Fermentation Characteristics (In Vitro) of Palm Oil Trunk Waste as Feed for Lactating Dairy Cow

Kajian in vitro limbah batang kelapa sawit sebagai pakan ternak sapi perah

  • S M Shilvia Departemen Ilmu Nutrisi dan Teknologi Pakan, Fakultas Peternakan, IPB University
  • I G Permana
  • D Evvyernie Departemen Ilmu Nutrisi dan Teknologi Pakan, Fakultas Peternakan, IPB University
  • A Rosmalia Departemen Ilmu Nutrisi dan Teknologi Pakan, Fakultas Peternakan, IPB University
Keywords: digestibility, fermentation, in vitro, palm oil trunk, unconventional feed

Abstract

This study aimed to evaluate the applicability of palm oil trunk waste utilization as a feed source for lactating dairy cows using an in vitro approach. This study used a randomized complete block design with 4 treatments and 3 groups. Treatment consisted of P0 (control diet), P1 (control diet supplemented with 12.5% palm oil trunk), P2 (control diet supplemented with 25% palm oil trunk), P3 (control diet with commercial concentrate). The parameters observed were rumen pH, NH3 concentration, total VFA concentration, and in vitro dry matter and organic matter digestibility (IVDMD and IVOMD) coefficients. The findings of this study showed a significant 41.73% in NH3 concentration, 24.96% in total VFA concentration, 10.47% in IVDMD, and 10.91% in IVOMD, upon introducing 25% palm oil trunk waste into the ration (p<0.05), except for rumen pH.  It can be concluded that palm oil trunk waste can be used at a level of up to 25% in the diet of lactating dairy cows.

Keywords:         digestibility, fermentation, in vitro, palm oil trunk, unconventional feed

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References

AOAC. 2005. Official Methods of Analysis. Ed ke-18th. Horwitz W, Latime GW, editor. Maryland (USA): AOAC International.

Astuti T & Yelni G. 2015. Evaluasi kecernaan nutrien pelepah sawit yang difermentasi dengan berbagai sumber mikroorganisme sebagai bahan pakan ternak ruminansia. Jurnal Sain Peternakan Indonesia. 10(2): 101–106.

Conway EJ. 1957. Microdiffusion of Analysis of Association Official Analitycal Chemist. Goergia (US) : Georgia Press

[BPS] Badan Pusat Statistik. 2021. Statistik Kelapa Sawit Indonesia. Jakarta (ID): BPS.

[BPS] Badan Pusat Statistik. 2022. Statistik Perusahaan Peternakan Sapi Perah. Jakarta (ID): BPS.

Brooks MA, Harvey RM, Johnson NF & Kerley MS. 2012. Rumen degradable protein supply affects microbial efficiency in continuous culture and growth in steers. Journal of Animal Science. 90(13): 4985–4994.

Despal, Manik DTP, Evvyernie D & Zahera R. 2022. The accuracy of several in vitro methods in estimating in vivo digestibility of the tropical dairy ration. IOP Conference Series: Earth and Environmental Science. 951 012012.

Dewhurst RJ & Newbold JR. 2022. Effect of ammonia concentration on rumen microbial protein production in vitro. British Journal of Nutrition. 127(6): 847–849.

Ginting SP, Simanihuruk K, Tarigan A & Pond KR. 2018. Nutritional support for small ruminant development based on oil palm by-products. Wartazoa. 28(4): 189–198.

Harahap RP, Jayanegara A, Nahrowi & Fakhri S. 2021. Evaluation of oil palm fronds using fiber cracking technology combined with Indigofera sp. in ruminant ration by rusitec. AIP Conference Proceeding 17 Oktober 2018. (1): 050008.

Hartadi H, Reksohadiprojo S, Lebdosukojo S & Tillman AD. 1980. Tabel-Tabel Komposisi Bahan Makanan Ternak untuk Indonesia. Logan (USA): International Feedstuffs Institute Utah Agricultural Experiment Station, Utah State University.

Judd LM & Kohn RA. 2018 . Test of conditions that affect in vitro production of volatile fatty acids and gases. Journal of Animal Science. 96(2):694–704.

Kusniadi U & Juarini E. 2007. Optimalisasi pendapatan usaha pemeliharaan sapi perah dalam upaya peningkatan produksi susu nasional. Wartazoa. 17(1):21–28.

Lai LW & Idris A. 2013. Disruption of oil palm trunks and fronds by microwave-alkali pretreatment. BioResources. 8(2):2792–2804.

McDonald P, Edwards RA, Greenhalgh JFD, Morgan CA, Sinclair LA & Wilkinson RG. 2010. Animal Nutrition. Ed ke-7. London (UK): Pearson.

Muhdi, Risnasari I, Bayu ES, Hanafiah DS, Hutasoit A, Sitanggang GN & Silaban DS. 2015. Kuantifikasi biomassa perkebunan kelapa sawit di Langkat, Sumatera Utara. Jurnal Pertanian Tropik. 2(1):17–20.

[NRC] National Research Council. 2001. Nutrient Requirement of Dairy Cattle. Ed ke-7.Washington (US): National Academy Press.

Noersidiq A, Marlida Y, Zain M, Kasim A, Agustin F & Huda N. 2020. The effect of urea levels on in-vitro digestibility and rumen fermentation characteristic of ammoniated oil palm trunk. International Journal on Advanced Science, Engineering and Information Technology. 10(3):1258–1262.

Nuraina N, Hamidah AH, Despal & Taufik E. 2021. Supply chain performance and quality measurement of dairy cow concentrate in cooperative toward sustainable productivity: a case study. Buletin Peternakan. 45(1): 66–74.

Permana IG, Despal, Rosmalia A & Rahayu MD. 2022. Inclusion of different level leucaena in dairy ration to balance rumen degradable and undegradable protein ratio. IOP Conference Series: Earth and Environmental Science. 1020 012013.

Prabowo A & Susanti AE. 2016. Penggunaan pakan lengkap fermentasi untuk meningkatkan efisiensi usaha tani ternak sapi potong. Jurnal Trition. 7(1):97–106.

Rebelo LR, Luna IC, Messana JD, Araujo RC, Simioni TA, Granja-Salcedo YT, Vito ES, Lee C, Teixeira IAMA, Rooke JA & et al. 2019. Effect of replacing soybean meal with urea or encapsulated nitrate with or without elemental sulfur on nitrogen digestion and methane emissions in feedlot cattle. Animal Feed Science and Technology. 257(6):114293.

Rosmalia A, Astriani, Sahroni WP, Permana IG & Despal. 2022a. Effect of rumen degradable protein and sulfur supplementation on in vitro digestibility and ruminal fermentation. IOP Conference Series: Earth and Environmental Science. 951 012013.

Rosmalia A, Dewi NA, Permana IG & Despal. 2022b. Reformulation of dairy cattle concentrate based on rumen degradable protein to undegradable protein ratio at different energy levels : in vitro study. IOP Conference Series: Earth and Environmental Science. 1020 012008.

Rosmalia A, Permana IG & Despal D. 2022c. Synchronization of rumen degradable protein with non-fiber carbohydrate on microbial protein synthesis and dairy ration digestibility. Veterinary World. 15(2):252–261.

Rosmalia A, Permana IG, Despal D, T T, Pambudi FR & Arif SIZ. 2023. Effect of dietary non‐fiber carbohydrate sources and sulfur supplementation on in vitro ruminal fermentation and digestibility of the dairy ration. Iranian Journal of Applied Animal Science. 13(2):231–240.

Steel RGD & Torrie JH. 1993. Prinsip dan Prosedur Statistika (Pendekatan Biometrik). Sumantri B, penerjemah. Jakarta (ID): Gramedia Pustaka Utama.

Stein HH, Casas GA, Abelilla JJ, Liu Y & Sulabo RC. 2015. Nutritional value of high fiber co-products from the copra, palm kernel, and rice industries in diets fed to pigs. Journal of Animal Science and Biotechnology. 6(1): 1–9.

Tafsin M, Khairani Y, Hanafi ND & Yunilas. 2018. In vitro digestibility of oil palm frond treated by local microorganism (MOL). IOP Conference Series: Earth and Environmental Science. 122 012134.

Tilley JMA & Terry RA. 1963. A two‐stage technique for the in vitro digestion of forage crops. Grass and Forage Science. 18(2): 104–111.

Yusra S, Pranoto Y, Anwar C & Hidayat C. 2020. Physical and chemical characteristic of stem starch and sheath flour from oil palm tree (Elaeis guinensis). Biodiversitas. 21(3): 896–902.

Published
2023-12-26
How to Cite
ShilviaS., PermanaI. G., EvvyernieD., & RA. (2023). Fermentation Characteristics (In Vitro) of Palm Oil Trunk Waste as Feed for Lactating Dairy Cow: Kajian in vitro limbah batang kelapa sawit sebagai pakan ternak sapi perah. Jurnal Ilmu Nutrisi Dan Teknologi Pakan, 21(3), 150-155. https://doi.org/10.29244/jintp.21.3.150-155