Effects of Nongenetic Factors on the Birth Weight of Holstein Friesian and Swedish Red Calves under Organic Conditions

Authors

DOI:

https://doi.org/10.24925/turjaf.v13i6.1550-1554.7618

Keywords:

Birth weight, Calves, Holstein Friesian, Non-genetic Factors, Organic Farming, Swedish Red

Abstract

In this study, the effects of season, gender, parity and year of birth on the birth weight of Holstein and Swedish Reds calves raised under ecological conditions in the eastern Black Sea region of Türkiye were investigated. For this purpose, 985 birth weight records of calves born on a private organic dairy farm were utilized. The data were analyzed by Univariate Analysis of Variance method available in IBM SPSS Statistics 26.0 software. Study results showed that season had a significant (P < 0.01) effect on the birth weight of Holstein Friesian calves. The highest birth weight was observed in the spring season with 42.29 kg. Average birth weight for male calves was 41.8 kg, while female calves weighed 40.4 kg (P < 0.01). First parity dams had the lowest calf birth weight with an average of 38.7 kg. Calves from Holstein cows in second parity had the highest birth weight with 42.8 kg (P < 0.01). The effects of season on the birth weight were statistically significant in Swedish Red calves. Male and female Swedish Reds did not differ significantly with respect to their birth weights. The parity significantly influenced the birth weight of Swedish Red calves in a way (P < 0.05). Calves born from first-parity dams had an average birth weight of 40.3 kg, while those born to multiparous cows had an average of 41.4 kg. Additionally, the year had a notable effect on birth weight, with statistical significance (P < 0.01) observed in both breeds.

References

Aksakal, V., Yanar, M., & Bayram, B. (2010). Non-genetic factors affecting milk and reproductive traits of Swedish Red and White cattle raised organically in Turkey. Journal of Food Agriculture & Environment, 8(2): 764–768.

Anonymous, (2010). Ministry of Agriculture and Forestry of the Republic of Türkiye, General Directorate of Agricultural Production and Development, Organic Agriculture Law and Regulation on the Principles and Implementation of Organic Agriculture, Ankara, Türkiye.

Can, B. A. (2023). Turkish Consumers’ Perceptions of Organic Milk and the Factors Affecting Consumption: The Case of Kocaeli, Türkiye. Sustainability, 15(13), 10044. https://doi.org/10.3390/su151310044

Casas, E., Thallman, R. M., & Cundiff, L. V. (2012). Birth and weaning traits in crossbred cattle from Hereford, Angus, Norwegian Red, Swedish Red and White, Wagyu, and Friesian sires. Journal of Animal Science, 90(9), 2916–2920. https://doi.org/10.2527/jas.2011-4694

Cho, K., Song, Y., Yeo, J. M., Park, J. K., Kim, D. W., Roh, S. H., Pilnam, S., & Lee, W. Y. (2021). Analysis of seasonal effect on Korean native cattle (Hanwoo) birth weight. Journal of Animal Science and Technology, 63(4), 759. https://doi.org/10.5187/jast.2021.e72

Condon, T., Murphy, C. P., Sleator, R. D., Ring, S. C., & Berry, D. P. (2024). The association between calf birth weight and the post calving performance of its dairy dam in the absence of dystocia. Journal of Dairy Science, 107(6), 3688–3699. https://doi.org/10.3168/jds.2023-24164

Dhakal, K., Maltecca, C., Cassady, J. P., Baloche, G., Williams, C. M., & Washburn, S. P. (2013). Calf birth weight, gestation length, calving ease, and neonatal calf mortality in Holstein, Jersey, and crossbred cows in a pasture system. Journal of Dairy Science, 96(1), 690–698. https://doi.org/10.3168/jds.2012-5817

Dillon, J. A., Riley, D. G., Herring, A. D., Sanders, J. O., & Thallman, R. M. (2015). Genetic effects on birth weight in reciprocal Brahman–Simmental crossbred calves. Journal of Animal Science, 93(2), 553–561. https://doi.org/10.2527/jas.2014-8525

Duncan, N. B., Stoecklein, K. S., Foote, A. P., & Meyer, A. M. (2023). Dam parity affects fetal growth, placental size, and neonatal metabolism in spring-born beef calves. Journal of Animal Science, 101, skac399. https://doi.org/10.1093/jas/skac399

Eyinade, G. A., Mushunje, A., & Yusuf, S. F. G. (2021). The willingness to consume organic food: A review. Food and Agricultural Immunology, 32(1), 78–104. https://doi.org/10.1080/09540105.2021.1874885

Funston, R. N., & Summers, A. F. (2013). Effect of prenatal programming on heifer development. Veterinary Clinics: Food Animal Practice, 29(3), 517–536. https://doi.org/10.1016/j.cvfa.2013.07.001

Jin, S., Kang, S. S., Won, J. I., Kim, H. J., Jang, S. S., & Kim, S. W. (2024). Analyzing environmental factors influencing the gestation length and birth weight of Hanwoo cattle. Journal of Animal Reproduction and Biotechnology, 39(2), 121–130. https://doi.org/10.12750/JARB.39.2.121

Johanson, J. M., & Berger, P. J. (2003). Birth weight as a predictor of calving ease and perinatal mortality in Holstein cattle. Journal of Dairy Science, 86(11), 3745–3755. https://doi.org/10.3168/jds.S0022-0302(03)73981-2

Kamal, M. M., Van Eetvelde, M., Depreester, E., Hostens, M., Vandaele, L., & Opsomer, G. (2014). Age at calving in heifers and level of milk production during gestation in cows are associated with the birth size of Holstein calves. Journal of Dairy Science, 97(9), 5448–5458. https://doi.org/10.3168/jds.2014-7898

Kertz, A. F., Reutzel, L. F., Barton, B. A., & Ely, R. L. (1997). Body weight, body condition score, and wither height of prepartum Holstein cows and birth weight and sex of calves by parity: A database and summary. Journal of Dairy Science, 80(3), 525–529. https://doi.org/10.3168/jds.S0022-0302(97)75966-6

Khan, M. A., Mirza, R. H., Akhtar, M., Mubeen, M., Shakeel, M., & Irfan, M. (2019). Factors affecting growth performances of Simmental, Angus, Charolais and Hereford beef crossbred calves under sub-tropical environment of Pakistan. Journal of Animal & Plant Sciences, 29(2): 396–401.

Koçak, S., Tekerli, M., Özbeyaz, C., & Yüceer, B. (2007). Environmental and genetic effects on birth weight and survival rate in Holstein calves. Turkish Journal of Veterinary & Animal Sciences, 31(4), 241–246.

Linehan, K., Patangia, D. V., Ross, R. P., & Stanton, C. (2024). Production, Composition and Nutritional Properties of Organic Milk: A Critical Review. Foods, 13(4), 550. https://doi.org/10.3390/foods13040550

Lora, I., Gottardo, F., Contiero, B., Ava, B.D., Bonfanti, L., Stefani, A., & Barberio, A., (2018). Association between passive immunity and health status of dairy calves under 30 days of age. Preventive Veterinary Medicine, 152, 12–15. https://doi.org/10.1016/j.prevetmed.2018.01.009

Martínez-González, J. C., Gutiérrez-Michel, J. F., Briones-Encinia, F., Lucero-Magaña, F. A., & Castillo-Rodríguez, S. P. (2011). Non-genetic factors affecting birth and weaning weight in Angus calves. Zootecnia Tropical, 29(2), 151–159.

Mee, J.F., Berry, D.P. & Cromie, A.R. (2011). Risk Factors for Calving Assistance and Dystocia in Pasture-based Holstein-Friesian Heifers and Cows in Ireland, The Veterinary Journal, Elsevier, 187, 189–194. https://doi.org/10.1016/10.1016/j.tvjl.2009.11.018

Neethirajan, S. (2023). Innovative strategies for sustainable dairy farming in Canada amidst climate change. Sustainability, 16(1), 265. https://doi.org/10.3390/su16010265

Nelson, S. T., Martin, A. D., Holmøy, I. H., Karlberg, K., & Nødtvedt, A. (2016). A cross-sectional study of factors associated with birth weights of Norwegian beef calves. Preventive Veterinary Medicine, 125, 59–65. https://doi.org/10.1016/j.prevetmed.2016.01.011

Park, J. K., Cho, K., Yeo, J. M., Kim, D. W., Seong, P., & Lee, W. Y. (2022). Effect of birth and lactation season on the growth of Korean Hanwoo calves. Journal of Animal Reproduction and Biotechnology, 37(4), 298–302. https://doi.org/10.12750/JARB.37.4.298

Rahbar, R., Abdullahpour, R., & Sadeghi-Sefidmazgi, A. (2016). Effect of calf birth weight on milk production of Holstein dairy cattle in desert climate. JABB-Online Submission System, 4(3), 65-70.

Rezende, E. V., Reis, I. J., Campos, C. C., & Santos, R. M. (2020). Influence of gestation length, seasonality, and calf sex on birth weight and placental retention in crossbred dairy cows. Ciência Animal Brasileira, 21, e-52881. https://doi.org/10.1590/1809-6891v21e-52881

Sharpe, K. T., & Heins, B. J. (2021). Growth, health, and economics of dairy calves fed organic milk replacer or organic whole milk in an automated feeding system. JDS Communications, 2(6), 319–323. https://doi.org/10.3168/jdsc.2021-0084

Tang, C., Liang, Y., Guo, J., Wang, M., Li, M., Zhang, H., Arbab, A. A. I., Karrow, N. A., Yang, Z. & Mao, Y. (2022). Effects of seasonal heat stress during late gestation on growth performance, metabolic and immuno-endocrine parameters of calves. Animals, 12(6), 716. https://doi.org/10.3390/ani12060716

Tao, S., Monteiro A. P. A., Thompson I. M., Hayen M. J., & Dahl G. E. (2012). Effect of late-gestation maternal heat stress on growth and immune function of dairy calves. Journal of Dairy Science, 95, 7128–7136. https://doi.org/10.3168/jds.2012-5697

Uğur, F., Yanar, M., Özhan, M., & Tüzemen, N. (1995). The reproductive performance of Simmental cattle raised under cold climatic conditions of eastern Turkey. Atatürk Üniversitesi Ziraat Fakültesi Dergisi, 26(1), 112–121.

Willer, H., Trávníček, J., & Schlatter, B. (2024). The world of organic agriculture. Statistics and emerging trends 2024. Research Institute of Organic Agriculture FIBL and IFOAM Organics International. http://www.organic-world.net/yearbook/yearbook-2024.html

Wojciechowska-Solis, J., & Barska, A. (2021) Exploring the Preferences of Consumers’ Organic Products in Aspects of Sustainable Consumption: The Case of the Polish Consumer. Agriculture, 11, 138. https://doi.org/10.3390/agriculture11020138

Downloads

Published

28.06.2025

How to Cite

Ergün, O. F., Özdemir, V. F., & Bayram, B. (2025). Effects of Nongenetic Factors on the Birth Weight of Holstein Friesian and Swedish Red Calves under Organic Conditions. Turkish Journal of Agriculture - Food Science and Technology, 13(6), 1550–1554. https://doi.org/10.24925/turjaf.v13i6.1550-1554.7618

Issue

Section

Research Paper