SCIENTIFIC SUBSTANTIATION OF RATIONAL TECHNOLOGICAL PARAMETERS FOR THE PRODUCTION OF A MILK-PLANT ADDITIVE
DOI:
https://doi.org/10.31548/humanhealth.3.2026.22Keywords:
whey ultrafiltrate, yacon leaves, extraction, technology, dairy-plant additiveAbstract
The rational and comprehensive utilization of dairy by-products is a current priority in modern food science. Particular interest is focused on using cottage cheese whey ultrafiltrate as a basis for developing a novel functional ingredient that combines the nutritional value of both dairy and plant raw materials. In this regard, the scientific substantiation of the technology for producing a dairy-plant additive from yacon leaves, a plant material rich in bioactive compounds, is of considerable relevance.
This study aimed to scientifically substantiate the rational technological parameters for producing a dairy-plant additive based on cottage cheese whey ultrafiltrate and yacon leaves, and to establish the patterns and optimal conditions of the extraction process. To achieve this objective, conventional methods for evaluating the sensory, physicochemical, and functional-technological characteristics of food systems were applied. Methods for determining dry matter content, acidity, density, and viscosity, as well as mathematical modeling and statistical analysis of experimental data, were also employed.
The study established the optimal parameters for extracting biologically active substances from yacon leaves using cottage cheese whey ultrafiltrate: a hydromodule of 1:10, an extraction medium pH of 4.4–4.5, a temperature of 45 ± 2 °C, and an extraction time of 45–50 min. These conditions enabled the extraction of dry matter at 1.6 g per 100 g of extract. The proposed production method for the dairy-plant additive can be implemented using conventional processing technologies, with adjustments to suit the developed operating conditions. A transparent appearance, a light amber color, a pleasant sweet-and-sour taste, a distinctive coffee-milky aftertaste, and slight astringency characterized the resulting additive. It was demonstrated that using whey ultrafiltrate as an extractant ensures efficient recovery of biologically active compounds from plant material without requiring complex technological operations.
The practical significance of the work lies in the development of a novel dairy-plant additive that can serve as a multifunctional ingredient in food technology, contributing to the comprehensive utilization of secondary dairy raw materials, improved resource efficiency, and the expansion of the range of food products.
Received 13.06.2026, accepted 21.07.2026, published 22.09.2026
Downloads
References
Albuquerque, B. R., Heleno, S. A., Oliveira, M. B. P. P., Barros, L., & Ferreira, I. C. F. R. (2021). Phenolic compounds: Current industrial applications, limitations and future challenges. Food & Function, 12(1), 14-29. https://doi.org/10.1039/D0FO02324H
Buchanan, D., Martindale, W., Romeih, E., & Hebishy, E. (2023). Recent advances in whey processing and valorisation: Technological and environmental perspectives. International Journal of Dairy Technology, 76(2), 291-312. https://doi.org/10.1111/1471-0307.12935
Chessum, K., Chen, T., Kam, R., & Yan, M. (2023). A Comprehensive Chemical and Nutritional Analysis of New Zealand Yacon Concentrate. Foods, 12(1), 74. https://doi.org/10.3390/foods12010074
Gibson, G. R., Hutkins, R., Sanders, M. E., Prescott, S. L., Reimer, R. A., Salminen, S. J., Scott, K., Stanton, C., Swanson, K. S., Cani, P. D., Verbeke, K., & Reid, G. (2017). The International Scientific Association for Probiotics and Prebiotics (ISAPP) consensus statement on the definition and scope of prebiotics. Nature Reviews Gastroenterology & Hepatology, 14(8), 491-502. https://doi.org/10.1038/nrgastro.2017.75
Gudz, N. A. (2018). Pharmacognostic study of stevia (Stevia rebaudiana Bertoni) and yacon (Smallanthus sonchifolius (Poepp. & Endl.) H. Robinson) (Doctoral dissertation, National University of Pharmacy, Kharkiv, Ukraine).
Istasse, T., Jacquet, N., Berchem, T., Haubruge, E., Nguyen, B. K., & Richel, A. (2016). Extraction of honey polyphenols: Method development and evidence of cis isomerization. Analytical Chemistry Insights, 11, 49-57. https://doi.org/10.4137/ACI.S39739
Jakobek, L. (2015). Interactions of polyphenols with carbohydrates, lipids and proteins. Food Chemistry, 175, 556-567. https://doi.org/10.1016/j.foodchem.2014.12.013
Kolesnyk, V., Polupan, V., Penkina, N., Sorokina, S., Penkin, A., Bushtakov, I., & Veretennikov, O. (2025). Substantiation of the dairy-plant additives technology for use in functional products. Food Science and Technology, 18(4), 63-73. https://doi.org/10.15673/fst.v18i4.3145
Nielsen, S. S. (Ed.). (2017). Food analysis (5th ed.). Cham: Springer. 602. https://doi.org/10.1007/978-3-319-45776-5
Nkhata, S. G., Ayua, E., Kamau, E. H., & Shingiro, J. B. (2018). Fermentation and germination improve nutritional value of cereals and legumes through activation of endogenous enzymes. Food Science & Nutrition, 6(8), 2446-2458. https://doi.org/10.1002/fsn3.846
Ryan, M. P., & Walsh, G. (2016). The biotechnological potential of whey. Reviews in Environmental Science and Bio/Technology, 15(3), 479-498. https://doi.org/10.1007/s11157-016-9402-1
Shahidi, F., & Yeo, J. (2018). Bioactivities of phenolics by focusing on suppression of chronic diseases: A review. International Journal of Molecular Sciences, 19(6), 1573. https://doi.org/10.3390/ijms19061573
Sharma, D., Thakur, A., Sharma, R., Thakur, M., Kumari, N., Kumar, P., et al. (2024). A review on physicochemical characteristics, phytochemical and therapeutic potential of yacon (Smallanthus sonchifolius (Poepp.) H. Robinson) flour. Annals of Phytomedicine, 13(1), 253-267. https://doi.org/10.54085/ap.2024.13.1.26
Simon, E. M., Mburu, M. W., & Koskei, R. K. (2024). The impact of varying stages of maturity on the chemical composition and antioxidant activity of yacon (Smallanthus sonchifolius) leafy vegetable. European Journal of Agriculture and Food Sciences, 6(3), 1-7. https://doi.org/10.24018/ejfood.2024.6.3.782
State Committee of Ukraine for Technical Regulation and Consumer Policy. (2003). DSTU ISO 8968-1:2003. Milk. Determination of nitrogen content. Part 1: Kjeldahl method (ISO 8968-1:2001, IDT). Kyiv: Derzhspozhyvstandart of Ukraine.
State Committee of Ukraine for Technical Regulation and Consumer Policy. (2008). DSTU 5059:2008. Confectionery products. Methods for determination of sugars. Kyiv: Derzhspozhyvstandart of Ukraine.
State Committee of Ukraine for Technical Regulation and Consumer Policy. (2004). DSTU ISO 5984:2004. Animal feeding stuffs. Determination of crude ash (ISO 5984:2002, IDT). Kyiv: Derzhspozhyvstandart of Ukraine.
State Committee of Ukraine for Technical Regulation and Consumer Policy. (2005). DSTU ISO 6658:2005. Sensory analysis. Methodology. General guidance (ISO 6658:1985, IDT). Kyiv: Derzhspozhyvstandart of Ukraine.
Yuan, X.-Y., Li, Z.-Y., Chen, X.-L., Ding, X.-Q., Zhou, Y.-P., Wang, X.-Y., & Li, X.-Y. (2022). Rapid screening of antioxidant activity components from yacon (Smallanthus sonchifolius Poepp. and Endl.) leaves by variable selection based on weight analysis. International Journal of Food Properties, 25(1), 1948-1957. https://doi.org/10.1080/10942912.2022.2114494
Downloads
Published
Issue
Section
License
Copyright (c) 2026 Human and nation's health
All materials are distributed under the terms of the Creative Commons Attribution 4.0 International Public License, which allows others to extend the article with acknowledgment of authorship and first publication in this journal.