Methionine Hydroxy Analog Supplementation to Increase Feed Utilization for Indigenous Sheep

https://doi.org/10.22146/jsv.55678

Bambang Waluyo Hadi Eko Prasetiyono(1*), Mulyono Mulyono(2), Widiyanto Widiyanto(3)

(1) Faculty of Animal and Agricultural Sciences Diponegoro University Semarang
(2) Faculty of Animal and Agricultural Sciences Diponegoro University Semarang
(3) Faculty of Animal and Agricultural Sciences Diponegoro University Semarang
(*) Corresponding Author

Abstract


In the tropical area, productivity of ruminant has not optimized caused by the low quality of nutrition that leads to low-efficiency metabolism at the level of ruminal fermentation, post rumen digestibility, and intermediary metabolism. The study aimed to analyze effect of methionine hydroxy analog (MHA) on ruminal fermentation profiles of indigenous sheep specifically in the increase of ruminant productivity. In vitro utility test was conducted using rumen fluid of the indigenous sheep and sample of rational ration having a proportion of grass and concentrate 30%:70%, dry matter basis. The treatments implemented were three levels of MHA supplementation; T0: 0 g/day, T1: 3 g/day, and T2: 6 g/day. Variables measured were dry matter digestibility (DMD), organic matter digestibility (OMD), production of VFA, NH3, as well as total protein, and molar proportion of partial VFA of rumen fluid. Data were analyzed using analysis of variance (ANOVA) in a completely randomized design (CRD). The 0.2% MHA supplementation increased OMD with the highest production of total protein was from 28.57 mg/g (T0) to 40.49 mg/g (T2) (P<0.05). Meanwhile, the lowest ratio of acetate : propionate was from 2.74 (T0) to 2.33 (T2) (P<0.05). Supplementation of MHA up to 6 g/day concentrate increased the performance of fermentation and/or feed utility.

 


Keywords


methionine hydroxy analog, indigenous sheep, ruminal fermentation, in vitro

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References

Agle, M., Hristov, S., Zaman, A.N., Shcneider, C. (2010). Effect of dietary concentrate on rumen fermentation, digestibility, and nitrogen losses in dairy cows. Journal of Dairy Science. 93(9): 4211-4222. DOI: 10.3168/jds.2009-2977 Artegoitia,V.M., Foote, A.P., Lewis, R.M., Freetly, H.C. (2017). Rumen Fluid metabolomics analysis associated with feed efficiency, on crossbred steers. Scientific Reports. 7(2864): 1-14. DOI:10.1038/s41598-017-02856-0 Aschenbach, J.R., Kristensen, N.B., Donkin, S.S., Hammon, H. (2010). Gluconeogenesis in dairy cows: The secret of making sweet milk from sour dough. International Union of Biochemistry and Molecular Biology Life 62(12):869-77. DOI: 10.1002/iub.400 Chen,J. , Harstad, O.M., McAllister, T., Dörsch, P., Holo, H. (2020). Propionic acid bacteria enhance ruminal feed degradation and reduce methane production in vitro. Acta Agriculturae Scandinavica. Section A – Animal Science: 1-7 https://doi.org/10.1080/09064702.2020.1737215 Chishti GA, Salfer IJ, Mena FXS, Harvatine KJ, Henrichs AJ. (2020). Relationships between physical form of oats in starter, rumen pH, and volatile fatty acids on hepatic expression of genes involved in metabolism and inflammation in dairy calves. Journal of Dairy Science. 103(1): 439-446. DOI: https://doi.org/10.3168/jds.2019-16296 Clements, A.R. F. A. Ireland, T. Freitas, H. Tucker, and D. W. Shike. (2017). Effects of supplementing methionine hydroxy analog on beef cow performance, milk production, reproduction, and preweaning calf performance Journal of Animal Science,.95(12): 5597–5605, https://doi.org/10.2527/jas2017.1828 CoHort. (2019). Costat Statistics Shoftware. Brindleyplace, Brimingham. Doto SP, and Liu JX. (2011). Effect of direct-fed microbial and their combinations with yeast culture on in vitro rumen fermentation characteristics. J. Anim Feed Sci. 20(2):259-271. DOI: https://doi.org/10.22358/jafs/66183/2011. El-Tahawy, A. S., A. Ismaeil, and H.A. Ahmed. (2015). Effects of Dietary Methionine-Supplementation on the General Performance and Economic Value of Rahmani Lambs. J. Anim. Sci. Adv. 5(10): 1457-1466 Galyean ML. (1980). Laboratory Procedures in Animal Nutrition Research. Department of Animal and Food Sciences, Texas Tech University, Lubbock. Gonzales ARC, Barraza MB, Viveros JD, Martinez AC. (2013). Rumen microorganisms and rumen fermentation. Archivos de Medicina MartoinezVeterinaria. 46(3):349-361 · DOI: 10.4067/S0301-732X2014000300003 Greening C, Geier R, Wang C, Woods LC. (2019). Diverse hydrogen production and consumption pathways influence methane production in ruminants. ISME Journal. 13(6): 1-13. DOI: 10.1038/s41396-019-0464-2 Guerrero VR, Lizarazo ACP, Mendoza GD. (2018). Effect of herbal choline and rumen-protected methionine on lamb performance and blood metabolites. South African Journal of Animal Science. 48(3): 427-434. DOI:10.4314/sajas.v48i3.3 Harris LE. (1970). Nutrition Research Technique for Domestic and Wild Animals. Vol 1. Anim. Sci. Dept. Utah State Univ. Logan. Utah. Hill J, Mcsweeney CS, Wright ADG, Hurley GJB. (2015). Measuring methane production from ruminants. Trend s in Biotechnology. 34(1): DOI: 10.1016/j.tibtech.2015.10.004 Latham CM, Wagner AL, Urschel KL. (2019). Effects of dietary amino acid supplementation on measures of whole‐body and muscle protein metabolism in aged horses. J. Anim. Physiol. Anim. Nutr. 103: 283–294. DOI: 10.1111/jpn.12992 Lee JKW, Nio AOX, Fun DCY, Teo YS, Chia EV, Lim L. (2012). Effects of heat acclimatization on work tolerance and thermoregulation in trained tropical natives. Journal of Thermal Biology. 37 (5): 366-373. doi:10.1016/j.jtherbio.2012.01.008 Lee M. (2018). Changes in the ruminal fermentation and bacterial community. AJAS. 32(1): 92-102.DOI: https://doi.org/10.5713/ajas.19.0323 Liu H, Xu T, Xu S, Ma L, Han X, Wang X, Zhang X, Hu L, Zhao N, Chen Y, Pi L, Zhao X. (2019). Effect of dietary concentrate to forage ratio on growth performance, rumen fermentation and bacterial diversity of Tibetan sheep under barn feeding on the Qinghai-Tibetan plateau. Peer J.7:e7462; 1-22. DOI 10.7717/peerj.7462 Mamuad LL, Lee SS, Lee SS. (2019). Recent insight and future techniques to enhance rumen fermentation in dairy goats. (AJAS) 2019; 32(8): 1321-1330. Special Issue. 32(8): 1321-1330.DOI: https://doi.org/10.5713/ajas.19.0323 Matthews C, Crispie F, Lewis E, Reid M, O’Toole PW, Cotter PD. (2019). The rumen microbiome: a crucial consideration when optimizing milk and meat production and nitrogen utilization efficiency. Gut Microbes. 10(2): 115-132. doi: 10.1080/19490976.2018.1505176 Morgavi DP, Forano E, Martin C, Newbold CJ. (2010). Microbial ecosystem and methanogenesis in ruminants. Animal. 4(7): 1024-1036. DOI: 10.1017/S1751731110000546 Noftsger S, St-Pierre NR, Sylvester JT. (2005). Determination of rumen degradability and ruminal effects of three sources of methionine in lactating cows. J. Dairy Sci. 88:223-237. Prasetiyono, B.W.H.E, Subrata, A., Widiyanto, W. (2020) Effect of KOROPASS, an extruded jack bean (Canavalia ensiformis)-derived supplement, on productivity and economic performance of beef cattle, Veterinary World, 13(3): 593-596. Ranjahn, S.K. (1980). Animal Nutrition and Feeding Practice in India. 2nd. Ed. Vikas Publishing House PVT LTD. New Delhi. P. 350. Steel R.G.D., Torrie, J.H., Dickey, D.A. (1996). Principles and Procedures of Statistic: A Biometrical Approach. McGraw-Hill College. Tilley, J.M.A. and R.A. Terry. (2006). A Two-Stage Technique for the in vitro Digestion of Forage Crops. Grass and Forrage Science. 18(2): 104-111. DOI: 10.1111/j.1365-2494.1963.tb00335.x Ungerfeld EM. (2015). Shifts in metabolic hydrogen sinks in the methanogenesis-inhibited ruminal fermentation: a meta-analysis. Frontiers in Microbiology. 6(37): 1-17. https://doi.org/10.3389/fmicb.2015.00037 White D, Peters MS, Home PY. (2013). Global impacts from improved tropical forages: A meta-analysis revealing overlooked benefits and cost, evolving values and new priorities. Biology. 1: 12-24. DOI:10.17138/tgft Widiyanto, M. Soejono, Z. Bachruddin, H. Hartadi dan Surahmanto. (2009). Suplementasi minyak biji kapok terproteksi untuk meningkatkan produktivitas domba lokal Jawaekor kurus. Prosiding Seminar Nasional Pengembangan Ternak Potomng untuk Mewujudkan Program Kecukupan Swasembada Daging. 138-157., 7 November 2009, UGM, Yogyakarta.



DOI: https://doi.org/10.22146/jsv.55678

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