Fermentability and Nutrient Digestibility of Ration Supplemented with Soybean Oil Calcium Soap and Cashew Fruit Flour
DOI:
https://doi.org/10.3923/pjn.2017.945.953Keywords:
Biohydrogenation, calcium soap, cashew fruit, polyunsaturated fatty acid, tanninAbstract
Objective: An in vitro study was conducted to evaluate the effect of soybean oil calcium soap (SOCS) and cashew fruit flour (CFF) supplementation on fermentability characteristics, microbial population and nutrient digestibility using rumen fluid of Bali cattle. Materials and Methods: The experiment was arranged in a complete randomized block design with 4 different ration treatments and 3 replicates. The ration treatments were R1: 40% native grass+60% concentrate, R2: 40% NG+60% C, containing 5% soybean oil and calcium soap, R3: 40% NG+60% concentration (C), containing 5% SOCS+10% CFF and R4: 40% NG+60% C, containing 5% SOCS+20% CFF. The measured variables were pH, NH3-N, total volatile fatty acids and total gas production (fermentability characteristics), total bacteria and protozoa (microbial populations), dry matter and organic matter digestibility. The data were analyzed using one-way analysis of variance and differences between treatments were examined using the Duncan’s multiple range test. Results: The results showed that the treatments significantly decreased (p<0.05) ammonia (NH3-N) concentration and total volatile fatty acids production. The different feed treatments did not have any significant effect on pH, total bacteria, protozoa population, dry matter and organic matter digestibility. Conclusion: Supplementation of 5% SOCS in R2 and 5% SOCS+10% CFF in R3 treatments has better NH3-N concentration, total VFA and total gas production compared to the other treatments.
References
Garcia, P.T. and J.J. Casal, 2013. Effect of Dietary Plant Lipids on Conjugated Linoleic Acid (CLA) Concentrations in Beef and Lamb Meats. In: Soybean-Bio-Active Compounds, El-Shemy, H.A. (Ed.). In Tech, USA., pp: 135-159.
Jokic, S., R. Sudar, S. Svilovic, S. Vidovic, M. Bilic, D. Velic and V. Jurkovic, 2013. Fatty acid composition of oil obtained from soybeans by extraction with supercritical carbon dioxide. Czech J. Food Sci., 31: 116-125.
Carriquiry, M., W.J. Weber, L.H. Baumgard and B.A. Crooker, 2008. In vitro biohydrogenation of four dietary fats. Anim. Feed Sci. Technol., 141: 339-355.
Manso, T., T. Castro, A.R. Mantecon and V. Jimeno, 2006. Effects of palm oil and calcium soaps of palm oil fatty acids in fattening diets on digestibility, performance and chemical body composition of lambs. Anim. Feed Sci. Technol., 127: 175-186.
Li, D., J.Q. Wang and D.P. Bu, 2012. Ruminal microbe of biohydrogenation of trans-vaccenic acid to stearic acid in vitro. BMC Res. Notes, Vol. 5.
Lanier, J.S. and B.A. Corl, 2015. Challenges in enriching milk fat with polyunsaturated fatty acids. J. Anim. Sci. Biotechnol., Vol. 6.
Maia, M.R.G., L.C. Chaudhary, C.S. Bestwick, A.J. Richardson and N. McKain et al., 2010. Toxicity of unsaturated fatty acids to the biohydrogenating ruminal bacterium, Butyrivibrio fibrisolvens. BMC Microbiol., Vol. 10.
Jenkins, T.C. and W.C. Bridges Jr., 2007. Protection of fatty acids against ruminal biohydrogenation in cattle. Eur. J. Lipid Sci. Technol., 109: 778-789.
Voigt, J., S. Kuhla, K. Gaafar, M. Derno and H. Hagemeister, 2006. Digestibility of rumen protected fat in cattle. Slovak J. Anim. Sci., 39: 16-19.
Lourenço, M., E. Ramos-Morales and R.J. Wallace, 2010. The role of microbes in rumen lipolysis and biohydrogenation and their manipulation. Animal, 4: 1008-1023.
Khiaosa-Ard, R., S.F. Bryner, M.R.L. Scheeder, H.R. Wettstein, F. Leiber, M. Kreuzer and C.R. Soliva, 2009. Evidence for the inhibition of the terminal step of ruminal α-linolenic acid biohydrogenation by condensed tannins. J. Dairy Sci., 92: 177-188.
Wina, E., D. Yulistiani, I.W.R. Susana and B. Tangendjaja, 2012. Improving microbial protein synthesis in the rumen of sheep fed fresh tofu waste by crude tannin extract of acacia mangium. Indones. J. Anim. Vet. Sci., 17: 207-214.
Jayanegara, A. and E. Palupi, 2010. Condensed tannin effects on nitrogen digestion in ruminants: A meta-analysis from in vitro and in vivo studies. J. Anim. Sci. Technol., 33: 176-181.
Emelike, N.J.T. and C.O. Ebere, 2016. Effect of treatments on the tannin content and quality assessment of cashew apple juice and the kernel. Eur. J. Food Sci. Technol., 4: 25-36.
Koten, B.B., 2010. Change of antinutritive value of chestnut fruit (Anacardium occidentale) silage in combination with various level of cassava meal addition and time of fermentation. Buletin Peternakan, 34: 82-85.
Adebowale, B.A., O. Olubamiwa and M.A.K. Ogunjobi, 2011. Substitution value of sundried cashew apple bagasse in the diets of Clarias gariepinus. Int. Res. J. Agric. Sci. Soil Sci., 1: 268-272.
Bain, A., D.A. Astuti, S. Suharti, C. Arman and K.G. Wiryawan, 2016. Performance, nutrient digestibility, and meat quality of Bali cattle fed a ration supplemented with soybean oil calcium soap and cashew fruit flour. Media Peternakan, 39: 180-188.
Gordon, A., M. Friedrich, V.M. da Matta, C.F.H. Moura and F. Marx, 2012. Changes in phenolic composition, ascorbic acid and antioxidant capacity in cashew apple (Anacardium occidentale L.) during ripening. Fruits, 67: 267-276.
Getachew, G., E.J. de Peters and P.H. Robinson, 2004. In vitro gas production provides effective method for assessing ruminant feeds. Calif. Agric., 58: 54-58.
Kumar, R., K. Sivaiah, Y.R. Reddy, B. Ekambram, T.J. Reddy and G.V.N. Reddy, 2006. Effect of supplementation of dietary protected lipids on intake and nutrient utilization in Deccani lambs. Trop. Anim. Health Prod., 38: 151-158.
Apriyantono, A., D. Fardiaz, N.L. Puspitasari, Sedarnawaty and S. Budiyanto, 1989. Analisis Pangan. IPB Press, Bogor, ID.
Kearl, L.C., 1982. Nutrient Requirements of Ruminants in Developing Countries. 1st Edn., International Feedstuffs Institute, Utah State University, Logan, Utah, USA., ISBN: 9780874211160, Pages: 381.
Tilley, J.M.A. and R.A. Terry, 1963. A two-stage technique for the in vitro digestion of forage crops. Grass Forage Sci., 18: 104-111.
Conway, E.J., 1962. Microdiffusion Analysis and Volumetric Error. 5th Edn., Crosby Lockwood, London.
Ogimoto, K. and S. Imai, 1981. Atlas of Rumen Microbiology. Japan Scientific Societies Press, Tokyo, ISBN: 9784762202643, Pages: 231.
Menke, K.H., L. Raab, A. Salewski, H. Steingass, D. Fritz and W. Schneider, 1979. The estimation of the digestibility and metabolizable energy content of ruminant feedingstuffs from the gas production when they are incubated with rumen liquor in vitro. J. Agric. Sci., 93: 217-222.
McDonald, P., R.A. Edwards, J.F.D. Greenhalgh, C.A. Morgan, L.A. Sinclair and R.G. Wilkinson, 2010. Animal Nutrition. 7th Edn., Pearson Education Ltd., England.
Franzolin, R. and B.A. Dehority, 2010. The role of pH on the survival of rumen protozoa in steers. Rev. Bras. Zootec., 39: 2262-2267.
Patra, A.K. and J. Saxena, 2011. Exploitation of dietary tannins to improve rumen metabolism and ruminant nutrition. J. Sci. Food Agric., 91: 24-37.
Haryanto, B., 2012. Review on ruminant nutrition research. Wartazoa, 22: 169-177.
Bunglavan, S.J. and N. Dutta, 2013. Use of tannins as organic protectants of proteins in digestion of ruminants. J. Livest. Sci., 4: 67-77.
Aguerre, M.J., M.C. Capozzolo, P. Lencioni, C. Cabral and M.A. Wattiaux, 2016. Effect of quebracho-chestnut tannin extracts at 2 dietary crude protein levels on performance, rumen fermentation and nitrogen partitioning in dairy cows. J. Dairy Sci., 99: 4476-4486.
Wallace, R.J., R. Onodera and M.A. Cotta, 1997. Metabolism of Nitrogen-Containing Compounds. In: The Rumen Microbial Ecosystem, Hobson, P.N. (Ed.). Academics and Professional, London, pp: 283-326.
Zhang, C.M., Y.Q. Guo, Z.P. Yuan, Y.M. Wu, J.K. Wang, J.X. Liu and W.Y. Zhu, 2008. Effect of octadeca carbon fatty acids on microbial fermentation, methanogenesis and microbial flora in vitro. Anim. Feed Sci. Technol., 146: 259-269.
Block, E., W. Chalupa, E. Evans, T. Jenkins, P. Moate, D. Palmquist and C. Sniffen, 2005. Calcium salts are highly digestible. Feedstuffs, 77: 20-25.
Filho, M.R.R. and B. Soto-Blanco, 2012. Poisoning by cashew apple (Anacardium occidentale L.) in cattle. Acta Sci. Vet., 40: 1-5.
Akinfemi, A., A.O. Adesanya and V.E. Aya, 2009. Use of an in vitro gas production technique to evaluate some Nigerian feedstuffs. Am.-Eurasian J. Sci. Res., 4: 240-245.
Kim, S.H., L.L. Mamuad, C.D. Jeong, Y.J. Choi, S.S. Lee, J.Y. Ko and S.S. Lee, 2013. In vitro evaluation of different feeds for their potential to generate methane and change methanogen diversity. Asian-Aust. J. Anim. Sci., 26: 1698-1707.
Sultana, H., T. Ishida, T. Shintaku, S. Kanda and H. Itabashi, 2008. Effect of feeding Ca-salts of fatty acids from soybean oil and linseed oil on C9,t11-CLA production in ruminal fluid and milk of Holstein dairy cows. Asian-Aust. J. Anim. Sci., 21: 1262-1270.
Meraj, M.M.R., M.A.S. Khan, T.A. Rakhi and N.R. Sarker, 2013. Effect of different levels of saturated solution of calcium chloride in the preparation of calcium salt of fatty acid and its effect on rumen protozoa, pH and ammonia nitrogen. Bangladesh J. Anim. Sci., 42: 109-113.
Hidayah, N., K.G. Wiryawan and S. Suharti, 2014. In vitro rumen fermentation of ration supplemented with protected vegetable oils. Media Peternakan, 37: 129-135.
Fiorentini, G., J.D. Messana, P.H.M. Dian, R.A. Reis, R.C. Canesin, A.V. Pires and T.T. Berchielli, 2013. Digestibility, fermentation and rumen microbiota of crossbred heifers fed diets with different soybean oil availabilities in the rumen. Anim. Feed Sci. Technol., 181: 26-34.
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