DOI QR코드

DOI QR Code

Effects of Branched-chain Amino Acids on In vitro Ruminal Fermentation of Wheat Straw

  • Zhang, Hui Ling (The Xinjiang Key Laboratory of Meat and Milk-Production Herbivore Nutrition, Xinjiang Agricultural University) ;
  • Chen, Yong (The Xinjiang Key Laboratory of Meat and Milk-Production Herbivore Nutrition, Xinjiang Agricultural University) ;
  • Xu, Xiao Li (The Xinjiang Key Laboratory of Meat and Milk-Production Herbivore Nutrition, Xinjiang Agricultural University) ;
  • Yang, Yu Xia (The Xinjiang Key Laboratory of Meat and Milk-Production Herbivore Nutrition, Xinjiang Agricultural University)
  • 투고 : 2012.10.01
  • 심사 : 2012.11.18
  • 발행 : 2013.04.01

초록

This study investigates the effects of three branched-chain amino acids (BCAA; valine, leucine, and isoleucine) on the in vitro ruminal fermentation of wheat straw using batch cultures of mixed ruminal microorganisms. BCAA were added to the buffered ruminal fluid at a concentration of 0, 2, 4, 7, or 10 mmol/L. After 72 h of anaerobic incubation, pH, volatile fatty acids (VFA), and ammonia nitrogen ($NH_3$-N) in the ruminal fluid were determined. Dry matter (DM) and neutral detergent fiber (NDF) degradability were calculated after determining the DM and NDF in the original material and in the residue after incubation. The addition of valine, leucine, or isoleucine increased the total VFA yields ($p{\leq}0.001$). However, the total VFA yields did not increase with the increase of BCAA supplement level. Total branched-chain VFA yields linearly increased as the supplemental amount of BCAA increased (p<0.001). The molar proportions of acetate and propionate decreased, whereas that of butyrate increased with the addition of valine and isoleucine (p<0.05). Moreover, the proportions of propionate and butyrate decreased (p<0.01) with the addition of leucine. Meanwhile, the molar proportions of isobutyrate were increased and linearly decreased (p<0.001) by valine and leucine, respectively. The addition of leucine or isoleucine resulted in a linear (p<0.001) increase in the molar proportions of isovalerate. The degradability of NDF achieved the maximum when valine or isoleucine was added at 2 mmol/L. The results suggest that low concentrations of BCAA (2 mmol/L) allow more efficient regulation of ruminal fermentation in vitro, as indicated by higher VFA yield and NDF degradability. Therefore, the optimum initial dose of BCAA for in vitro ruminal fermentation is 2 mmol/L.

키워드

참고문헌

  1. Allison, M. J., M. P. Bryant and R. N. Doestch. 1962. Studies on the metabolic function of branched-chain volatile fatty acids, growth factors for ruminococci. I. Incorporation of isovalerate into leucine. J. Bacteriol. 83:523-532.
  2. Andries, J. I., B. G. Cottyn, S. De Keersmaecker and F. X. Buysse. 1990. Effects of the addition of iso-acids to feed on ruminal fermentation, in sacco degradation of dry matter and the concentration of several blood parameters in cows. Reprod. Nutr. Dev. (Suppl 2):181s-182s.
  3. Argyle, J. L. and R. L. Baldwin. 1989. Effects of amino acids and peptides on rumen microbial growth yields. J. Dairy Sci. 72:2017-2027. https://doi.org/10.3168/jds.S0022-0302(89)79325-5
  4. Atasoglu, C., C. J. Newbold and R. J. Wallace. 2001. Incorporation of [$^{15}N$] ammonia by the cellulolytic ruminal bacteria Fibrobacter succinogenes BL2, Ruminococcus albus SY3, and Ruminococcus flavefaciens 17. Appl. Environ. Microbiol. 67:2819-2822. https://doi.org/10.1128/AEM.67.6.2819-2822.2001
  5. Atasoglu, C., A. Y. Guliye and R. J. Wallace. 2004. Use of stable isotopes to measure de novo synthesis and turnover of amino acid-C and -N in mixed microorganisms from the sheep rumen in vitro. Br. J. Nutr. 91:235-261. https://doi.org/10.1079/BJN20031033
  6. Busquet, M., S. Calsamiglia, A. Ferret and C. Kamel. 2006. Plant extracts affect in vitro rumen microbial fermentation. J. Dairy Sci. 89:761-771. https://doi.org/10.3168/jds.S0022-0302(06)72137-3
  7. Carro, M. D. and E. L. Miller. 1999. Effect of supplementing a fibre basal diet with different nitrogen forms on ruminal fermentation and microbial growth in an in vitro semi-continuous culture system (RUSITEC). Br. J. Nutr. 82:149-157. https://doi.org/10.1017/S0007114599001300
  8. Chikunya, S., C. J. Newbold, L. Rode, X. B. Chen and R. J. Wallace. 1996. Influence of dietary rumen-degradable protein on bacterial growth in the rumen of sheep receiving different energy sources. Anim. Feed Sci. Technol. 63:333-340. https://doi.org/10.1016/S0377-8401(96)00999-6
  9. Cotta, M. A. and J. B. Russell. 1982. Effect of peptides and amino acids on efficiency of rumen bacterial protein synthesis in continuous culture. J. Dairy Sci. 65:226-234. https://doi.org/10.3168/jds.S0022-0302(82)82181-4
  10. Dehority, B. A. 1963. Isolation and characterization of several cellulolytic bacteria from in vitro rumen fermentations. J. Dairy Sci. 43:217-222.
  11. Feng, Y. L. 2004. Ruminant Animal Nutrition. Beijing: Science press.
  12. Ferreira, G. and D. R. Mertens. 2007. Measuring detergent fibre and insoluble protein in corn silage using crucibles or filter bags. Anim. Feed Sci. Technol. 133:335-340. https://doi.org/10.1016/j.anifeedsci.2006.04.010
  13. Filipek, J. and R. Dvorak. 2009. Determination of the volatile fatty acid content in the rumen liquid: comparison of gas chromatography and capillary isotachophoresis. Acta Vet. Brno. 78:627-633. https://doi.org/10.2754/avb200978040627
  14. Juarez Lagunes, F. I., D. G. Fox, R. W. Blake and A. N. Pell. 1999. Evaluation of tropical grasses for milk production by dual-purpose cows in tropical Mexico. J. Dairy Sci. 82:2136-2145. https://doi.org/10.3168/jds.S0022-0302(99)75457-3
  15. Liu, Q., C. Wang, Y. X. Huang, K. H. Dong, W. Z. Yang and H. Wang. 2008. Effects of isobutyrate on rumen fermentation, urinary excretion of purine derivatives and digestibility in steers. Arch. Anim. Nutr. 62:377-388. https://doi.org/10.1080/17450390802327761
  16. Liu, Q., C. Wang, Y. X. Huang, K. H. Dong, W. Z. Yang, S. L. Zhang and H. Wang. 2009. Effects of isovalerate on ruminal fermentation, urinary excretion of purine derivatives and digestibility in steers. J. Anim. Physiol. Anim. Nutr (Berl). 93:716-725. https://doi.org/10.1111/j.1439-0396.2008.00861.x
  17. Longland, A. C., M. K. Theodorou, R. Sanderson, S. J. Lister, C. J. Powell and P. Morris. 1995. Non-starch polysaccharide composition and in vitro fermentability of tropical forage legumes varying in phenolic content. Anim. Feed Sci. Technol. 55:161-177. https://doi.org/10.1016/0377-8401(95)00808-Z
  18. Lopez, S., C. Valdes, C. J. Newbold and R. J. Wallace. 1999. Influence of sodium fumarate addition on rumen fermentation in vitro. Br. J. Nutr. 81:59-64.
  19. Maitisaiyidi, T., A. Yibureyimu, Ayishayila and K. Yang. 2012. Determination of ammonia-nitrogen in ruminal fluid treated with methanol by alkaline hypochlorite-phenol spectrophotometry. Xinjiang Agric. Sci. 49:565-570.
  20. Moharrery, A. 2004. Effect of isoacids on some rumen enzymes. J. Anim. Feed Sci. 13(Suppl.1):159-162.
  21. Mir, P. S., Z. Mir and J. A. Robertson. 1986. Effect of branched-chain amino acids or fatty acid supplementation on in vitro digestibility of barley straw or alfalfa hay. Can. J. Anim. Sci. 66:151-156. https://doi.org/10.4141/cjas86-016
  22. Mir, P. S., Z. Mir and B. M. Pink. 1991. In vitro digestibility of forages supplemented with cellulose (filter paper) and branched-chain fatty acids or amino acids. Can. J. Anim. Sci. 71:1149-1158. https://doi.org/10.4141/cjas91-136
  23. Tedeschi, L. O., D. G. Fox and J. B. Russell. 2000. Accounting for ruminal deficiencies of nitrogen and branched-chain amino acids in the structure of the Cornell net carbohydrate and protein system. In: Proceedings of Cornell Nutrition Conference for Feed Manufacturers. New York: Cornell University.
  24. Tylutki, T. P. and D. G. Fox. 1997. Application of the Cornell nutrient management planning system: optimizing herd nutrition. In: Proceedings of Cornell Nutrition Conference for Feed Manufacturers. New York: Cornell University.
  25. Wang, M., H. Wang, H. Cao, G. Li and J. Zhang. 2008. Effects of limiting amino acids on rumen fermentation and microbial community in vitro. Agric. Sci. China. 7:1524-1531. https://doi.org/10.1016/S1671-2927(08)60412-5
  26. Wilson, D. B. 2008. Three microbial strategies for plant cell wall degradation. Ann. N. Y. Acad. Sci. 1125:289-297. https://doi.org/10.1196/annals.1419.026
  27. Yang, C. M. 2002. Response of forage fiber degradation by ruminal microorganisms to branched-chain volatile fatty acids, amino acids, and dipeptides. J. Dairy Sci. 85:1183-1190. https://doi.org/10.3168/jds.S0022-0302(02)74181-7
  28. Zain, M., T. Sutardi, Suryahadi and N. Ramli. 2008. Effect of defaunation and supplementation methionine hydroxy analogue and branched chain amino acid in growing sheep diet based on palm press fiber ammoniated. Pak. J. Nutr. 7:813-816. https://doi.org/10.3923/pjn.2008.813.816

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