubMed  |  

Hegarty, R.S., J.P. Goopy, R.M. Herd and B. McCorkell, 2007. Cattle selected for lower residual feed intake have reduced daily methane production. J. Anim. Sci., 85: 1479-1486.
PubMed  |  

Herd, R.M. and S.C. Bishop, 2000. Genetic variation in residual feed intake and its association with other production traits in British Hereford cattle. Livest. Prod. Sci., 63: 111-119.
CrossRef  |  Direct Link  |  

Hoque, M.A., P.F. Arthur, K. Hiramoto and T. Oikawa, 2006. Genetic parameters for carcass traits of field progeny and their relationships with feed efficiency traits of their sire populations for Japanese Black cattle. Livest. Sci., 100: 251-260.

Howden, S.M., D.H. White, G.M. Mckeon, J.C. Scanlan and J.O. Carter, 1994. Methods for exploring management options to reduce greenhouse gas emissions from tropical grazing systems. Climatic Change, 27: 49-70.
CrossRef  |  

Intergovernmental Panel on Climate Change, 2001. Climate Change 2001: Synthesis Report. In: Contribution of Working Groups I, II and III to the Third Assessment Report of the Intergovernmental Panel on Climate Change, Watson, R.T. and C. Team (Eds.). Cambridge University Press, Cambridge.

Kahi A.K. and H. Hirooka, 2007. Effect of direct and indirect selection criteria for efficiency of gain on profitability of japanese black cattle selection strategies. J. Anim. Sci., 85: 2401-2412.
Direct Link  |  

Knott, S.A., L.J. Cummins, F.R. Dunshea and B.J. Leury, 2008. Rams with poor feed efficiency are highly responsive to an exogenous adrenocorticotropin hormone (ACTH) challenge. Domestic Anim. Endocrinol., 34: 261-268.
PubMed  |  

Knott, S.A., L.J. Cummins, F.R. Dunshea and B.J. Leury, 2008. The use of different models for the estimation of residual feed intake (RFI) as a measure of feed efficiency in meat sheep. Anim. Feed Sci. Technol., 143: 242-255.
CrossRef  |  

Koch, R.M., L.A. Swiger, D. Chambers and K.E. Gregory, 1963. Efficiency of feed use in beef cattle. J. Anim. Sci., 22: 486-494.
Direct Link  |  

Kolath, W.H., M.S. Kerley, J.W. Golden and D.H. Keisler, 2006. The relationship between mitochondrial function and residual feed intake in Angus steers. J. Anim. Sci., 84: 861-865.
Direct Link  |  

Lancaster, P.A., G.E. Carstens, D.H. Crews, T.H. Welsh and T.D.A. Forbes et al., 2009. Phenotypic and genetic relationships of residual feed intake with performance and ultrasound carcass traits in Brangus heifers. J. Anim. Sci., 87: 3887-3896.
Direct Link  |  

Mathison, G.W., E.K. Okine, T.A. McAllister, Y. Dong, J. Gal-Braith and O.I.N. Dmytruk, 1998. Reducing methane emissions from ruminant animals. J. Applied Anim. Res., 14: 1-28.

Moss, A.R., J.P. Jouany and J. Newbold, 2000. Methane production by ruminants: Its contribution to global warming. Annales Zootechnie, 49: 231-253.
CrossRef  |  Direct Link  |  

NGGIP, 1996. Revised 1996 IPCC guidelines for national greenhouse gas inventories. http://www.ipcc-nggip.iges.or.jp/public/gl/invs1.html.

Nkrumah, J.D., E.K. Okine, G.W. Mathison, K. Schmid and C. Li et al., 2006. Relationships of feedlot feed efficiency, performance and feeding behavior with metabolic rate, methane production and energy partitioning in beef cattle. J. Anim. Sci., 84: 145-153.
Direct Link  |  

Richardson, E.C. and R.M. Herd, 2004. Biological basis for variation in residual feed intake in beef cattle. 2. Synthesis of results following divergent selection. Aust. J. Exp. Agric., 44: 431-440.

Russell, J.B. and R.J. Wallace, 1988. Energy Yielding and Consuming Reactions. In: The Rumen Microbial Ecosystem, Hobson, P.N. (Ed.). Elsevier Applied Science, London, UK., pp: 185-215.

Torrent, J. and D.E. Johnson, 1994. Methane Production in the Large Intestine of Sheep. In: Energy Metabolism of Farm Animals, Aquilera, J.F. (Ed.). EAAP Publication, CSIC Publishing Service, Granada Spain, pp: 391-394.

US Environmental Protection Agency, 2007. Ruminant livestock. How Much Methane is Produced by Livestock. http://www.epa.gov/rlep/faq.html.

United Nations Framework Convention on Climate Change, 1998. Kyoto protocol to the United Nations framework convention on climate change. http://unfccc.int/resource/docs/convkp/kpeng.pdf.

Van Nevel, C.J. and D.I. Demeyer, 1996. Control of rumen methanogenesis. Environ. Monitor. Assess., 42: 73-97.
CrossRef  |  

Waghorn, G.C. and D.A. Clark, 2006. Greenhouse gas mitigation opportunities with immediate application to pastoral grazing for ruminants. Int. Congress Ser., 1293: 107-110.
CrossRef  |  

Wood, B.J., J.A. Archer and J.H.J. van der Werf, 2004. Response to selection in beef cattle using IGF-1 as a selection criterion for residual feed intake under different Australian breeding objectives. Livest. Prod. Sci., 91: 69-81.
CrossRef  |  

Design and power by Medwell Web Development Team. © Medwell Publishing 2024 All Rights Reserved