Effects of modest early creep feeding on growth, carcass traits, and muscle composition in pasture-raised Wuranke lambs

Early creep feeding in Wuranke lambs

Authors

  • Narigeqi Narigeqi Department of Animal Husbandry, Mongolian University of Life Sciences, Ulaanbaatar, Mongolia https://orcid.org/0009-0002-8171-8315
  • Bakyei Agipar Research Center for Agricultural Economics and Development, Mongolian University of Life Sciences, Ulaanbaatar, Mongolia; Mongolian Academy of Agricultural Sciences, Ulaanbaatar, Mongolia https://orcid.org/0000-0003-2734-9774
  • Bat-Erdene Amarbat Department of Animal Husbandry, Mongolian University of Life Sciences, Ulaanbaatar, Mongolia https://orcid.org/0009-0002-1225-5310

DOI:

https://doi.org/10.62310/liab.v6i2.355

Keywords:

Creep feeding, Sheep, Growth performance, Carcass traits, Longissimus dorsi, Native pasture

Abstract

Early nutritional supplementation may enhance lamb growth in extensive grassland systems, although its effects on carcass traits and muscle composition under low-input pastoral conditions remain unclear. This study examined the effects of modest early creep feeding on growth performance, carcass traits, and Longissimus dorsi composition in pasture-raised Wuranke lambs. Forty healthy, uncastrated male singleton lambs were assigned to either a control group (CG; pasture only) or an experimental group (EG; pasture plus creep feed) and monitored from birth until approximately 160 days of age. Creep feed was provided for 50 days, with a low average intake of 52.9 g/lamb/day. Growth traits were measured in all lambs (n = 20 per group), whereas carcass evaluation and muscle composition analyses were performed in a subset of eight lambs per group. EG lambs were heavier at the end of supplementation and before slaughter than CG lambs. In the carcass subsample, EG lambs also had greater slaughter weight, hot carcass weight, edible meat weight, and edible meat percentage, whereas the dressing percentage did not differ significantly between groups. The composition of Longissimus dorsi muscle was generally similar between groups. After FDR correction, no significant differences in proximate composition, mineral content, fatty acid profile, or amino acid profile were observed. These findings suggest that modest early creep feeding can improve growth and carcass output in this flock of pasture-raised Wuranke lambs, while no major detectable changes in the measured muscle composition occurred. However, because carcass and muscle composition analyses were based on a small subsample, subtle effects cannot be ruled out. Further multi-flock and multi-season studies incorporating direct measurements and economic evaluation are needed before broader practical recommendations can be made.

Metrics

Metrics Loading ...

References

Alvarez-Rodriguez J, Sanz A, Delfa R, Revilla R, Joy M. (2007). Performance and grazing behaviour of Churra Tensina sheep stocked under different management systems during lactation on Spanish mountain pastures. Livestock Science 107(2): 152–161. https://doi.org/10.1016/j.livsci.2006.09.011

Benson ME (1995). Creep feeding lambs. Michigan State University Extension, East Lansing, MI, USA. https://www.canr.msu.edu/uploads/resources/pdfs/Creep_Feeding_Lambs_(E2125).pdf

Chai J, Diao Q, Zhao J, Wang H, Deng K, Qi M, Nie M, Zhang N. (2018). Effects of rearing system on meat quality, fatty acid and amino acid profiles of Hu lambs. Animal Science Journal 89(8): 1178–1186. https://doi.org/10.1111/asj.13013

de Melo GKA, Ítavo CCBF, Monteiro KLS, da Silva JA, da Silva PCG, Ítavo LCV, Borges DGL, Borges FA. (2017). Effect of creep-fed supplement on the susceptibility of pasture-grazed suckling lambs to gastrointestinal helminths. Veterinary Parasitology 239: 26–30. https://doi.org/10.1016/j.vetpar.2017.04.017

Dhehibi B, Nejatian A, Hilali MED, Niane AA. (2020). Economic Assessment of Agricultural Technologies in Development Programs. Beirut, Lebanon: International Center for Agricultural Research in the Dry Areas (ICARDA) (https://mel.cgiar.org/reporting/download/hash/a353d600cfa00f57babe9f4d2c4495ce, accessed 18 May 2026).

Ehui SK, Rey B. (1992). Partial budget analysis for on-station and on-farm small ruminant production systems research: Method and data requirements. In: Rey B, Lebbie SHB, Reynolds L, editors, Small Ruminant Research and Development in Africa: Proceedings of the First Biennial Conference of the African Small Ruminant Research Network, Nairobi, Kenya. 10–14 December 1990. International Livestock Centre for Africa (ILCA), Addis Ababa, Ethiopia. Pp. 215–220.

Ekiz B, Yilmaz A, Ozcan M, Kocak O. (2012). Effect of production system on carcass measurements and meat quality of Kivircik lambs. Meat Science 90(2): 465–471. https://doi.org/10.1016/j.meatsci.2011.09.008

Fernandes MAM, Monteiro ALG, Poli CHEC, Barros CS, Almeida R, Ribeiro TMD. (2010). Tissue composition of carcass and meat fatty acids profile of lambs finished on pasture and feedlot systems. Revista Brasileira de Zootecnia 39(7): 1600–1609. https://doi.org/10.1590/S1516-35982010000700029

Fernandez-Turren G, Repetto JL, Arroyo JM, Pérez-Ruchel A, Cajarville C. (2020). Lamb fattening under intensive pasture-based systems: A review. Animals 10(3): 382. https://doi.org/10.3390/ani10030382

Fick SE, Hijmans RJ. (2017). WorldClim 2: new 1-km spatial resolution climate surfaces for global land areas. International Journal of Climatology 37(12): 4302–4315. https://doi.org/10.1002/joc.5086

Haiyan DAI, Haimei WANG (2021). Influence of rainfall events on soil moisture in a typical steppe of Xilingol. Physics and Chemistry of the Earth, Parts A/B/C 121: 102964. https://doi.org/10.1016/j.pce.2020.102964

Hornick JL, Van Eenaeme C, Gérard O, Dufrasne I, Istasse L. (2000). Mechanisms of reduced and compensatory growth. Domestic Animal Endocrinology 19(2): 121–132. https://doi.org/10.1016/S0739-7240(00)00072-2

Jiménez L, Naranjo A, Hernández J, Óvalos J, Ortega O, Ronquillo M. (2019). A meta-analysis on the effect of the feeding type and production system on the carcase quality of lambs. Italian Journal of Animal Science 18(1): 423–434. https://doi.org/10.1080/1828051X.2018.1532327

Jin X, Meng L, Zhang R, Tong M, Qi Z, Mi L. (2023). Effects of essential mineral elements deficiency and supplementation on serum mineral elements concentration and biochemical parameters in grazing Mongolian sheep. Frontiers in Veterinary Science 10: 1214346. https://doi.org/10.3389/fvets.2023.1214346

Karim SA, Santra A, Sharma VK. (2001). Pre-weaning growth response of lambs fed creep mixtures with varying levels of energy and protein. Small Ruminant Research 39(2): 137–144. https://doi.org/10.1016/S0921-4488(00)00178-4

Li M, Wang J, Li K, Liu Y, Ochir A, Davaasuren D. (2024a). Assessment of grazing livestock balance on the Eastern Mongolian Plateau based on remote sensing monitoring and grassland carrying capacity evaluation. Scientific Reports 14(1): 32151. https://doi.org/10.1038/s41598-024-84215-4

Li P, Zhang Z, Monaco TA, Rong Y. (2024b). Lambs grazing with adult ewes prefer forbs with high-nutrient content in native grasslands dominated by Leymus chinensis and Stipa grandis. Ecology and Evolution 14(11): e70609. https://doi.org/10.1002/ece3.70609

Lin L, Dickhoefer U, Müller K, Wang C, Glindemann T, Hao J, Wan H, Schönbach, Gierus M, Taube F, Susenbeth A. (2012). Growth of sheep as affected by grazing system and grazing intensity in the steppe of Inner Mongolia, China. Livestock Science 144(1): 140–147. https://doi.org/10.1016/j.livsci.2011.11.008

Liu T, Li F, Wang W, Wang X, Ma Z, Li C, Weng Z, Zheng C. (2022). Early feeding strategies in lambs affect rumen development and growth performance, with advantages persisting for two weeks after the transition to fattening diets. Frontiers in Veterinary Science 9: 925649. https://doi.org/10.3389/fvets.2022.925649

Luzardo S, Clariget J, Banchero G. (2019). Can compensatory growth mitigate a feeding restriction in growing lambs? Chilean Journal of Agricultural & Animal Sciences 35(3): 238-238. https://doi.org/10.4067/S0719-38902019005000403

Monteschio J de O, Burin PC, Leonardo AP, Fausto DA, da Silva ALA, Ricardo H de A, da Silva MC, de Souza MR, de Vargas Junior FM. (2018). Different physiological stages and breeding systems related to the variability of meat quality of indigenous Pantaneiro sheep. PLOS One 13(2): e0191668. https://doi.org/10.1371/journal.pone.0191668

Müller K, Dickhoefer U, Lin L, Glindemann T, Wang C, Schönbach P, Wan HW, Schiborra A, Tas BM, Gierus M. (2014). Impact of grazing intensity on herbage quality, feed intake and live weight gain of sheep grazing on the steppe of Inner Mongolia. The Journal of Agricultural Science 152(1): 153–165. https://doi.org/10.1017/S0021859613000221

National Commission of Livestock and Poultry Genetic Resources (2025). National catalogue of livestock and poultry genetic resources: Breed list, 2024 edition. Beijing, China: National Livestock and Poultry Genetic Resources Committee. https://www.nahs.org.cn/gk/tz/202502/t20250210_452797.htm

National Health and Family Planning Commission of the People’s Republic of China. (2016a). National Food Safety Standard—Determination of Fatty Acid in Foods (GB 5009.168-2016). Beijing, China. https://www.chinesestandard.net/PDF-EN/GB5009.168-2016EN-P13P-H10896H-707684.pdf

National Health and Family Planning Commission of the People’s Republic of China. (2016b). National Food Safety Standard—Determination of Amino Acid in Foods (GB 5009.124-2016). Beijing, China. https://www.chinesestandard.net/PDF-EN/GB5009.124-2016EN-P06P-H5002H-979409.pdf

National Health Commission of the People’s Republic of China. (2025). National Food Safety Standard—Determination of Protein in Foods (GB 5009.5-2025). Beijing, China.

Ortiz-Heredia MA, Bárcena-Gama JR, Martínez-Hernández PA, Guerrero-Rodriguez J de D, González-Munoz SS, Vázquez-Mendoza OV. (2023). Physico-chemical characteristics of meat after dietary supplementation of lambs with essential oils and calcium malate. South African Journal of Animal Science 53(4): 541–549. https://doi.org/10.4314/sajas.v53i4.08

Poli CHEC, Monteiro ALG, Devincenzi T, de Albuquerque FHMAR, da Motta JH, Borges LI, Muir JP. (2020). Management strategies for lamb production on pasture-based systems in subtropical regions: A review. Frontiers in Veterinary Science 7: 2020. https://doi.org/10.3389/fvets.2020.00543

Popova T, Gonzales-Barron U, Cadavez V. (2015). A meta-analysis of the effect of pasture access on the lipid content and fatty acid composition of lamb meat. Food Research International 77: 476–483. https://doi.org/10.1016/j.foodres.2015.08.020

Rossatti JA, Vargas Junior FM, Retore M, Britez GDV, Silva MC, Fernandes T, Fernandes A, Mele M. (2019). Effects of pasture type and level of concentrate supplementation on quality and fatty acid profile of lamb meat. South African Journal of Animal Science 49(6): 1021–1031. https://doi.org/10.4314/sajas.v49i6.2

Ryan W, Williams I, Moir R. (1993). Compensatory growth in sheep and cattle. 1. Growth pattern and feed intake. Australian Journal of Agricultural Research 44(7): 1609–1621. https://doi.org/10.1071/AR9931609

Sadrarhami I, Alikhani M, Ghasemi E, Mahdavi AH, Soltanizadeh N, Font-i-Furnols M et al. (2022). Effects of nomadic grazing system and indoor concentrate feeding systems on performance, behavior, blood parameters, and meat quality of finishing lambs. PLOS One 17(12): e0278669. https://doi.org/10.1371/journal.pone.0278669

Scarpa G, Tarricone S, Ragni M. (2021). Carcass composition, meat quality and sensory quality of Gentile di Puglia light lambs: Effects of dietary supplementation with oregano and linseed. Animals 11(3): 607. https://doi.org/10.3390/ani11030607

Sun DM, Mao SY, Zhu WY, Liu JH. (2018). Effect of starter diet supplementation on rumen epithelial morphology and expression of genes involved in cell proliferation and metabolism in pre-weaned lambs. Animal 12(11): 2274–2283. https://doi.org/10.1017/S1751731118000290

Suttie JM. (2005). Grazing management in Mongolia. In: Suttie JM, Reynolds SG, Batello C, editors, Grasslands of the world. FAO Plant production and protection series No.34. FAO, Rome, Italy. Pp. 265-304. https://www.fao.org/4/y8344e/y8344e0e.htm#TopOfPage

Wang H, Zhong L, Dong Y, Meng L, Ji C, Luo H, Fu M, Qi Z, Mi L. (2022). Whole-genome resequencing reveals domestication and signatures of selection in Ujimqin, Sunit, and Wu Ranke Mongolian sheep breeds. Animal Bioscience 35(9): 1303–1313. https://doi.org/10.5713/ab.21.0569

Wang W, Zhang X, Wei H, Wang S, Ye Y, He L, Zhang K, Lu Y, Zhang Z, Huang Y. (2024). Effects of feeding systems on the growth performance, carcass characteristics, and meat quality in sheep: A meta-analysis. Animals 14(18): 2738. https://doi.org/10.3390/ani14182738

Xilingol League Forestry and Grassland Bureau (2025a). Monitoring report on grassland regreening in Xilingol League, Issue No. 5. Xinlinhot, Inner Mongolia, China: Xilingol League Forestry and Grassland Bureau.

Xilingol League Forestry and Grassland Bureau (2025b). Completion of June forage growth monitoring in Xilingol League supporting grassland ecological development. Xilingol League Forestry and Grassland Bureau (https://lcj.xlgl.gov.cn/lcj/lcdt/gzdt/2025070909064394966/index.html, accessed 14 July 2025).

Xilingol League Meteorological Bureau (2025). Climate impact evaluation and assessment for spring 2025 in Xilingol League, Issue No. 8. Xilinhot, Inner Mongolia, China: Xilingol League Meteorological Bureau. (https://qxj.xlgl.gov.cn/eportal/ui?pageId=8102bc21b8a34781a21adf7ce9bd239c&articleKey=69d7757379194260a3b38b11b5d417d2&columnId=5fba082e2abe4882b8912fe3a8d63bc6 , accessed 14 May 2025).

Xu J, Li F, Zhang Z, Zheng C, Shen Z, Ma Z, Wang J, Zhang F, Wang J, Ran H, Yun H, Liu T. (2023). Early supplementation with starter can improve production performance of lambs but this growth advantage disappears after 154 days of age. Animals 13(3): 372. https://doi.org/10.3390/ani13030372

Yun Y, Wu R, He X, Qin X, Chen L, Sha L, Yun X, Nishiumi T, Borjigin G. (2023). Integrated transcriptome analysis of miRNAs and mRNAs in the skeletal muscle of Wuranke sheep. Genes 14(11): 2034. https://doi.org/10.3390/genes14112034

Published

11-06-2026

How to Cite

Narigeqi, N., Agipar, B. ., & Amarbat, B.-E. (2026). Effects of modest early creep feeding on growth, carcass traits, and muscle composition in pasture-raised Wuranke lambs: Early creep feeding in Wuranke lambs. Letters in Animal Biology, 6(2), 53–65. https://doi.org/10.62310/liab.v6i2.355

Issue

Section

Research Articles
Recieved 2026-04-10
Accepted 2026-06-08
Published 2026-06-11