How does invert sugar syrup affect sealed worker brood and colony strength in Roger-Delon hives
Tsvetan Tsvetanov

, Ralitsa Balkanska

Abstract: Honeybees are the most valuable pollinators for ecosystems. This study aimed to determine the effects of inverted sugar syrup on the sealed worker brood and colony strength in Roger-Delon hives. The study was conducted in 2024, involving 14 Roger-Delon hives. The experiment was conducted at an altitude of 860 meters in the area of the town of Tran, Pernik region. Bee colonies were assigned to two treatment groups: inverted sugar syrup supplementation (experimental group with 7 bee colonies) and supplementation with sugar solution (control group with 7 bee colonies), at a rate of 250 ml per colony twice a week. In the present experiment with Roger-Delon hives, the bee colonies supplemented with inverted sugar syrup had significantly higher average values of sealed worker brood and colony strength, than those in the control groups (p<0.001), following spring and autumn feedings. These results confirm that inverted sugar syrup is more effective supplemental feed for improving brood production in honeybee colonies, probably due to its higher digestibility. Further studies are needed over longer periods of time, as they could provide a deeper insight into the long-term effects of inverted sugar syrup on bee colony growth and productivity in Roger-Delon hives.
Keywords: colony strength; honeybees; inverted sugar syrup; Roger-Delon hive; sealed worker brood; sugar syrup
Citation: Tsvetanov, Ts. & Balkanska, R. (2025). How does invert sugar syrup affect sealed worker brood and colony strength in Roger-Delon hives? Bulgarian Journal of Animal Husbandry, 62(2), 21-26.
References: (click to open/close) | Ahmed, S. (2023). Anthropogenic threats to honeybee ecology: A review. Journal of Advanced Research in Agriculture Science and Technology, 6(2), 21-43. Al Ghamdi. (2005). A. Comparative study between subspecies of Apis mellifera for egg hatching and sealed brood percentage, brood nest temperature and relative humidity. Pakistan Journal of Biological Sciences, 8(4), 626-630. Birloiu, G. D., Diaconescu, S. & Nicolae, C. G. (2015). Study on the technology used for adapting the bees to the pedoclimate conditions of Romania. Scientific Papers. Series D. Animal Science, 58, 231-238. Bogdanov, S., Martin, P. & Lüllmann, C. (1997). Harmonised methods of the European honey commission. Apidologie, extra issue, 1–59. Branchiccela, B., Castelli, L., Corona, M., Díaz-Cetti, S., Invernizzi, C., Martínez de la Escalera, G., Mendoza, Y., Santos, E., Silva, C., Zunino, P. & Antúnez, K. (2019). Impact of nutritional stress on the honeybee colony health. Scientific Reports, 9, 10156, 1-11. Ceksteryte, V. & Racys, J. (2006). The quality of syrups used for bee feeding before winter and their suitability for bee wintering. Journal of Apicultural Science, 50(1), 5-14. Chaand, D., Sharma, D., Ganai, S. A., Norboo, T. & Sharma. S. (2017). Effect of colony strength on colony build up and foraging activity of Apis mellifera L. Journal of Entomology and Zoology Studies, 5(6), 1369-1373. Cook, D., Blackler, A., McGree, J. & Hauxwel, C. (2021). Thermal impacts of apicultural practice and products on the honey bee colony. Journal of Economic Entomology, 114(2), 538–546. Delaplane, K. S., Van der Steen, J. & Guzman, E. (2013). Standard methods for estimating strength parameters of Apis mellifera colonies. Journal of Apicultural Research, 52, 1–12. El-Seedi, H. R., Ahmed, H. R., El-Wahed, A. A. A., Saeed, A., Algethami, A. F., Attia, N. F., Guo, Z., Musharraf, S. G., Khatib, A. & Alsharif, S. M. (2022). Bee stressors from an immunological perspective and strategies to improve bee health. Veterinary Sciences, 9, 199, 1-23. Eşanu, D. I., Simeanu, D. & Mircea, P. I. (2018). The use of some energetics syrups on bees deprived on natural picking and its effects on some morphological and productive parameters. Scientific Papers. Series D. Animal Science, 1, 101-106. Frizzera, D., Del Fabbro, S., Ortis, G, Zanni, V., Bortolomeazzi, R., Nazzi, F. & Annoscia, D. (2020). Possible side effects of sugar supplementary nutrition on honey bee health. Apidologie, 51, 594–608. Gómez-Brizuela, L., Luis-Orozco, J., Ramírez-Pérez, H. L., Yll-Lavín, M., Díaz-Suarez, S., Michelena-Álvarez, G. & Dustet-Mendoza, J. C. (2017) Comparison of economic indicators of the sucrose acid inversion or by enzymatic hydrolysis. Biotecnología Aplicada, 34, 4401-4404. Gаbka, J. (2014). Correlations between the strength, amount of brood, and honey production of the honey bee colony. Medycyna Weterynaryjna, 70(12), 754-756. Heaf, D. (2009). Towards sustainable beekeeping. First edition, Llanystumdwy, 22, 1-32. Hu, Y., Liu, J., Pan, Q., Shi, X. & Wu, X. (2024). Effects of artificial sugar supplementation on the composition and nutritional potency of honey from Apis cerana. Insects, 15, 344. Jachimowicz, Th. (1976). Why do we need invert sugar in bee feeding? Bienenvater, 5, 131 – 133. Kartik, A. R. & Singh, G. (2024). Artificial diet supplementation: A review for sustainable approach to boost honeybee health. Journal of Scientific & Industrial Research, 83, 914-933. Papa, G., Maier, R., Durazzo, A., Lucarini, M., Karabagias, I. K., Plutino, M., Bianchetto, E., Aromolo, R., Pignatti, G. & Ambrogio, A. (2022). The honey bee Apis mellifera: An insect at the interface between human and ecosystem health. Biology, 11, 233, 1-24. Papežíková, I., Palíková, M., Syrová, E., Zachová, A., Somerlíková, K., Kováčová V. & Pecková L. (2020). Effect of feeding honey bee (Apis mellifera Hymenoptera: Apidae) colonies with honey, sugar solution, inverted sugar, and wheat starch syrup on nosematosis prevalence and intensity. Journal of Economic Entomology, 113(1), 26–33. Pridal, A., Musila, J. & Svoboda, J. (2023). Condition and honey productivity of honeybee colonies depending on type of supplemental feed for overwintering. Animals, 13, 323, 1-15. |
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| Date published: 2025-04-29
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