Czech J. Anim. Sci., 2012, 57(1):10-18 | DOI: 10.17221/5479-CJAS
Influence of different morphological parts of buckwheat (Fagopyrum esculentum) and its major secondary metabolite rutin on rumen fermentation in vitro
- ETH Zürich, Institute of Agricultural Sciences, Zurich, Switzerland
It was hypothesized that buckwheat, especially its flowers, influences foregut fermentation in ruminant animals because it is rich in phenolic compounds. The entire fresh aerial buckwheat herb, or its parts (leaves, stems, flowers and grain), were incubated for 24 h together with pure ryegrass (1:1, dry matter basis) in an in vitro ruminal fermentation system (Hohenheim Gas Test). Additionally ryegrass, supplemented with 0, 0.5, 5, or 50 mg rutin trihydrate/g dry matter, was incubated. Contents of extractable phenols (g/kg dry matter) were the highest in buckwheat flowers (88), followed by leaves (63), and the lowest in ryegrass (8). The levels of production of total gas and volatile fatty acids demonstrated that the nutritional value of buckwheat was slightly lower than that of ryegrass. Compared to ryegrass alone, ruminal transformation of dietary protein-N into ammonia was lower with 50 mg rutin, buckwheat flowers and buckwheat leaves. Thus, these treatments appeared to have partly protected dietary protein from ruminal degradation. Rutin, at the highest level, buckwheat flowers and the total aerial fraction of the buckwheat plant suppressed methane per unit of total gas by > 10%, either at elevated (rutin) or reduced total gas volume. This indicates that the ways of the influence on the ruminal fermentation pattern differed between pure rutin and buckwheat. In vivo studies have to confirm these potentially beneficial effects of buckwheat if used as forage for ruminants and clarify the role of further phenolic compounds present in buckwheat. Abbreviations: DM = dry matter, HGT = Hohenheim Gas Test, NDF = neutral detergent fibre, TEP = total extractable phenols, VFA = volatile fatty acids
Keywords: Fagopyrum esculentum; ruminant feed; rumen fermentation; methane; ammonia; plant secondary compounds
Published: January 31, 2012 Show citation
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References
- Amelchanka S.L., Kreuzer M., Leiber F. (2010): Utility of buckwheat (Fagopyrum esculentum Moench) as feed: Effects of forage and grain on in vitro ruminal fermentation and performance of dairy cows. Animal Feed Science and Technology, 155, 111-121.
Go to original source...
- AOAC (1997): Official Methods of Analysis. Association of Official Analytical Chemists, Arlington, USA.
- Azuma K., Nakayama M., Koshioka M., Ippoushi K., Yamaguchi Y., Kohata K., Yamauchi Y., Ito H., Higashio H. (1999): Phenolic antioxidants from the leaves of Corchorus olitorius L. Journal of Agricultural and Food Chemistry, 47, 3963-3966.
Go to original source...
Go to PubMed...
- Beauchemin K.A., Kreuzer M., O'Mara F., McAllister T.A. (2008): Nutritional management for enteric methane abatement: a review. Australian Journal of Experimental Agriculture, 48, 21-27.
Go to original source...
- Blanch M., Calsamiglia S., Devant M., Bach A. (2010): Effects of acarbose on ruminal fermentation, blood metabolites and microbial profile involved in ruminal acidosis in lactating cows fed a high-carbohydrate ration. Journal of Dairy Research, 77, 123-128.
Go to original source...
Go to PubMed...
- Broudiscou L.P., Papon Y., Broudiscou A.F. (2000): Effects of dry plant extracts on fermentation and methanogenesis in continuous culture of rumen microbes. Animal Feed Science and Technology, 87, 263-277.
Go to original source...
- Busquet M., Calsamiglia S., Ferret A., Kamel C. (2006): Plant extracts affect in vitro rumen microbial fermentation. Journal of Dairy Science, 89, 761-771.
Go to original source...
Go to PubMed...
- Cabiddu A., Salis L., Tweed J.K.S., Molle G., Decandia M., Lee M.R.F. (2010): The influence of plant polyphenols on lipolysis and biohydrogenation in dried forages at different phonological stages: in vitro study. Journal of the Science of Food and Agriculture, 90, 829-835.
Go to original source...
Go to PubMed...
- Carulla J.E., Kreuzer M., Machmüller A., Hess H.D. (2005): Supplementation of Acacia mearnsii tannins decreases methanogenesis and urinary nitrogen in forage-fed sheep. Australian Journal of Agricultural Research, 56, 961-970.
Go to original source...
- Cheng K.-J., Jones G.A., Simpson F.J., Bryant M.P. (1969): Isolation and identification of rumen bacteria capable of anaerobic rutin degradation. Canadian Journal of Microbiology, 15, 1365-1371.
Go to original source...
Go to PubMed...
- Cortés J.E., Moreno B., Pabón M.L., Avila P., Kreuzer M., Hess H. D., Carulla, J.E. (2009): Effects of purified condensed tannins extracted from Calliandra, Flemingia and Leucaena on ruminal and postruminal degradation of soybean meal as estimated in vitro. Animal Feed Science and Technology, 151, 194-204.
Go to original source...
- Eguchi K., Anase T., Osuga H. (2009): Development of a high-performance liquid chromatography method to determine the fagopyrin content of tartary buckwheat (Fagopyrum tartaricum Gaertn.) and common buckwheat (F. esculentum Moench). Plant Production Science, 12, 475-480.
Go to original source...
- Ehrlich G.G., Goerlitz D.F., Bourell J.H., Eisen G.V., Godsy E.M. (1981): Liquid chromatographic procedure for fermentation product analysis in the identification of anaerobic bacteria. Applied and Environmental Microbiology, 42, 878-886.
Go to original source...
Go to PubMed...
- Farrell D.J. (1978): A nutritional evaluation of buckwheat (Fagopyrum esculentum). Animal Feed Science and Technology, 3, 95-108.
Go to original source...
- Fraisse D., Carnat A., Viala D., Pradel P., Besle J.M., Coulon J.P., Felgines C., Lamaison J.L. (2007): Polyphenolic composition of a permanent pasture: Variations related to the period of harvesting. Journal of the Science of Food and Agriculture, 87, 2427-2435.
Go to original source...
- Garcia-Gonzalez R., Lopez S., Fernandez M., Bodas R., Gonzalez J.S. (2008): Screening the activity of plants and spices for decreasing ruminal methane production in vitro. Animal Feed Science and Technology, 147, 36-52.
Go to original source...
- Hinneburg I., Neubert R.H.H. (2005): Influence of extraction parameters on the phytochemical characteristics of extracts from buckwheat (Fagopyrum esculentum) herb. Journal of Agricultural and Food Chemistry, 53, 3-7.
Go to original source...
Go to PubMed...
- Hinneburg I., Kempe S., Rüttinger H.-H., Neubert, R.H.H. (2006): Antioxidant and photoprotective properties of an extract from buckwheat herb (Fagopyrum esculentum Moench). Pharmazie, 61, 237-240.
Go to PubMed...
- Jayanegara A., Wina E., Soliva C.R., Marquardt S., Kreuzer M., Leiber F. (2011): Dependence of forage quality and methanogenic potential of tropical plants on their phenolic fractions as determined by principal component analysis. Animal Feed Science and Technology, 163, 231-243.
Go to original source...
- Jouany J.P., Ushida K. (1999): The role of protozoa in feed digestion - Review. Asian-Australasian Journal of Animal Science, 12, 113-128.
Go to original source...
- Kälber T., Meier J.S., Kreuzer M., Leiber F. (2011): Flowering catch crops used as forage plants for dairy cows: Influence on fatty acids and tocopherols in milk. Journal of Dairy Science, 94, 1477-1489.
Go to original source...
Go to PubMed...
- Kälber T., Kreuzer M., Leiber, F. (2012): Silages containing buckwheat and chicory: quality, digestibility and nitrogen utilisation by lactating cows. Archives of Animal Nutrition, 66, 50-65.
Go to original source...
Go to PubMed...
- Kalinova J., Triska J., Vrchotova N. (2006): Distribution of vitamin E, squalene, epicatechin, and rutin in common buckwheat plants (Fagopyrum esculentum Moench). Journal of Agricultural and Food Chemistry, 54, 5330-5335.
Go to original source...
Go to PubMed...
- Leiber F., Messikommer R., Wenk C. (2009): Buckwheat: A feed for broiler chicken? Agrarforschung, 16, 448-453.
- Li S.Q., Zhang Q.H. (2001): Advances in the development of functional foods from buckwheat. Critical Reviews in Food Science and Nutrition, 41, 451-464.
Go to original source...
Go to PubMed...
- Li Y.Q., Zhou F.C., Gao F., Bian J.S., Shan F. (2009): Comparative evaluation of quercetin, isoquercetin and rutin as inhibitors of α-glucosidase. Journal of Agricultural and Food Chemistry, 57, 11463-11468.
Go to original source...
Go to PubMed...
- Lourenço M., Cardozo P.W., Calsamiglia S., Fievez V. (2008): Effects of saponins, quercetin, eugenol, and cinnamaldehyde on fatty acid biohydrogenation of forage polyunsaturated fatty acids in dual-flow continuous culture fermenters. Journal of Animal Science, 86, 3045-3053.
Go to original source...
Go to PubMed...
- Lowry J.B., McSweeney C.S., Palmer B. (1996): Changing perceptions of the effect of plant phenolics on nutrient supply in the ruminant. Australian Journal of Agricultural Research, 47, 829-842.
Go to original source...
- Menke K.H., Steingass H. (1988): Estimation of the energetic feed value obtained from chemical analysis and in vitro gas production using rumen fluid. Animal Research and Development, 28, 7-55.
- Patra A.K., Saxena J. (2010): A new perspective on the use of plant secondary metabolites to inhibit methanogenesis in the rumen. Phytochemistry, 71, 1198-1222.
Go to original source...
Go to PubMed...
- Pomeranz Y. (1983): Buckwheat: structure, composition, and utilization. Critical Reviews in Food Science and Nutrition, 19, 213-258.
Go to original source...
Go to PubMed...
- Soliva C.R., Hess H.D. (2007): Measuring methane emission of ruminants by in vitro and in vivo techniques. In: Makkar H.P. S., Vercoe P.E. (eds.): Measuring Methane Production from Ruminants. Springer, Dordrecht, the Netherlands, 15-31.
Go to original source...
- Soliva C.R., Zeleke A.B., Clément C., Hess H.D., Fievez V., Kreuzer M. (2008): In vitro screening of various tropical foliages, seeds, fruits and medicinal plants for low methane and high ammonia generating potentials in the rumen. Animal Feed Science and Technology, 147, 53-71.
Go to original source...
- Szumacher-Strabel M., Cie¶lak A. (2010): Potential of phytofactors to mitigate rumen ammonia and methane production. Journal of Animal and Feed Sciences, 19, 319-337.
Go to original source...
- Van Soest P.J. (1994): Nutritional ecology of the ruminant. 2nd ed. Cornell University Press, Ithaka, USA, 476 pp.
Go to original source...
- Van Soest P.J., Robertson J.B., Lewis B.A. (1991): Methods for dietary fiber, neutral detergent fiber, and nonstarch polysaccharides in relation to animal nutrition. Journal of Dairy Science, 74, 3583-3597.
Go to original source...
Go to PubMed...
- Wijngaard H.H., Arendt E.K. (2006): Buckwheat. Cereal Chemistry, 83, 391-401.
Go to original source...
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