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Effects of Heat Treatment of Three Animal by-products on Ruminal Degradation Characteristics and Intestinal Availability of Crude Protein

동물성 부산물 사료 세 종류에 대한 열처리가 조단백질의 반추위내 분해특성 및 하부장기내 이용성에 미치는 영향

  • Moon, Y.H. (Department of Animal Science and Biotechnology, Chinju National University) ;
  • Lee, S.C. (National Livestock Research Institute, RDA) ;
  • Kim, B.K. (Kyungbuk Livestock Research Institute)
  • Published : 2002.02.28

Abstract

In order to investigate the effects of heat treatment of three animal by-products(feather meal, tallow meal, viscera meal) on in situ ruminal degradation characteristics and gastrointestinal availability of dietary crude protein(CP), three ruminally and duodenally cannulated dry Holstein cows were employed. Cows were fed a diet containing 60% concentrate and 40% orchard grass hay, and had free access to water and mineral block. Experimental feeds were processed for 4 hr at 149$^{\circ}C$ in a forced-air oven, and were passed through a 1-mm screen. Degradation kinetics of feed protein in the rumen were fitted to an exponential type model, and intestinal availability was estimated by the mobile nylon bag technique. Effective CP degradabilities in the rumen for feather meal, tallow meal and viscera meal were 30.2%, 75.0% and 56.4% at 5% passage rate per hour(k=0.05), respectively. In addition, heat treatment increased effective ruminal CP degradability on feather meal and viscera meal treatments, whereas decreased in tallow meal treatment(P$<$0.05). Gastrointestinal CP disappearances of feather meal, tallow meal and viscera meal were 56.2%, 18.6%, and 37.9%, respectively. In addition, heat treatment decreased the gastrointestinal CP disappearance on feather meal and viscera meal treatment, but increased in tallow meal treatment(P$<$0.05). Intestinal availability of rumen undegradable protein(A-UDP) was 80.4% for feather meal, 83.8% for tallow meal and 86.9% for viscera meal. In addition, heat treatment increased A-UDP on feather meal and tallow meal treatment, 94.0% and 91.3%, respectively, but decreased on viscera meal treatment, 76.5%(P$<$0.05).

동물성 부산물 사료(우모분, 우지박, 내장분)단백질의 반추위내 분해특성과 하부장기내 이용성에 대한 열처리 효과를 구명하기 위하여 반추위와 십이지장에 누관이 장착된 Holstein 건유우 3두를 공시하였다. 시험사료에 대한 열처리는 149$^{\circ}C$가 유지되는 oven에서 4시간동안 처리한 후, 1 mm체를 통과시켰다. 시험사료의 반추위내 분해특성은 발효시간별 분해율에서 비선형회귀식을 유도하여 구하였고, 사료단백질의 하부장기내 이용성은 mobile nylon bag기법으로 추정되었다. 농후사료와 orchard grass를 60:40의 비율로 급여하였으며, 물과 mineral block은 자유섭취토록 하였다. 조단백질의 반추위내 유효분해도(k=0.05) 및 하부장기내 소실율에 있어서 우모분은 각각 30.2% 및 56.2%, 우지박은 75.0% 및 18.6% 그리고 내장분은 56.4% 및 37.9%였다. 시험사료에 대한 열처리효과에 있어서 조단백질의 반추위내 유효분해도는 우모분과 내장분은 증가하였으나 우지박은 감소되었고(P$<$0.05), 하부장기내 조단백질 소실율에서는 우지박은 증가된 반면, 우모분과 내장분은 감소되어(P$<$0.05) 상반되는 결과를 나타내었다. 반추위 미분해 사료단백질의 하부장기내 이용율은 우모분, 우지박 및 내장분에 대해서 각각 80.4%, 83.8% 및 86.9%였으며, 열처리를 함으로써 우모분과 우지박은 각각 94.0% 및 91.3%로 향상되었으나, 내장분은 76.5%로 낮아졌다(P$<$0.05).

Keywords

References

  1. AFRC. 1993. Energy and protein requirements of ruminants. CAB International. Wellinford, U.K.
  2. Agricultural Research Council. 1984. The nutrient requirements of ruminant livestock. Slough, Bucks Commonwealth Agricultural Bureaux.
  3. Broderick, G. A. and Craig, W. M. 1980. Effect of heat treatment on ruminal degradation and escape, and intestinal digestibility of cottonseed meal protein. J. Nutr. 110:2381.
  4. Chalupa, W. 1975. Amino acid nutrition of growing cattle. In : Tracer studies on non-protein nitrogen for ruminants. II. Proc. Res. Coordination meeting and panel. Int. Atomic Energy Agency. Vienna
  5. Cheftel, J. c., Cucq, J. L. and Lorient, D. 1985. Les proteines duble. In: J. C. Cheptel, J. L. Cucq and D. Lorient(Eds), Proteines Alimentaires. Technique et Documentation(Lavoisier) paris, France, p. 204.
  6. de Boer, G., Mupphy, J. 1. and Kennelly, J. 1. 1987. A modified method for determination of in situ rumen degradation of feedstuffs. Can. J. Anim. Sci. 67:93.
  7. Janick, F. J. and Stallings. C. C. 1988. Degradation of crude protein in forages determined by in vitro and in situ procedures. J. Dairy Sci. 71:2440
  8. Mahadevan, S. J., Ertle. D. and Sauer, F. D. 1980. Degradation of soluble and insoluble protein by bacteroides amylophilus and by microorganism. J. Anim. Sci. 50:723.
  9. Marquardt, W. 1963. An algorithm for least squares estimation of nonlinear parameters. Soc. Ind. Appl. Math, 11:431.
  10. NRC. 1988. Nutrient Requirements of dairy cattle. 6th rev. ed Natl. Acad. Sci., Washington. D. C.
  11. Orskov, E. R. and MacDonald, I. 1979. The estimation of protein degradability in the rumen from incubation measurements weighted according to rate of passage. J. Agr. Sci.(Camb.). 92:499.
  12. SAS. 1988. User's Guide : Statistical Analysis Systems Institute. Inc. Cary, NC
  13. Stern, M. D., Santos, K. A. and Satter, L. D. 1985. Protein degradation in the rumen and amino acid absorption in the small intestine of lactating dairy cattle fed heat treated whole soybeans. 1. Dairy Sci. 68:45.
  14. Stock, R., Merten, N., Klopfenstein, T. and Poos, M. 1981. Feeding value of slowly degraded proteins. J. Anim. Sci., 53:1109.