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Articles

Effects of dietary cellulase and xylanase addition on digestion, rumen fermentation and methane emission in growing goats

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Pages 251-266 | Received 11 Feb 2015, Accepted 25 Mar 2015, Published online: 12 May 2015

References

  • [AOAC] Association of Official Analytical Chemists. 2002. Official methods of analysis. 16th ed. Washington (DC): AOAC.
  • Arriola KG, Kim SC, Staples CR, Adesogan AT. 2011. Effect of fibrolytic enzyme application to low- and high-concentrate diets on the performance of lactating dairy cattle. J Dairy Sci. 94:832–841.
  • Beauchemin KA, Colombatto D, Morgavi DP. 2004. A rationale for the development of feed enzyme products for ruminants. Can J Anim Sci. 84:23–36.
  • Beauchemin KA, Colombatto D, Morgavi DP, Yang WZ, Rode LM. 2004. Mode of action of exogenous cell wall degrading enzymes for ruminants. Can J Anim Sci. 84:13–22.
  • Beauchemin KA, Yang WZ, Rode LM. 2001. Effects of barley grain processing on the site and extent of digestion of beef feedlot finishing diets. J Anim Sci. 79:1925–1936.
  • Bhasker TV, Nagalakshmi D, Rao DS. 2013. Development of appropriate fibrolytic enzyme combination for maize stover and its effect on rumen fermentation in sheep. Asian-Aust J Anim Sci. 26:945–951.
  • Bhasker TV, Nagalakshmi D, Srinivasa D, Raghunandhan T. 2013. Effect of supplementing exogenous fibrolytic enzyme cocktail on nutrient utilization in sheep fed on maize stover based total mixed ration. Indian J Anim Nutr. 30:47–51.
  • Boadi D, Benchaar C, Chiquette J, Massé D. 2004. Mitigation strategies to reduce enteric methane emissions from dairy cows: update review. Can J Anim Sci. 84:319–335.
  • Chen YH, Penner GB, Li MJ, Oba M, Guan LL. 2011. Changes in bacterial diversity associated with epithelial tissue in the beef cow rumen during the transition to a high-grain diet. Appl Environ Microbiol. 77:5770–5781.
  • Chung Y-H, Zhou M, Holtshausen L, Alexander TW, McAllister TA, Guan LL, Oba M, Beauchemin KA. 2012. A fibrolytic enzyme additive for lactating Holstein cow diets: ruminal fermentation, rumen microbial populations, and enteric methane emissions. J Dairy Sci. 95:1419–1427.
  • Colombatto D, Beauchemin KA. 2003. A proposed methodology to standardize the determination of enzymic activities present in enzyme additives used in ruminant diets. Can J Anim Sci. 83:559–568.
  • Gaafar HMA, Abdel-Raouf EM, EL-Reidy KFA. 2010. Effect of fibrolytic enzyme supplementation and fiber content of total mixed ration on productive performance of lactating buffaloes. J Anim Sci. 43:147–153. Slovak.
  • Giraldo LA, Tejido M, Ranilla MJ, Ramos S, Carro MD. 2008. Influence of direct-fed fibrolytic enzymes on diet digestibility and ruminal activity in sheep fed a grass hay-based diet. J Anim Sci. 86:1617–1623.
  • He ZX, Yang LY, Yang WZ, Beauchemin KA, Tang SX, Huang JY, Zhou CS, Han XF, Wang M, Kang JH, et al. 2015. Efficacy of exogenous xylanases for improving in vitro fermentation of forages. J Agric Sci. 153:538–553.
  • Hernández PA, Mendozaa GD, Bárcenab JR, Plataa FX, Martíneza JA, Leeb HA. 2011. Effect of exogenous fibrolytic enzyme and slow release urea in finishing rations for lambs. J Appl Anim Res. 39:104–107.
  • Hook SE, Northwood KS, Wright A-DG, McBride BW. 2009. Long-term monensin supplementation does not significantly affect the quantity or diversity of methanogens in the rumen of the lactating dairy cow. Appl Environ Microbiol. 75:374–380.
  • Islam M, Abe H, Terada F, Iwasaki K, Tano R. 2000. Effects of levels of feed intake and inclusion of corn on rumen environment, nutrient digestibility, methane emission and energy and protein utilization by goats fed alfalfa pellets. Asian-Aust J Anim Sci. 13:948–956.
  • Jiao JZ, Wang PP, He ZX, Tang SX, Zhou CS, Han XF, Wang M, Wu DQ, Kang JH, Tan ZL. 2014. In vitro evaluation on neutral detergent fiber and cellulose digestion by post-ruminal microorganisms in goats. J Sci Food Agric. 94:1745–1752.
  • Kumar S, Dagar SS, Puniya AK. 2012. Isolation and characterization of methanogens from rumen of Murrah buffalo. Ann Microbiol. 62:345–350.
  • Lewis GE, Sanchez WK, Hunt CW, Guy MA, Pritchard GT, Swanson BI, Treacher RJ. 1999. Effect of direct-fed fibrolytic enzymes on the lactational performance of dairy cows. J Dairy Sci. 82:611–617.
  • Lu DX, Zhang PY. 1996. Scientific technology of feeding goat. Beijing, China: China Agriculture Press; p. 71–126. Chinese.
  • Mao HL, Wu CH, Wang JK, Liu JX. 2013. Synergistic effect of cellulase and xylanase on in vitro rumen fermentation and microbial population with rice straw as substrate. Anim Nutr Feed Technol. 13:477–487.
  • Morgavi DP, Beauchemin KA, Nsereko VL, Rode LM, Iwaasa AD, Yang WZ, McAllister TA, Wang Y. 2000. Synergy between ruminal fibrolytic enzymes and enzymes from Trichoderma longibrachiatum. J Dairy Sci. 83:1310–1321.
  • Peters A, Lebzien P, Meyer U, Borchert U, Bulang M, Flachowsky G. 2010. Effect of exogenous fibrolytic enzymes on ruminal fermentation and nutrient digestion in dairy cows. Arch Anim Nutr. 64:221–237.
  • Russi JP, Wallace RJ, Newbold CJ. 2002. Influence of the pattern of peptide supply on microbial activity in the rumen simulating fermenter (RUSITEC). Br J Nutr. 88:73–80.
  • Shekhar C, Thakur SS, Shelke SK. 2010. Effect of exogenous fibrolytic enzymes supplementation on milk production and nutrient utilization in Murrah buffaloes. Trop Anim Health Prod. 42:1465–1470.
  • Sirohi SK, Pandey N, Singh B, Puniya AK. 2010. Rumen methanogens: a review. Indian J Microbiol. 50:253–262.
  • Sun ZH, Tan ZL, Liu SM, Tayo GO, Lin B, Teng B, Tang SX, Wang WJ, Liao YP, Pan YF, et al. 2007. Effects of dietary methionine and lysine sources on nutrient digestion, nitrogen utilization, and duodenal amino acid flow in growing goats. J Anim Sci. 85:3340–3347.
  • Tang SX, Zou Y, Wang M, Salem AZM, Odongo NE, Zhou CS, Han XF, Tan ZL, Zhang M, Fu YF, et al. 2013. Effects of exogenous cellulase source on in vitro fermentation characteristics and methane production of crop straws and grasses. Anim Nutr Feed Technol. 13:489–505.
  • Tirado-Estrada G, Mendoza-Martínez GD, Pinos-Rodríguez JM, Quezada-Tristán T, Guevara-Lara F. 2011. Effects of two fibrolytic enzyme mixtures on growth performance, digestion and ruminal fermentation in lambs fed corn stover based diets. J Appl Anim Res. 39:158–160.
  • Van Nevel CJ, Demeyer DI. 1996. Control of rumen methanogenesis. Environ Monit Assess. 42:73–97.
  • Van Soest PJ, Robertson JB, Lewis BA. 1991. Methods for dietary fiber, neutral detergent fiber and nonstarch polysaccharides in relation to animal nutrition. J Dairy Sci. 74:3583–3597.
  • Verstegen MWA, Van der Hel W, Brandsma HA, Henken AM, Bransen AM. 1987. The Wageningen respiration unit for animal production research: a description of the equipment and its possibilities. Energy metabolism in farm animals: effects of housing, stress and disease. Dordrecht: Martinus Nijhoff Publishers; p. 21–48.
  • Yang WZ, Beauchemin KA, Rode LM. 2000. A comparison of methods of adding fibrolytic enzymes to lactating cow diets. J Dairy Sci. 83:2512–2520.
  • Zhou M, Chung Y-H, Beauchemin KA, Holtshausen L, Oba M, McAllister TA, Guan LL. 2011. Relationship between rumen methanogens and methane production in dairy cows fed diets supplemented with a feed enzyme additive. J Appl Microbiol. 111:1148–1158.

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