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Influence of methionine supplementation of growing diets enriched with lysine on feedlot performance and characteristics of digestion in Holstein steer calves

  • 투고 : 2016.03.04
  • 심사 : 2016.07.11
  • 발행 : 2017.01.01

초록

Objective: Two trials were conducted in order to examine the effects of level of supplemental methionine on productive performance, dietary energetic, plasma amino acid concentration, and digestive function. Methods: Dietary treatments consisted of a steam-flaked corn-based diet containing urea as the only source of supplemental nitrogen supplemented with no supplemental amino acid (control), or control plus 1.01% lysine and 0.032%, 0.064%, 0.096%, or 0.128% methionine. In Trial 1, 150 Holstein steer calves ($127{\pm}4.9kg$) were utilized to evaluate the influence of treatments on growth-performance, dietary energetic, plasma amino acid concentration during the first 112 days of growing period. During the initial 56-d period calves received the 5 experimental diets. During the subsequent 56-d period all calves were fed the control diet. Results: During the initial 56-d period, methionine supplementation increased (linear effect, p<0.01) plasma methionine. In the presence of supplemental lysine, increases on level of methionine in diet did not affect average daily gain. However, increased gain efficiency (quadratic effect, p = 0.03) and estimated dietary net energy (NE; linear effect, p = 0.05). Estimated metabolizable methionine supply was closely associated ($R^2=0.95$) with efficiency NE utilization for maintenance and gain. During the subsequent 56-d period, when all calves received the control diet (no amino acid supplementation), plasma amino acid concentrations and growth performance was not different among groups. However, the effects of methionine supplementation during the initial 56-period carried over, so that following a 56-d withdrawal of supplementation, the overall 112-d effects on gain efficiency (quadratic effect, p = 0.05) dietary NE (linear effect, $p{\leq}0.05$) remained appreciable. In Trial 2, 5 cannulated Holstein steers were used to evaluate treatment effects on characteristics of digestion and amino acid supply to the small intestine. There were no treatment effects on flow of dietary and microbial N to the small intestine. Postruminal N digestion increased (p = 0.04) with increasing level of supplemental methionine. Methionine supplementation linearly increased (p<0.01) duodenal flow of methionine. Likewise, lysine supplementation increased an average of 4.6% (p = 0.04) duodenal flow of lysine. In steers that received non-supplemented diet, observed intestinal amino acid supply were in good agreement with expected. Conclusion: We conclude that addition of rumen-protected methionine and lysine to diets may enhance gain efficiency and dietary energetics of growing Holstein calves. Observed amino acid supply to the small intestine were in good agreement with expected, supportive of NRC (2000, Level 1).

키워드

참고문헌

  1. Zinn RA, Calderon JF, Corona L, Plascencia A, Montano MF, Torrentera N. Phase feeding strategies to meet metabolizable amino acid requirements of calf-fed Holstein steers. Prof Anim Scient 2007;23:333-9.
  2. Vasconcelos JT, Galyean ML. Nutritional recommendations of feedlot consulting nutritionist: the 2007 Texas Tech University survey. J Anim Sci 2007;85:2772-81. https://doi.org/10.2527/jas.2007-0261
  3. Committee of nutrient requirements of beef cattle, National Research Council. Nutrient Requirements of Beef Cattle. 7th edn. Washington, DC: National Academy of Press; 2000.
  4. Zinn RA, Shen Y. An evaluation of ruminally degradable intake protein and metabolizable amino acid requirements of feedlot calves. J Anim Sci 1998;76:1280-9. https://doi.org/10.2527/1998.7651280x
  5. Hussein HS, Berger LL. Feedlot performance carcass characteristics of Holstein steers as affected by source of dietary protein and level of ruminally protected lysine and methionine. J Anim Sci 1995;73:3503-9. https://doi.org/10.2527/1995.73123503x
  6. Wessels RH, Titgemeyer EC, St. Jean G. Effect of amino acid supplementation on whole-body protein turnover in Holstein steers. J Anim Sci 1997;75:3066-73. https://doi.org/10.2527/1997.75113066x
  7. Committee of nutrient requirements of beef cattle, National Research Council. Nutrient Requirements of Beef Cattle. 6th edn. Washington, DC: National Academy of Press; 1984.
  8. Garrett WN. Energy efficiency of beef and dairy steers. J Anim Sci 1971;32:451-6. https://doi.org/10.2527/jas1971.323451x
  9. Statistical Analysis System Institute Inc. User's Guide: Statistics, version 9. SAS Inst. Cary, NC; 2004.
  10. Zinn RA, Plascencia A. Interaction of whole cottonseed and supplemental fat on digestive function in cattle. J Anim Sci 1993;71:11-7. https://doi.org/10.2527/1993.71111x
  11. Bergen WG, Purser DB, Cline, JH. Effect of ration on the nutritive quality of rumen microbial protein. J Anim Sci 1968;27:1497-501. https://doi.org/10.2527/jas1968.2751497x
  12. Latimer GW; AOAC International. Official Methods of Analysis of AOAC International. 17th ed. Gaithersburg, MD: AOAC International; 2000.
  13. Van Soest PJ, Robertson JB, Lewis BA. Methods for dietary fiber, neutral detergent fiber, and nonstarch polysaccharides in relation to animal nutrition. J Dairy Sci 1991;74:3583-97. https://doi.org/10.3168/jds.S0022-0302(91)78551-2
  14. Hill FN, Anderson DL. Comparison of metabolizable energy and productive energy determinations with growing chicks. J Nutr 1958;64:587-603. https://doi.org/10.1093/jn/64.4.587
  15. Zinn RA. 1990. Influence of flake density on the comparative feeding value of steam-flaked corn for feedlot cattle. J Anim Sci 1990;68:767-75. https://doi.org/10.2527/1990.683767x
  16. Zinn RA, Owens FN. A rapid procedure for purine measurement and its use for estimating net ruminal protein synthesis. Can J Anim Sci 1986;66:157-66. https://doi.org/10.4141/cjas86-017
  17. Zinn RA, Alvarez EG, Montano MF, Ramirez JE. Interaction of protein nutrition and laidlomycin on feedlot growth performance and digestive function in Holstein steers. J Anim Sci 2000;78:1768-78. https://doi.org/10.2527/2000.7871768x
  18. Gibb DJ, Klopfenstein TJ, Britton RA, Lewis AJ. Plasma amino acid response to graded levels of escape protein. J Anim Sci 1992;70:2885-92. https://doi.org/10.2527/1992.7092885x
  19. Klemesrud MJ, Klopfenstein TJ, Stock RA, Lewis AJ, Herold DW. Effect of dietary concentration of metabolizable lysine on finishing cattle performance. J Anim Sci 2000;78:1060-6. https://doi.org/10.2527/2000.7841060x
  20. Campbell CG, Titgemeyer EC, St-Jean G. Efficiency of D- vs L-methionine utilization by growing steers. J Anim Sci 1996;74:2482-7. https://doi.org/10.2527/1996.74102482x
  21. Robert JC, Williams PEV. Influence of forage type on the intestinal availability of methionine from a rumen protected form. J Dairy Sci 1997;80:248.

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