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Fermentable and Nutritional Characteristics of Brewery Meal-Based Fermented Feedstuffs Supplemented with Aspergillus Oryzae and Saccharomyces Cerevisiae

Aspergillus Oryzae 및 Saccharomyces Cerevisiae를 첨가하여 제조한 맥주박 위주 발효사료의 발효 특성 및 영양학적 특성

  • Shin, Jong-Suh (Division of Animal Resources Science, Kangwon National University) ;
  • Park, Byung-Ki (National Livestock Research Institute, R.D.A.) ;
  • Kim, Byong-Wan (Division of Animal Resources Science, Kangwon National University)
  • Published : 2005.12.01

Abstract

This study was conducted to compare and evaluate fermentable and nutritional characteristics of brewery meal-based fermented feedstuffs supplemented with Aspergillus oryzae (AO) and Saccharomyces cerevisiae (SC). Experiments were divided into three treatment groups; fermented feedstuff supplemented with $1\%$ of AO(FFAO), fermented feedstuff supplemented with $1\%$ of SC(FFSC), and fermented feedstuff supplemented with $0.5\%$ of AO and $0.5\%$ of SC(FFAS). For changes of crude protein contents by 48 h fermentation, there were no significant differences among treatments. Ether extract(EE) contents were significantly increased by 48 h fermentation (p<0.05). Neutral detergent fiber(NDF) contents of FFAO, FFSC and FFAS were significantly decreased by 48 h fermentation(p<0.05), but acid detergent fiber(ADF) and acid detergent lignin (ADL) contents were not different. The pH of FFAO and FFAS was decreased more rapidly than that of FFSC(p<0.05), reaching a plateau after 24 h. Alcohol content was increased rapidly until 18 h in FFAO and was increased rapidly until 12 h in FFSC and FFAS, and alcohol content of FFAO, FFSC and FFAS was maintained constantly after 24 h. The ammonia N content of FFAO, FFSC and FFAS was 0.022, 0.073 and $0.040\%$ at 48 h, respectively, and then ammonia N was over twice higher in FFSC than in FFAO and FFAS(p<0.05). Dextrose content was increased until 6 h in FFAO but was rapidly decreased in FFSC and FFAS until 6 h(p<0.05). Lactate content was higher in FFAO and FFAS than in FFSC(p<0.05). Consequently, when we added AO in formulation of fermented feedstuff with brewery meal which moisture content was high, EE, alcohol, and lactate contents were increased, but NDF and ammonia N contents were reduced. Therefore, it is expected that AO will be effective to increase the feed value and the preservation of fermented feedstuff with a high moisture content.

본 연구는 Aspergillus Oryzae (AO) 및 Saccharomyces cerevisiae (SC)를 첨가하여 제조한 맥주박 위주 발효사료의 발효특성 및 영양학적 특성을 검토하기 위해 실시하였다. 시험구 처리는 시험사료에 AO $1\%$를 첨가하여 제조한 발효사료 처리구(FFAO), SC $1\%$를 첨가하여 제조한 발효사료 처리구(FFSC) 및 AO $0.5\%$와 SC $0.5\%$를 첨가하여 제조한 발효사료 처리구(FFAS)로 나누었다. 48시간 발효에 따른 조단백질 함량은 처리간에 차이가 없었다. 조지방 함량은 48시간 발효에 의해 유의적으로 증가하였다 (p<0.05). FFAD, FFSC 및 FFAS구의 NDF 함량은 48시간 발효로 인해 현저하게 감소하였으나, ADF 및 ADL 함량은 차이가 없었다. FFAO 및 FFAS구의 pH는 FFSC구에 비해 발효시간이 경과함에 따라 신속히 감소하였으나(p<0.05), 24시간 이후에는 일정 수준을 유지하였다 Alcohol 함량은 FFAO구에서는 발효 15시간까지 증가하였고 FFSC 및 FFAS구에서는 발효 12시간까지 증가하였으며, FFAO, FFSC 및 FFAS구의 alcohol 함량은 발효 24시간 이후에는 일정 수준을 유지하였다. FFAO, FFSC 및 FFAS구의 발효 48시간에 암모니아 함량은 각각 0.022, 0.073 및 $0.040\%$로 나타나 FFSC구가 FFAO 및 FFAS구에 비해 암모니아 함량이 2배 이상 높았다(p<0.05). Dextrose 함량은 FFAO구에서는 발효 6시간까지 증가하였으나 FFSC 및 FFAS구에서는 발효 6시간까지 급속히 감소하였다(p<0.05). Lactate 함량은 FFAO 및 FFfS구가 FFSC구에 비해 높았다(p<0.05). 이상의 결과에서 수분 함량이 높은 맥주박을 이용하여 발효사료 제조시 AO를 첨가하게 되면 조지방, alcohol 및 lactate 함량은 증가하지만, NDF 및 암모니아 함량은 감소하는 것으로 나타났다. 따라서 AO의 첨가는 수분 함량이 높은 발효사료의 사료가치 및 보존성을 증진시키는데 효과적인 것으로 판단된다.

Keywords

References

  1. Ando, S., Y. Nishiguchi, K. Hayasaka, Y. Yoshihara, J. Takahashi and H. Iefuji. 2005. Effects of strains of Saccharomyces cerevisiae and incubation conditions on the in vitro degradability of yeast and roughage. Asian-Aust. J. Anim. Sci. 18:354-357
  2. AOAC. 1995. Official Methods of Analysis. 16th Ed., Association of Official Analytical Chemist, Washington D. C., U.S.A
  3. Chaney, A. L. and E. P. Marbach. 1962. Modified reagents for determination of urea and ammonia. Cli. Chem. 8:130-132
  4. Garcia, C. C. G., M. G. D. Mendoza, M. S. Gonzalez, P. M. Cobos, C. M. E. Ortega and L. R. Ramirez. 2000. Effect of a yeast culture (Saccharomyces cerevisiae) and monensin on ruminal fermentation and digestion in sheep. Anim. Feed Sci. Technol. 83:165-170 https://doi.org/10.1016/S0377-8401(99)00126-1
  5. Garraway, M. O. and R. C. Evans. 1984. Fungal nutrition and physiology. John Wiley & Sons, Inc., New York
  6. Gomez-Alarcon, R. A., C. Dudas and J. T. Huber. 1987. Effect of Aspergillus oryzae(AMAFERM) and yeast on feed utilization by Holstein cows. J. Dairy. Sci. 70 (Suppl. 1):218 (Abstr)
  7. Harris, G. 1958. In the chemistry and Biochemistry of Yeast (A. H. Cook, Ed) Academic Press, New York, pp: 437-533
  8. Hasan, S.M. and J.B. Hall. 1975. The physiological function of nitrate reduction in Clostridium perfringens. J. Gen. Mirobiol. 87:120-128 https://doi.org/10.1099/00221287-87-1-120
  9. Heron, S.J., R.A. Edward and P. McDonald. 1986. Changes in the nitrogenous components of gamma-irradiated and inoculated ensiled ryegrass. J. Sci. Food Agric. 37:979-985 https://doi.org/10.1002/jsfa.2740371005
  10. Higginbotham, G.E., J. E.P. Santos, S.O. Juchem and E.J. DePeters. 2004. Effect of feeding Aspergillus oryzae extract on milk production and rumen parameters. Anim. Feed Sci. Technol. 86:55-59
  11. Ingold, C.T. 1984. The Biology of Fungi (5th Ed.). Hutchinson Co., Ltd., London
  12. Jensen, B.B. and L.L. Mikkelsen. 1998. Feeding liquid diets to pigs. Pages 107-126 in Recent Advances in Animal Nutrition. P. C. Gamsworthy and J. Wiseman, Ed., Nottingham Univ. Press, Nottingham, U. K
  13. Kim, C.Z., K.C.. Kim, D.Y. Kim, M.J. Ohh, S.K. Lee, S.O. Lee, S.T. Jung and J.H. Jung. 1996. Fermentation technology. Sunjin Press, Seoul, Korea
  14. Lamanna, C. and M.F. Mallette. 1965. Basic Bacteriology, Williams and Wilkins Co., Baltimore
  15. Lin, G.Z. 2001. Nutritional metabolism of alcohol fermented feedstuff in the rumen of Korean Beef Cattle. Ph.D. Thesis, Kangwon National University, Chuncheon, Kangwon
  16. Lin, G.Z., C.H. Kim, S.J. Ohh, K.I. Sung, H.S. Kim, J.B. Kim, B.J. Hong and J.S. Shin. 2001. Effect of alcohol-fermented feedstuffs on growth performance and blood metabolites in Hanwoo. Kor. J. Anim. Sci. & Technol. 43:881-894
  17. Mikkelsen, L.L. and B.B. Jensen. 1997. Effect of fermented liquid feed (FLF) on growth performance and microbial activity in the gastrointestinal tract of weaned piglets. Pages 639- 642 in Digestive physiology in Pigs. J. P. Laplace, C. Fevrier, and A. Barbeau, ed. EAAP Pub. No. 88, INRA, Paris, France
  18. Ohshiam, H. and P. McDonald. 1978. A review of the changes nitrogenous compounds in herbage during ensiling. J. Sci. Food and Agric. 29:497-505 https://doi.org/10.1002/jsfa.2740290602
  19. Pettersson, D., H. Graham and P. Amen. 1989. Enzyme supplementation of broiler chickens. Anim. Prod. 51:399-404
  20. Russell, P.J., T.M. Gesty, P.H. Brooks and A. Campbell. 1996. Performance, water use and effluent output of weaner pigs fed ad libitum with either dry pellets or liquid feed and the tool of microbial activity in the liquid feed. J. Sci. Food Agric. 72:8-16 https://doi.org/10.1002/(SICI)1097-0010(199609)72:1<8::AID-JSFA646>3.0.CO;2-K
  21. SAS. 1999. SAS/STAT Software for PC. Release 6.11, SAS Institute, Cary, NC, U.S.A.
  22. Shin, J.S., J.B. Kim, K.I. Sung, I.S. Yuh, K.E. Kim, Y.S. Park and B.J. Hong. 1994. Establishment of Korean native cattle feeding system for high quality beef production. 1. Effect of bovine somatotropin and fermented alcoholic feedstuff on growth, feed efficiency, blood metabolites, meat composition and carcass grade. Kor. J. Anim. Nutr.Feed. 18:363-372
  23. SulIivan. H.M. and S.A. Martin. 1999. Effects of a Saccharomyces cerevisiae culture on in vitro mixed ruminal microorganism fermentation. J. Dairy Sci. 82:2011-2016 https://doi.org/10.3168/jds.S0022-0302(99)75438-X
  24. Thaela, M.J., M.S. Jensen, S.G. Pierzynowski, S. Jakob and B.B. Jensen. 1998. Effect of lactic acid supplementation on pancreatic secretion in pigs after weaning. J. Anim. Feed Sci. 7 (Suppl.1) :181-183
  25. Van Soest, P.J., J.B. Robertson and B.A. Lewis. 1991. Methods for dietary fiber, neutral detergent fiber, and nonstarch polysaccharides in relation to animal nutrition. J. Dairy Sci. 74:3583-3597 https://doi.org/10.3168/jds.S0022-0302(91)78551-2
  26. Vanbelle, M., E. Teller and M. Focant. 1990. Probiotics in animal nutrition: a review. Arch. Anim. Nutr. Berlin. 40:543-567 https://doi.org/10.1080/17450399009428406
  27. Wallace, R.J. 1994. Ruminal microbiology, biotechnology, and ruminant nutrition: progress and problems. J. Anim. Sci. 72: 2992-3003
  28. Wang Z., M.L. Eastridge and X. Qiu. 2001. Effects of forage neutral detergent fiber and yeast culture on performance of cows during early lactation. J. Dairy Sci. 84:204-212 https://doi.org/10.3168/jds.S0022-0302(01)74470-0
  29. Yan, C.G. 1998. Effects of alcohol-fermented feedstuff on quality meat production in Hanwoo. Ph.D. Thesis, Kangwon National University, Chuncheon, Kangwon
  30. Yang, W.Z., K.A. Beauchemin, D.D. Vedres, G.R. Ghorbani, D. Colombatto and D.P. Morgavi. 2004. Effects of direct-fed microbial supplementationon ruminal acidosis, digestibility, and bacterial protein synthesis in continuous culture. Anim. Feed Sci. Technol. 114:179-193 https://doi.org/10.1016/j.anifeedsci.2003.12.010