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Food, fibre and pharmaceuticals from animals
RESEARCH ARTICLE

Oil palm meal and urea pellet can partially replace soybean meal in the rations of lactating dairy cows

Ratchataporn Lunsin https://orcid.org/0000-0002-7800-7005 A C , Suntriporn Duanyai A and Ruangyote Pilajun B
+ Author Affiliations
- Author Affiliations

A Program in Animal Science, Faculty of Agriculture, Ubon Ratchathani Rajabhat University, Ubon Ratchathani 34000, Thailand.

B Department of Animal Science, Faculty of Agriculture, Ubon Ratchathani University, Ubon Ratchathani 34190, Thailand.

C Corresponding author. Email: ratchataporn.l@ubru.ac.th

Animal Production Science 61(1) 38-46 https://doi.org/10.1071/AN17567
Submitted: 16 August 2017  Accepted: 25 June 2020   Published: 23 July 2020

Abstract

Context: Several agro-industrial by-products such as oil palm meal could be useful as animal feeds in support of low cost of feed for livestock production.

Aims: This study investigated the effects of oil palm meal and urea pellet (PMUP) as a protein replacement for soybean meal (SBM) on feed intake, nutrient digestibility, rumen fluid characteristics, milk yield and milk composition in lactating dairy cows.

Methods: Five multiparous, early to mid-lactation, Holstein-Friesian crossbred dairy cows (75% Holstein-Friesian × 25% Thai Native Bos indicus) were randomly allocated in a 5 × 5 Latin square design to receive PMUP replacement for SBM at 0, 25, 50, 75 and 100% in concentrate.

Key results: The results show that roughage, total dry matter (DM), organic matter (OM) and acid detergent fibre (ADF) intakes in the cows fed with 25–75% PMUP were significantly higher than in the cows fed 100% PMUP (P < 0.05), whereas the ether extract (EE) intake of the cows receiving the PMUP was higher than that of the control (P < 0.05). Accordingly, the apparent digestibility, ruminal ammonia nitrogen (NH3-N) and total volatile fatty acid (VFA) of cows fed with PMUP replacement of SBM at 25–75% was higher than that in cows fed with 100% PMUP. In addition, milk yield and milk composition were not significantly different among treatments, whereas feed costs per kg milk yield was lowest in cow fed with 100% PMUP (P < 0.05).

Conclusions: Replacing SBM with PMUP up to 50–100% in concentrate could reduce costs of feed per kg milk yield, but lower feed intake, nutrient utilisation and rumen fermentation were observed in cow fed with 100% PMUP. The use of PMUP from 25–75% replacement of SBM had no significant effects on the feed intake, nutrient utilisation, rumen fermentation and milk production. Therefore, the level of PMUP replacement of SBM in concentrate for lactating dairy cow should not exceed 75%.

Implications: PMUP could be used as a protein replacement for SBM in concentrate for lactating dairy cows. These findings should be applied further in practical farm condition in order to increase livestock production efficiency.

Additional keywords: agro-industrial by-products, protein replacement, ruminant feed, ruminant production.


References

AOAC (1997) ‘Official method of analysis,’ 16th edn. (Association of Official Analytical Chemists: Gaithersburg, MA, USA)

Bateman HG (2005) Response to increased rumen undegradable protein intake by lactating dairy cows The Professional Animal Scientist 21, 263–271.
Response to increased rumen undegradable protein intake by lactating dairy cowsCrossref | GoogleScholarGoogle Scholar |

Bertipaglia LMA, Fondevila M, van Laar H, Castrillo C (2010) Effect of pelleting and pellet size of a concentrate for intensively reared beef cattle on in vitro fermentation by two different approaches Animal Feed Science and Technology 159, 88–95.
Effect of pelleting and pellet size of a concentrate for intensively reared beef cattle on in vitro fermentation by two different approachesCrossref | GoogleScholarGoogle Scholar |

Chanjula P, Siriwathananukul Y, Lawpetchara A (2011) Effect of feeding rubber seed kernel and palm kernel cake in combination on nutrient utilization, rumen fermentation characteristics, and microbial populations in goats fed on Briachiaria humidicola hay-based diets. Asian-Australalasian. Journal of Animal Science 24, 73–81.
Effect of feeding rubber seed kernel and palm kernel cake in combination on nutrient utilization, rumen fermentation characteristics, and microbial populations in goats fed on Briachiaria humidicola hay-based diets.Crossref | GoogleScholarGoogle Scholar |

Cherdthong A, Wanapat M (2010) Development of urea products as rumen slow-release feed for ruminant production: a review Australian Journal of Basic and Applied Sciences 4, 2232–2241.

Chumpawadee S, Sommart K, Vongpralub T, Pattarajinda V (2006) Effects of synchronizing the rate of dietary energy and nitrogen release on ruminal fermentation, microbial protein synthesis, blood urea nitrogen and nutrient digestibility in beef cattle. Asian-Australalasian Journal of Animal Science 19, 181–188.

Doreau M, Chilliard Y (1997) Digestion and metabolism of dietary fat in farm animals. British Journal of Nutrition 78, S15–S35.
Digestion and metabolism of dietary fat in farm animals.Crossref | GoogleScholarGoogle Scholar | 9292772PubMed |

Fahey GC, Berger LL (1988) Carbohydrate nutrition of ruminants. In ‘The ruminant animal: digestive physiology and nutrition’. (Ed. DC Church) pp. 269–297. (Prentice Hall: Englewood Cliffs, NJ, USA)

Fereira AC, Ronald LO, Adriana RB, Gleidson GPC, Raimundo NVS, Paulo AO (2012) Intake, digestibility and intake behaviour in cattle fed different levels of palm kernel cake. Revista Brasileira de Zootecnia 17, 3105–3112.

Fetuga BL, Babatunde GM, Oyenuga VA (1977) The value of palm kernel meal in finishing diets for pigs: 1. The effect of varying palm kernel meal on performance and carcass quality of finishing pigs. Journal of Agricultural Science 88, 655–661.
The value of palm kernel meal in finishing diets for pigs: 1. The effect of varying palm kernel meal on performance and carcass quality of finishing pigs.Crossref | GoogleScholarGoogle Scholar |

Hart FJ, Wanapat M (1992) Physiology of digestion of urea-treated rice straw in swamp buffalo. Asian-Australalasian Journal of Animal Science 5, 617–622.
Physiology of digestion of urea-treated rice straw in swamp buffalo.Crossref | GoogleScholarGoogle Scholar |

Hassim HA, Lourenço MRA, Goel G, Vlaeminck B, Goh YM, Fievez V (2010) Effect of different inclusion levels of oil palm fronds on in vitro rumen fermentation pattern, fatty acid metabolism and apparent biohydrogenation of linoleic and linolenic acid. Animal Feed Science and Technology 162, 155–158.
Effect of different inclusion levels of oil palm fronds on in vitro rumen fermentation pattern, fatty acid metabolism and apparent biohydrogenation of linoleic and linolenic acid.Crossref | GoogleScholarGoogle Scholar |

Hwang SY, Lee M, Chiou JPW (2000) Monitoring nutritional status of dairy cows in Taiwan using milk protein and milk urea nitrogen. Asian-Australalasian Journal of Animal Science 13, 1667–1673.
Monitoring nutritional status of dairy cows in Taiwan using milk protein and milk urea nitrogen.Crossref | GoogleScholarGoogle Scholar |

Jenkins TC (1993) Lipid metabolism in the rumen. Journal of Dairy Science 76, 3851–3863.
Lipid metabolism in the rumen.Crossref | GoogleScholarGoogle Scholar | 8132891PubMed |

Kaneko JJ (1980) Appendixes VI. In ‘Clinical biochemistry of domestic animals,’ 3rd edn. (Ed. JJ Kaneko) pp. 45–80. (Academic Press: New York, NY, USA)

Karimizadeh E, Chaji M, Mohammadabadi T (2017) Effects of physical form of diet on nutrient digestibility, rumen fermentation, rumination, growth performance and protozoa population of finishing lambs. Animal Nutrition 3, 139–144.
Effects of physical form of diet on nutrient digestibility, rumen fermentation, rumination, growth performance and protozoa population of finishing lambs.Crossref | GoogleScholarGoogle Scholar | 29767114PubMed |

Lunsin R (2018) Effect of oil palm meal on nutrient utilization and milk production in lactating dairy cows fed with urea-treated rice straw. Agriculture and Natural Resources 52, 285–289.
Effect of oil palm meal on nutrient utilization and milk production in lactating dairy cows fed with urea-treated rice straw.Crossref | GoogleScholarGoogle Scholar |

Lunsin R, Wanapat M, Wachirapakorn C, Navanukraw C (2010) Effects of pelleted cassava chip and raw banana (Cass-Bann) on rumen fermentation and utilization in lactating dairy cows. Journal of Animal and Veterinary Advances 9, 2239–2245.
Effects of pelleted cassava chip and raw banana (Cass-Bann) on rumen fermentation and utilization in lactating dairy cows.Crossref | GoogleScholarGoogle Scholar |

Lunsin R, Wanapat M, Rowlinson P (2012) Effect of cassava hay and rice bran oil supplementation on rumen fermentation, milk yield and milk composition in lactating dairy cows. Asian-Australalasian Journal of Animal Science 25, 1364–1373.

Maciel RP, Neiva JNM, Araujo VL, Cunha OFR, Paiva J, Restle J, Lôbo RNB (2012) Intake, nutrient digestibility and performance of dairy heifers fed diets containing palm kernel cake. Revista Brasileira de Zootecnia 41, 698–706.
Intake, nutrient digestibility and performance of dairy heifers fed diets containing palm kernel cake.Crossref | GoogleScholarGoogle Scholar |

Makkar HPS (2003) Effects and fate of tannins in ruminant animals, adaptation to tannins, and strategies to overcome detrimental effects of feeding tannin-rich feeds. Small Ruminant Research 49, 241–256.
Effects and fate of tannins in ruminant animals, adaptation to tannins, and strategies to overcome detrimental effects of feeding tannin-rich feeds.Crossref | GoogleScholarGoogle Scholar |

Moss AR, Jouany JP, Newbold J (2000) Methane production by ruminants: its contribution to global warming Annales De Zootechnie 49, 231–253.
Methane production by ruminants: its contribution to global warmingCrossref | GoogleScholarGoogle Scholar |

Nozad S, Ramin AG, Moghadam G, Asri-Rezaei S, Babapour A, Ramin S (2012) Relationship between blood urea, protein, creatinine, triglycerides and macro-mineral concentrations with the quality and quantity of milk in dairy Holstein cows. Veterinary Research Forum: An International Quarterly Journal 3, 55–59.

NRC (National Research Council) (2001) ‘Nutrient requirements of dairy cattle,’ 7th rev. edn. (National Academies Press: Washington, DC, USA)

Petchseechoung W (2017) Oil palm industry. Thailand industry outlook 2017–2019. (Krungsri Research: Bangkok, Thailand). pp. 1–8. Available at https://www.krungsri.com/bank/getmedia/ac87c171-db74-442b-ae29-5b69572896ca/IO_Oil_Palm_2017_EN.aspx [Verified 25 June 2019]

Prasertsan S, Prasertsan P (1996) Biomass residues from palm oil mills in Thailand: an overview on quantity and potential usage. Biomass and Bioenergy 11, 387–395.
Biomass residues from palm oil mills in Thailand: an overview on quantity and potential usage.Crossref | GoogleScholarGoogle Scholar |

Preston TR, Leng RA (1987) ‘Matching ruminant production systems with available resources in the tropics and subtropics.’ (Penambul Books: Armidale, NSW, Australia)

Roseler DK, Ferguson JD, Sniffen CJ, Herrema J (1993) Dietary protein degradability effects on plasma and milk urea nitrogen and milk non-protein in Holstein cow Journal of Dairy Science 76, 525–534.
Dietary protein degradability effects on plasma and milk urea nitrogen and milk non-protein in Holstein cowCrossref | GoogleScholarGoogle Scholar |

Samuel M, Sagatheman S, Thomas J, Mathen G (1997) An HPLC method for estimation of volatile fatty acids of ruminal fluid. The Indian Journal of Animal Sciences 67, 805–807.

SAS (Statistical Analysis System) (1998) ‘User’s guide, ver. 6,’ 12th edn. (SAS Institute Inc.: Cary, NC, USA)

Singh RP, Ibrahim MH, Esa N, Illiyana MS (2010) Composting of waste from palm oil mill: a sustainable waste management practice. Reviews in Environmental Science and Biotechnology 9, 331–344.
Composting of waste from palm oil mill: a sustainable waste management practice.Crossref | GoogleScholarGoogle Scholar |

Steel RGD, Torrie JH (1980) ‘Principles and procedures of statistics: a biometrical approach,’ 2nd edn. (McGraw-Hill Book Company: New York, NY, USA)

Tyrrell HF, Reid JT (1965) Prediction of the energy value of cow’s milk. Journal of Dairy Science 48, 1215–1223.
Prediction of the energy value of cow’s milk.Crossref | GoogleScholarGoogle Scholar | 5843077PubMed |

Umunna NN, Magaji IY, Adu IF, Njoku PC, Balogun TF, Alawa JP, Iji PA (1994) Utilization of palm kernel meal by sheep. Journal of Applied Animal Research 5, 1–11.
Utilization of palm kernel meal by sheep.Crossref | GoogleScholarGoogle Scholar |

United State Department of Agriculture (2019) Thailand oilseeds and products annual 2019. (USDA Foreign Agricultural Service, Office of Agricultural Affairs: Bangkok, Thailand). Available at https://www.fas.usda.gov/data/thailand-oilseeds-and-products-annual-3 [Verified 10 July 2020]

Valadares RFD, Broderick GA, Valadares Filho SC, Clayton MK (1999) Effect of replacing alfalfa silage with high moisture corn on ruminal protein synthesis estimated from excretion of total purine derivatives. Journal of Dairy Science 82, 2686–2696.
Effect of replacing alfalfa silage with high moisture corn on ruminal protein synthesis estimated from excretion of total purine derivatives.Crossref | GoogleScholarGoogle Scholar |

Van Keulen J, Young BA (1977) Evaluation of acid insoluble ash as a neutral marker in ruminant digestibility studies. Journal of Animal Science 44, 282–287.
Evaluation of acid insoluble ash as a neutral marker in ruminant digestibility studies.Crossref | GoogleScholarGoogle Scholar |

Van Soest PJ, Robertson JB, Lewis BA (1991) Methods for dietary fiber neutral detergent fiber and non-starch polysaccharides in relation to animal nutrition. Journal of Dairy Science 74, 3583–3597.
Methods for dietary fiber neutral detergent fiber and non-starch polysaccharides in relation to animal nutrition.Crossref | GoogleScholarGoogle Scholar | 1660498PubMed |

Van Soest PJ (1994) ‘Nutritional ecology of the ruminant,’ 2nd edn. (Cornell University Press: Ithaca, NY, USA)

Van Wyngaard JDV, Meeske R (2017) Palm kernel expeller increases milk fat content when fed to grazing dairy cows South African Journal of Animal Science 47, 219–230.
Palm kernel expeller increases milk fat content when fed to grazing dairy cowsCrossref | GoogleScholarGoogle Scholar |

Wanapat M, Pimpa O (1999) Effect of ruminal NH3-N levels on ruminal fermentation, purine derivatives, digestibility and rice straw intake in swamp buffaloes. Asian-Australalasian Journal of Animal Science 12, 904–907.
Effect of ruminal NH3-N levels on ruminal fermentation, purine derivatives, digestibility and rice straw intake in swamp buffaloes.Crossref | GoogleScholarGoogle Scholar |

Wanapat M (1999) ‘Feeding of ruminants in the tropics based on local feed resources.’ (Khon Kaen Publishing Co. Ltd.: Khon Kaen, Thailand)

Ye JA, Wang C, Wang HF, Liu HY, Wang YM, Chen B, Liu JX (2010) Effects of pelletizing and supplementary methionine, lysine, and choline on the performance of periparturient dairy cows Acta Agriculture Scandinavica Section A – Animal Science 60, 230–238.

Zafar S (2018) Bioenergy developments in Malaysia. Available at https://www.bioenergyconsult.com/author/salman/ [Verified 2 July 2020]