Professional Journal of Domestic

Professional Journal of Domestic

Physiological Mechanisms of Colostrum Secretion and Factors Affecting Its Quality and Quantity

Document Type : Scientific-Extensional Article

Authors
1 M.Sc. Student of Animal and Poultry Physiology, Department of Animal Science, College of Agriculture and Natural Resources, University of Tehran, Karaj, Alborz, Iran
2 M.Sc. Student of Animal Breeding and Genetics, Department of Animal Sciences, Faculty of Agriculture at the University of Tabriz, Tabriz, East Azerbaijan, Iran
Abstract
Colostrum, also known as beestings or colostrum, is the first mammary secretion produced by dairy cows after parturition. It plays a fundamental role in the transfer of passive immunity, regulation of neonatal metabolic responses, and improvement of calf survival and future performance. The process of colostrum production (colostrogenesis) occurs mainly during the final weeks of gestation and around the onset of calving, and it is influenced by complex hormonal and physiological changes. A decline in progesterone concentration, concurrent with an increase in prolactin and glucocorticoids near parturition, initiates the secretory differentiation of mammary epithelial cells and the selective accumulation of immune components, particularly immunoglobulin G (IgG), within the alveolar lumen. Regulation of the permeability of the blood–milk barrier and structural modifications in mammary epithelial tight junctions are considered key mechanisms in this process. In this context, the neonatal Fc receptor (FcRn) plays an important role in the active and selective transport of IgG from the bloodstream into mammary secretions, thereby determining the immunological quality of colostrum. In addition to internal physiological regulation, the nutritional and metabolic status of the cow during the prepartum close-up period has a significant impact on both the quantity and quality of colostrum. Adequate supply of metabolizable protein, maintenance of energy balance, and control of metabolic stress have been reported to be associated with increased IgG concentration and improved colostrum composition. Furthermore, inflammatory and oxidative stress markers during late gestation may affect colostrum volume and its immunoglobulin profile. Management-related factors, including the length of the dry period, timing of the first milking after calving, use of oxytocin, and environmental or seasonal conditions, can also lead to considerable variation in colostrum production and quality. Overall, colostrum production in dairy cows is a multifactorial phenomenon involving interactions among hormonal regulation, mammary barrier function, immune status, and nutritional management. A comprehensive understanding of these mechanisms provides the scientific basis for developing effective strategies to optimize colostrum quality and enhance calf health and performance.
Keywords

Abdelrahman, M., Liu, G., Al-Saeed, F. A., Liu, Y., Hou, F., Yang, H., Farooq, U., Ahmed, S., and Jiang, X. (2025). “Deciphering the colostral-immunity transfer: From mammary gland to neonate’s small intestine.” Veterinary Research Communications, 49, 72.
Altvater-Hughes, T. E., Wagter-Lesperance, L. C., Hodgins, D. C., Bauman, C. A., Larmer, S., and Mallard, B. A. (2023). “The association of immune response and colostral IgG in Canadian and US Holstein-Friesian dairy cows.” Journal of Dairy Science, 106(4), 2857–2865.
Baumrucker, C. R., Burkett, A. M., Magliaro-Macrina, A. L., & Dechow, C. D. (2021). Colostrogenesis: Mass transfer of immunoglobulin G1 into colostrum. Journal of Dairy Science, 104(8), 8891–8904.
Erickson, P. S. (2022). “Colostrum management: Keys to optimizing output and uptake of immunoglobulin G.” Frontiers in Animal Science, 3, 914361.
Mann, S., Bruckmaier, R. M., Spellman, M., Frederick, G., Somula, H., and Wieland, M. (2024). “Effect of oxytocin use during colostrum harvest on colostrum yield and immunoglobulin G concentration.” Journal of Dairy Science, 107(9), 7469–7481.
Rossi, R. M., Cullens, F. M., Bacigalupo, P., Sordillo, L. M., and Abuelo, A. (2023). “Changes in biomarkers of metabolic stress during late gestation associated with colostrum volume and immunoglobulin content.” Journal of Dairy Science, 106(1), 718–732.
Stahl, T. C., Mullin, E. M., Piñeiro, J. M., Lunak, M., Chahine, M., and Erickson, P. S. (2024). “Creating models for the prediction of colostrum quantity, quality, and IgG yield in multiparous dairy cows.” Journal of Dairy Science, 107(7), 4855–4870.
Stelwagen, K., Carvalho, M. P. A., Khan, M. J., & Bruckmaier, R. M. (2025). “Hormonal control of mammary blood–milk barrier and its role in establishing and maintaining colostrum production and early lactation in dairy cows.” Journal of Dairy Research, 92(1), 45–59.
Wellnitz, O., and Bruckmaier, R. M. (2021). “Invited review: The role of the blood–milk barrier and its manipulation for the efficacy of the mammary immune response and milk production.” Journal of Dairy Science, 104(6), 6376–6388.
Westhoff, T. A., Overton, T. R., and Mann, S. (2023). “Epidemiology of bovine colostrum production in New York Holstein herds: Prepartum nutrition and metabolic indicators.” Journal of Dairy Science, 106(7), 4896–4905.
Westhoff, T. A., Borchardt, S., and Mann, S. (2024). “Invited review: Nutritional and management factors that influence colostrum production and composition in dairy cows.” Journal of Dairy Science, 107(7), 4109–4128.