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Evaluation of FSP (Fermented Soy Protein) to Replace Soybean Meal in Weaned Pigs: Growth Performance, Blood Urea Nitrogen and Total Protein Concentrations in Serum and Nutrient Digestibility

  • Cho, J.H. (Department of Animal Resource & Sciences, Dankook University) ;
  • Min, B.J. (Department of Animal Resource & Sciences, Dankook University) ;
  • Chen, Y.J. (Department of Animal Resource & Sciences, Dankook University) ;
  • Yoo, J.S. (Department of Animal Resource & Sciences, Dankook University) ;
  • Wang, Q. (Department of Animal Resource & Sciences, Dankook University) ;
  • Kim, J.D. (CJ Feed Co. Inc.) ;
  • Kim, I.H. (Department of Animal Resource & Sciences, Dankook University)
  • Received : 2007.05.09
  • Accepted : 2007.07.22
  • Published : 2007.12.01

Abstract

A total of one hundred and forty four weaned pigs with an average BW of $8.09{\pm}0.05$ kg were used in a 28 day study to investigate the effects of fermented soy protein on growth performance, blood urea nitrogen and total protein concentrations in serum and nutrient digestibility in weaner pigs. Pigs were blocked by initial body weight and randomly allocated to one of four dietary treatments in a randomized complete block design. There were six replications per treatment. Dietary treatments included: SBM (corn-soybean meal basal diet), F 5, 10 and 15 (fermented soy product was used at 5, 10 and 15% to replace soybean meal in basal diet, respectively). ADG (average daily gain) and ADFI (average daily feed intake) were not affected (p>0.05) by dietary treatments during the entire 4-wk study period. There were linear increments in feed efficiency (p<0.01) as the dietary FSP level increased during the entire feeding period. No significant differences were observed for dry matter and nitrogen digestibility during the experimental period (p>0.05). Digestibilities of histidine, lysine and methionine were increased as the FSP level increased (linear effect, p<0.05, p<0.01). Among non-essential amino acids, alanine, glutamic acid, serine, tyrosine and total non essential amino acid digestibilities were increased linearly (p<0.05, p<0.01). There were quadratic effects in protein digestibility (p<0.05). Total amino acid digestibility of the F15 diet was improved compared with the F5 diet (p<0.05). There were no significant differences in fecal consistency score among the treatments (p>0.05). At the end of experiment, BUN (blood urea nitrogen) concentration was increased as the FSP level increased (linear effect, p<0.01) and total protein concentration was lowest (p<0.05) for pigs fed the SBM diet among treatments. In conclusion, the feeding of 10 or 15% FSP to nursery pigs improved feed efficiency, amino acid digestibility and blood urea nitrogen and total protein concentrations in blood.

Keywords

References

  1. AOAC. 1995. Official method of analysis. 16th Edition. Association of Official Analyticla Chemists, Washington, DC. USA.
  2. Anderson, R. L., J. J. Rackis and W. H. Tallent. 1979. Biologically active substances in soy products (Ed. H. L. Wilcke, D. T. Hopkins and D. H. Waggle) Soy Protein and Human Nutrition. pp. 209-233. Academic Press, New York.
  3. Bassily, J. A., K. G. Michael and A. K. Saild. 1982. Blood urea content for evaluating dietary protein quality. Br. J. Nutr. 24:983. https://doi.org/10.1079/BJN19700101
  4. Duncan, D. B. 1955. Multiple range and multiple F test. Biometrics. 11:1-42. https://doi.org/10.2307/3001478
  5. Eggum, B. O. 1970. Blood urea measurement as a technique for assessing protein quality. Br. J. Nutr. 24:983. https://doi.org/10.1079/BJN19700101
  6. Hong, K. J., C. H. Lee and S. W. Kim. 2004. Aspergillus oryzae GB-107 fermentation improves nutritional quality of food soybeans and feed soybean meals. J. Med. Food. 7:430. https://doi.org/10.1089/jmf.2004.7.430
  7. Kelly, D., J. A. Smyth and K. J. McCracken. 1991. Digestive development in the early weaned pig. I. Effect of continuous nutrient supply on the development of the digestive tract and on changes in the digestive enzyme activity during the first week post-weaning. Br. J. Nutr. 65:169-180. https://doi.org/10.1079/BJN19910078
  8. Kiers, J. L., A. E. A. van Laeken, F. M. Rombouts and M. J. R. Nout. 2000. In vitro digestibility of bacillus fermented soya bean. Int. J. Food. Micobiol. 60:163. https://doi.org/10.1016/S0168-1605(00)00308-1
  9. Kiers, J. L., J. C. Meijer, M. J. R. Nout, F. M. Rombouts, M. J. A. Nabuurs and J. van der Meulen. 2003. Effect of fermented soya beans on diarrhea and feed efficiency in weaned piglets. J. Appl. Microbiol. 95:545. https://doi.org/10.1046/j.1365-2672.2003.02011.x
  10. Kim, Y. C. 2004. Evaluation of availability for fermented soybean meal in weanling pigs. Ph. D. Thesis, Department of Animal Resources and Science, Seoul, Korea.
  11. Kim, S. W., R. D. Mateo and F. Ji. 2005. Fermented soybean meal as a protein source in nursery diets replacing dried skim milk. J. Anim. Sci. 83(Suppl. 1):116.
  12. Kim, Y. G., J. D. Lohakare, J. H. Yun, S. Heo and B. J. Chae. 2007. Effect of feeding levels of microbial fermented soy protein on the growth performance, nutrient digestibility and intestinal morphology in weaned piglets. Asian-Aust. J. Anim. Sci. 20:399-404. https://doi.org/10.5713/ajas.2007.399
  13. Min, B. J., J. W. Hong, O. S. Kwon, W. B. Lee, Y. C. Kim, W. T. Cho and I. H. Kim. 2004. The effect of feeding processed soy protein on the growth performance and apparent ileal digestibility in weanling pigs. Asian-Aust. J. Anim. Sci. 17:1271-1276. https://doi.org/10.5713/ajas.2004.1271
  14. Min, B. J. 2006. Nutritional value of fermented soy protein (FSP) and effect of FSP on performance and meat quality of pigs. Ph. D. Thesis, Department of Animal Resources and Science, Seoul, Korea.
  15. NRC. 1998. Nutrient requirement of pigs (10th Ed.) National Research Council, Academy Press. Washington, DC., USA.
  16. Orok, E. J. and J. P. Bowland. 1975. Rapeseed, peanut and soybean meal as protein supplements: plasma urea concentrations of pigs on different feed intakes as indices of dietary protein quality. Can. J. Anim. Sci. 55:347-360. https://doi.org/10.4141/cjas75-042
  17. Peterson, R. G. 1985. Design and analysis of experiments. Marcel Dekker, Inc., NY.
  18. Rerat, A., C. Simones-Nunes. F. Mendy, P. Vaissade and P. Vaugelade. 1992. Spalnchnic fluxes of amino acids after duodenal infusion of carbohydrate solutions contaning free amino acids or oligopeptides in the non-anaesthetizes pig. Br. J. Nutr. 68:111-138. https://doi.org/10.1079/BJN19920071
  19. Sarkar, P. K., L. J. Jones, G. S. Craven, S. M. Somerset and C. Palmer. 1997. Amino acid profiles of kinema, a soybeanfermented food. Food Chem. 59:69. https://doi.org/10.1016/S0308-8146(96)00118-5
  20. SAS. 1996. SAS user's guide. Release 6.12 edition, SAS Institute. Inc Cary, NC, USA.
  21. Sherman, D. M., S. D. Acres, P. L. Sadowski, J. A. Springer, B. Bray and T. J. L. Raybould and C. C. Muscoplat. 1983. Protection of calves against fatal enteric colibacillosis by orally administered Escherichia coli K99-specific monoclonal antibody. Infect. Immun. 42:656-658.
  22. Shon, K. S., C. V. Maxwell, D. S. Buchanan and L. L. Southern. 1994. Improved soybean protein for early-weaned pigs: I. Effects on performance and total tract amino acids digestibility. J. Anim. Sci. 72:622-630 https://doi.org/10.2527/1994.723622x
  23. Steinkraus, K. H. 1996. Handbook of ingredients fermented foods. New York: Marcel Dekker Inc.
  24. Vente-Spreeuwenberg, M. A. M., J. M. A. J. Verdonk, J. F. J. G. Koninkx, A. C. Beynen and M. W. A. Verstegen. 2004. Dietary protein hydrolysates vs. the intact proteins do not enhance mucosal integrity and growth performance in weaned piglets. Livest. Prod. Sci. 85:151-164. https://doi.org/10.1016/S0301-6226(03)00132-5
  25. Yun, J. H., I. K. Kwon, J. D. Lohakare, J. Y. Choi, J. S. Yong, J. Zheng, W. T. Cho and B. J. Chae. 2005. Comparative efficacy of plant and animal protein source on the growth performance, nutrient digestibility, morphology and caecal microbiology of early-weaned pigs. Asian-Aust. J. Anim. Sci. 18:1285-1293. https://doi.org/10.5713/ajas.2005.1285

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