DOI QR코드

DOI QR Code

Effects of Lactic Acid Bacteria Inoculant on Fermentation Quality and in vitro Rumen Fermentation of Total Mixed Ration

  • Choi, Yeon Jae (Department of Animal Science and Technology, Sunchon National University) ;
  • Lee, Sang Suk (Department of Animal Science and Technology, Sunchon National University)
  • Received : 2019.03.05
  • Accepted : 2019.09.16
  • Published : 2019.09.30

Abstract

Fermented total mixed ration (TMR) is a novel feed for ruminants in South Korea. The purpose of this study was to evaluate the effects of lactic acid bacteria (LAB) on the quality of TMR and in vitro ruminal fermentation. Strains of three LAB spp. (Lactobacillus plantarum, L. brevis, L. mucosae) were used in fermentation of TMR. Inoculations with the three LAB spp. lowered pH and increased concentrations of lactic acid, acetic acid, and total organic acid compared to non-LAB inoculated control (only addition of an equivalent amount of water) (p<0.05). Bacterial composition indicated that aerobic bacteria and LAB were higher. However, E. coli were lower in the fermented TMR than those in the control treatment (p<0.05). Among the treatments, L. brevis treatment had the highest concentration of total organic acid without fungus detection. Gas production, pH, and ammonia-nitrogen during ruminal in vitro incubation did not differ throughout incubation. However, ruminal total VFA concentration was higher (p<0.05) in the LAB spp. treatments than the control treatment at 48 hours. Overall, the use of L. brevis as an inoculant for fermentation of high moisture. TMR could inhibit fungi growth and promote lactic fermentation, and enhance digestion in the rumen.

Keywords

References

  1. AOAC (Association of official analytical chemists). 1990. Official methods of analysis. Assoc Anal Chem.
  2. Asanuma, N., Iwamoto, M. and Hino, T. 1999. Effect of the addition of fumarate on methane production by ruminal microorganisms in vitro. Journal of Dairy Science. 82:780-787. https://doi.org/10.3168/jds.S0022-0302(99)75296-3
  3. Bonestroo, M., De Wit, J., Kusters, B. and Rombouts, F. 1993. Inhibition of the growth of yeasts in fermented salads. International Journal of Food Microbiology. 17:311-320. https://doi.org/10.1016/0168-1605(93)90201-Q
  4. Cao, Y., Takahashi, T., Horiguchi, K., Yoshida, N. and Cai, Y. 2010. Methane emissions from sheep fed fermented or non-fermented total mixed ration containing whole-crop rice and rice bran. Animal Feed Science and Technology. 157:72-78. https://doi.org/10.1016/j.anifeedsci.2010.02.004
  5. Cha, J., Ali, M., Hong, Y., Yu, B., Lee, S., Hoon, S. and Kim, H. 2018. Development of a pelletizing system of fermented TMR for pig feeding. Journal of Biosystems Engineering. 43:119-127. https://doi.org/10.5307/JBE.2018.43.2.119
  6. Chaney, A.L., and Marbach, E.P. 1962. Modified reagents for determination of urea and ammonia. Clinical Chemistry. 8:130-132. https://doi.org/10.1093/clinchem/8.2.130
  7. Eklund, T. 1989. Organic acids and esters. In: Mechanisms of action of food preservation procedures (Ed. In G. W. Gould). Elsevier Applied Science: New York, NY, USA. pp. 161-200.
  8. Han, S., Kim, S. and Shin, H. 2005. UASB treatment of wastewater with VFA and alcohol generated during hydrogen fermentation of food waste. Process Biochemistry. 40:2897-2905. https://doi.org/10.1016/j.procbio.2005.01.005
  9. Hartemink, R, Domenech, V.R., and Rombouts, F.M. 1997. LAMVAB - A new selective medium for the isolation of lactobacilli from faeces. Journal of Microbiological Methods. 29:77-84. https://doi.org/10.1016/S0167-7012(97)00025-0
  10. Ki, K., Kim, H., Lee, H., Lee, W., Baek, K., Kim, S., Lim, K., Jeo, J. and Kim, Y. 2007. Effects of increasing moisture content with or without supplementing inoculant (Lactobacillus plantarum) in TMR on its feed value. Journal of The Korean Society of Grassland Science. 27:197-208. https://doi.org/10.5333/KGFS.2007.27.3.197
  11. Lee, K., Kim, K., Baek, Y., Ok, J., Seol, Y., Han, K., Park, K., Ryu, H., Lee, S. and Jeon, C. 2013. Effects of mustard seeds and powder on in vitro ruminal fermentation characteristics and methane production. Journal of Animal Science and Technology. 55:25-32. https://doi.org/10.5187/JAST.2013.55.1.25
  12. Lee, S., Shin, N., Jung, H., Moon, Y., Lee, S. and Lee, S. 2009. Effects of supplemental synbiotics composed of anaerobic bacteria, yeast and mold on the change of chemical composition and fermentation characteristics of total mixed ration for cattle. Journal of Life Sciences. 19:241-248.
  13. Mamuad, L.L., Kim, S.H., Choi, Y.J., Soriano, A.P., Cho, K.K., Lee, K., Bae, G.S. and Lee, S.S. 2017. Increased propionate concentration in Lactobacillus mucosae fermented wet brewers grains and during in vitro rumen fermentation. Journal of Applied Microbiology. 123:29-40. https://doi.org/10.1111/jam.13475
  14. Nsereko, V., Smiley, B., Rutherford, W., Spielbauer, A., Forrester, K., Hettinger, G., and Harman, B. 2008. Influence of inoculating forage with lactic acid bacterial strains that produce ferulate esterase on ensilage and ruminal degradation of fiber. Animal Feed Science and Technology. 145:122-135. https://doi.org/10.1016/j.anifeedsci.2007.06.039
  15. Nishino, N., Harada H. and Sakaguchi, E. 2003. Evaluation of fermentation and aerobic stability of wet brewers' grains ensiled alone or in combination with various feeds as a total mixed ration. Journal of the Science of Food and Agriculture. 83:557-563. https://doi.org/10.1002/jsfa.1395
  16. Saarisalo, E., Skytta, E., Haikara, A., Jalava, T. and Jaakkola, S. 2007. Screening and selection of lactic acid bacteria strains suitable for ensiling grass. Journal of Applied Microbiology. 102:327-336. https://doi.org/10.1111/j.1365-2672.2006.03103.x
  17. SAS (Statistical Analysis System) institute inc. 2004. Version 9.1. SAS institute inc. Cary, NC, USA.
  18. Shioya, S. 2008. Future prospects of TMR center based on self-supplying feed. Japanese Society of Grassland Science. 54:178-181.
  19. Soriano, A.P., Mamuad, L.L., Kim, S.H., Choi, Y.J., Jeong, C.D., Bae, G.S., Chang, M.B. and Lee, S.S. 2014. Effect of Lactobacillus mucosae on in vitro rumen fermentation characteristics of dried brewers' grain, methane production and bacterial diversity. Asian-Australasian Journal of Animal Sciences. 27:1562-1570. https://doi.org/10.5713/ajas.2014.14517
  20. Stiles, D.A., Bartley, E.E., Meyer, R.M.., Deyoe, C.W. and Pfost, H.B. 1970. Effect of an expansion-processed mixture of grain and urea on rumen metabolism in cattle and on urea toxicity. Journal of Dairy Science. 53:1436-1447. https://doi.org/10.3168/jds.S0022-0302(70)86412-8
  21. Tabaru, H., Kadota, E., Yamada, H., Sasaki, N. and Takeuchi, A. 1988. Determination of volatile fatty acids and lactic acid in bovine plasma and ruminal fluid by high performance liquid chromatography. Japanese Journal of Veterinary Research. 50:1124-1126.
  22. Voulgari, K., Hatzikamari, M., Delepoglou, A., Georgakopoulos, P., Litopoulou-Tzanetaki, E. and Tzanetakis, N. 2010. Antifungal activity of non-starter lactic acid bacteria isolates from dairy products. Food Control. 21:136-142. https://doi.org/10.1016/j.foodcont.2009.04.007
  23. Weinberg, Z.G. and Muck, R.E. 1996. New trends and opportunities in the development and use of inoculants for silage. FEMS Microbiology Reviews. 19:53-68. https://doi.org/10.1111/j.1574-6976.1996.tb00253.x
  24. Wilkinson, J.M., Bolsen, K.K. and Lin, C.J. 2003. History of silage, In: silage science and technology, Agron. Monogr. 42. ASA, CSSA, and SSSA, Madison, WI, USA. pp. 1-30.
  25. Woolford, M. 1984. The Antimicrobial spectra of organic compounds with respect to their potential as hay preservatives. Grass and Forage Science. 39:75-79. https://doi.org/10.1111/j.1365-2494.1984.tb01667.x
  26. Yang, J., Cao, Y., Cai, Y. and Terada, F. 2010. Natural populations of lactic acid bacteria isolated from vegetable residues and silage fermentation. Journal of Dairy Science. 93:3136-3145. https://doi.org/10.3168/jds.2009-2898
  27. Yuan, X., Guo, G., Wen, A., Desta, S., Wang, J., Wang, Y. and Shao, T. 2015. The effect of different additives on the fermentation quality, in vitro digestibility and aerobic stability of a total mixed ration silage. Animal Feed Science and Technology. 207:41-50. https://doi.org/10.1016/j.anifeedsci.2015.06.001