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Paper

The Effect of Starch, Inulin, and Degradable Protein on Ruminal Fermentation and Microbial Growth in Rumen Simulation Technique

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Article: 3121 | Received 24 Sep 2013, Accepted 17 Jan 2014, Published online: 18 Feb 2016

References

  • AkalinA. GönçS. AkbaY., 2002. Variation in organic acids content during ripening of pickled white cheese. J. Dairy Sci. 85:1670-1676.
  • AOAC, 1990. Official methods of analysis. 15th ed., Association of Official Analytical Chemists, Washington, DC, USA.
  • BiggsD.R. HancockK.R., 1998. In vitro digestion of bacterial and plant fructans and effects on ammonia accumulation in cow and sheep rumen fluids. J. Gen. Appl. Microbiol. 44:167-171.
  • BonaiA. MaertensL. FébelH. KametlerL. TornyosG. HornP. KovacsF. KovacsM., 2008. Effect of inulin supplementation on caecal microflora and fermentation in rabbits. pp 555-559 in Proc. 9th World Rabbit Congr., Verona, Italy.
  • Brun-BellutJ. BlanchartG. VignonB., 1990. Effects of rumen-degradable protein concentration in diets on digestion, nitrogen utilization and milk yield by dairy goats. Small Ruminant Res. 3:575-581.
  • ChamberlainD.G. RobertsonS. ChoungJ.J., 1993. Sugars versus starch as supplements to grass silage: effects on ruminal fermentation and the supply of microbial protein to the small intestine, estimated from the urinary excretion of purine derivatives, in sheep. J. Sci. Food Agr. 63:189-194.
  • ColemanG.S., 1985. The cellulase content of 15 species of entodiniomorphid protozoa, mixed bacteria and plant debris isolated from the ovine rumen. J. Agr. Sci. 104:349-360.
  • CzerkawskiJ. BreckenridgeG., 1969. Fermentation of various soluble carbohydrates by rumen micro-organisms with particular reference to methane production. Brit. J. Nutr. 23:925-937.
  • DewhurstR.J. DaviesD.R. MerryR.J., 2000. Microbial protein supply from the rumen. Anim. Feed Sci. Tech. 85:1-21.
  • FlickingerE.A. LooJ.V. FaheyG.C., 2003. Nutritional responses to the presence of inulin and oligofructose in the diets of domesticated animals: a review. Crit. Rev. Food Sci. 43:19-60.
  • GokarnR. EitemanM. MartinS. ErikssonK.E., 1997. Production of succinate from glucose, cellobiose, and various cellulosic materials by the ruminai anaerobic bacteria Fibrobacter succinogenes and Ruminococcus flavefaciens. Appl. Biochem. Biotech. 68:69-80.
  • GolderH. CeliP. RabieeA. HeuerC. BramleyE. MillerD. KingR. LeanI., 2012. Effects of grain, fructose, and histidine on ruminal pH and fermentation products during an induced subacute acidosis protocol. J. Dairy Sci. 95:1971-1982.
  • GressleyT. ArmentanoL., 2007. Effects of low rumen-degradable protein or abomasal fructan infusion on diet digestibility and urinary nitrogen excretion in lactating dairy cows. J. Dairy Sci. 90:1340-1353.
  • GriswoldK. ApgarG. BoutonJ. FirkinsJ., 2003. Effects of urea infusion and ruminal degradable protein concentration on microbial growth, digestibility, and fermentation in continuous culture. J. Anim. Sci. 81:329-336.
  • HallM., 2003. Challenges with nonfiber carbohydrate methods. J. Anim. Sci. 81:3226-3232.
  • HallM. HerejkC., 2001. Differences in yields of microbial crude protein from in vitro fermentation of carbohydrates. J. Dairy Sci. 84:2486-2493.
  • HallM. LarsonC. WilcoxC., 2010. Carbohydrate source and protein degradability alter lactation, ruminal, and blood measures. J. Dairy Sci. 93:311-322.
  • HeldtJ. CochranR. StokkaG. FarmerC. MathisC. TitgemeyerE. NagarajaT., 1999. Effects of different supplemental sugars and starch fed in combination with degradable intake protein on low-quality forage use by beef steers. J. Anim. Sci. 77:2793-2802.
  • HiltnerP. DehorityB., 1983. Effect of soluble carbohydrates on digestion of cellulose by pure cultures of rumen bacteria. Appl. Environ. Microb. 46:642-648.
  • HindrichsenI. KreuzerM., 2009. High methanogenic potential of sucrose compared with starch at high ruminal pH. J. Anim. Physiol. An. N. 93:61-65.
  • HindrichsenI. WettsteinH.R. MachmüllerA. SolivaC. Bach KnudsenK.E. MadsenJ. KreuzerM., 2004. Effects of feed carbohydrates with contrasting properties on rumen fermentation and methane release in vitro. Can. J. Anim. Sci. 84:265-276.
  • HuhtanenP., 1988. The effects of barley, unmolassed sugar-beet pulp and molasses supplements on organic matter, nitrogen and fibre digestion in the rumen of cattle given a silage diet. Anim. Feed Sci. Tech. 20:259-278.
  • JouanyJ. SenaudJ., 1982. Effect of rumen ciliates on the digestion of different carbohydrates in sheep. I. Utilization of cell wall carbohydrates (cellulose and hemicelluloses) and of starch. Reprod. Nutr. Dev. 22:735-752.
  • JouanyJ. SenaudJ., 1983. Effect of rumen ciliates on the digestive utilization of various carbohydrate-rich diets and on the end-products formed in the rumen. II. Utilization of inulin, saccharose and lactose. Reprod. Nutr. Dev. 23:607-623.
  • KajikawaH. JinH. TeradaF. SugaT., 2003. Operation and characteristics of newly improved and marketable artificial rumen (Rusitec). Mem. Nat. Inst. Livest. Grassl. Sci. 2:1-30.
  • KasperowiczA. MichalowskiT., 2002. Assessment of the fructanolytic activities in the rumen bacterium Treponema saccharophilum strain S. J. Appl. Microbiol. 92:140-146.
  • MaertensL. AertsJ. De BoeverJ., 2004. Degradation of dietary oligofructose and inulin in the gastro-intestinal tract of the rabbit and the effects on caecal pH and volatile fatty acids. World Rabbit Sci. 12:235-246.
  • MathisC. CochranR. HeldtJ. WoodsB. AbdelgadirI. OlsonK. TitgemeyerE. VanzantE., 2000. Effects of supplemental degradable intake protein on utilization of medium-to low-quality forages. J. Anim. Sci. 78:224-232.
  • McCormickM. RedfearnD. WardJ. BlouinD., 2001. Effect of protein source and soluble carbohydrate addition on rumen fermentation and lactation performance of Holstein cows. J. Dairy Sci. 84:1686-1697.
  • McDougallE., 1948. Studies on ruminant saliva. I. The composition and output of sheep’s saliva. Biochem. J. 43:99-109.
  • NelsonC. SpollenW., 1987. Fructans. Physiol. Plantarum 71:512-516.
  • NocekJ. RussellJ., 1988. Protein and energy as an integrated system. Relationship of ruminal protein and carbohydrate availability to microbial synthesis and milk production. J. Dairy Sci. 71:2070-2107.
  • ÖztürkH., 2008. Effects of inulin on rumen metabolism in vitro. Ankara Üniv. Vet. Fak. 55:79-82.
  • ÖztürkH., 2009. Effects of chicory inulin on ruminal fermentation in vitro. Ankara Üniv. Vet. Fak. 56:171-175.
  • PanJ. SuzukiT. KoikeS. UedaK. KobayashiY. TanakaK. OkuboM., 2003. Effects of urea infused into the rumen on liquid-and particle-associated fibrolytic enzyme activities in steers fed low quality grass hay. Anim. Feed Sci. Tech. 104:13-27.
  • PoulsenM. JensenB.B. EngbergR.M., 2012. The effect of pectin, corn and wheat starch, inulin and pH on in vitro production of methane, short chain fatty acids and on the microbial community composition in rumen fluid. Anaerobe 18:83-90.
  • PunjM. KocharA. BhatiaI., 1970. Degradation and metabolism of inulin by rumen micro-organisms. Indian J. Nutr. Diet. 7:247-251.
  • RanillaM. CarroM., 2003. Diet and procedures used to detach particle-associated microbes from ruminal digesta influence chemical composition of microbes and estimation of microbial growth in Rusitec fermenters. J. Anim. Sci. 81:537-544.
  • ReynalS. BroderickG., 2009. Technical note: a new high-performance liquid chromatography purine assay for quantifying microbial flow. J. Dairy Sci. 92:1177-1181.
  • RosendoO. HallM. StaplesC. BatesD., 2003. The effect of different neutral detergent soluble polysaccharides in digestive cynetics in vitro of neutral detergent forrage fiber and the synthesis of microbial protein. Available from: http://revistas.luz.edu.ve/index.php/rc/article/viewFile/4560/4428
  • SannesR. MessmanM. VagnoniD., 2002. Form of rumen-degradable carbohydrate and nitrogen on microbial protein synthesis and protein efficiency of dairy cows. J. Dairy Sci. 85:900-908.
  • SijpesteijnA.K., 1951. On Ruminococcus flavefaciens, a cellulose-decomposing: bacterium from the rumen of sheep and cattle. J. Gen. Microbiol. 5:869-879.
  • SolivaC. HessH., 2007. Measuring methane emission of ruminants by in vitro and in vivo techniques. In: MakkarH.P.S. VercoeP.E. ( eds.) Measuring methane production from ruminants. Springer, Dordrecht, The Netherlands, pp 15-31.
  • Van SoestP.V. RobertsonJ. LewisB., 1991. Methods for dietary fiber, neutral detergent fiber, and nonstarch polysaccharides in relation to animal nutrition. J. Dairy Sci. 74:3583-3597.
  • WeatherburnM., 1967. Phenol-hypochlorite reaction for determination of ammonia. Anal. Chem. 39:971-974.
  • WeimerP.J., 1996. Why don’t ruminal bacteria digest cellulose faster? J. Dairy Sci. 79: 1496-1502.
  • WeisbjergM.R. HvelplundT. BibbyB.M., 1998. Hydrolysis and fermentation rate of glucose, sucrose and lactose in the rumen. Acta Agr. Scand. A-An. 48:12-18.
  • ZhaoX. LiuC. LiuY. LiC. YaoJ., 2013. Effects of replacing dietary starch with neutral detergent-soluble fibre on ruminal fermentation, microbial synthesis and populations of ruminal cellulolytic bacteria using the rumen simulation technique (RUSITEC). J. Anim. Physiol. An. N. 97: 1161-1169.
  • ZioleckiA. GuczynskaW. WojciechowiczM., 1992. Some rumen bacteria degrading fructan. Lett. Appl. Microbiol. 15:244-247.