Beehive Microclimate Significantly Influences the Activity and Productivity of Honey Bee (Apis mellifera L.) Colonies
DOI:
https://doi.org/10.13102/sociobiology.v73i1.11989Keywords:
Beekeeping management, Brood, colony growth, colony productitivity, HoneyAbstract
Environmental conditions, particularly temperature, significantly influence a honey bee colony, affecting its behavior, physiology, and performance. This study aimed to investigate the effects of shaded and unshaded environments on colony growth and performance. The experiments were conducted in shaded and unshaded colonies in the same apiary, and data were collected on the temperature inside and outside the brood nest, foraging activity, stored pollen area, sealed brood area, bee population size, and honey yield. The unshaded colonies exhibited higher brood nest temperatures and enhanced colony performance during cooler months, with a significantly greater number of foragers and pollen foragers, a larger stored pollen area, sealed brood areas, a larger colony population size, and a higher honey yield than shaded colonies. Conversely, shaded colonies outperformed unshaded colonies during hotter months, as unshaded colonies experienced stress from elevated temperatures, leading to reduced foraging activity, pollen collection, colony growth, and honey production. These findings highlight the crucial role of microclimatic conditions in honey bee colony management, underscoring the importance of providing optimal environmental conditions to support colony performance and sustainability, particularly in fluctuating climatic conditions. It is recommended to shade the beehives in the summer and remove the shading in the winter and spring.
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Abd-Elmawgood, B.H., Al-Rajhi, M.A. & El-Ashha, A.O. (2015). Effect of the internal size and thermal insulation of the hive on bee colonies strength and productivity. Egyptian Journal of Agricultural Research, 93: 185-196.
Ali, M.A. & Taha, E.A. (2012). Bee-eating birds (Coraciiformes: Meropidae) reduce virgin honey bee queen survival during mating flights and foraging activity of honey bees (Apis mellifera L.). International Journal of Scientific and Engineering Research, 3: 1-8.
Al-Ghamdi, A., Adgaba, N., Tadesse, Y., Getachew, A. & Al-Maktary, A. (2017). Comparative study on the dynamics and performances of Apis mellifera jemenitica and imported hybrid honey bee colonies in southwestern Saudi Arabia. Saudi Journal of Biological Sciences, 24: 1086-1093.
Al-Kahtani, S.N. & Taha, E.-K.A. (2021). Effect of comb age on cell measurements and worker body size. PLoS ONE, 16: e 0260865.
Al-Kahtani, S.N., Taha, E.-K.A. & Al-Abdulsalam, M. (2017). Alfalfa (Medicago sativa L.) seed yield in relation to phosphorus fertilization and honey bee pollination. Saudi Journal of Biological Sciences, 24: 1051-1055.
Amera, W.A., Mersso, B. T., Sisay, T.A., Arega, A.B. & Alene, A.T. (2024). Effect of various supplements on productive performance of honey bees, in the south Wollo Zone, Ethiopia. PLoS ONE, 19: 1-16.
Balvino-Olvera, F.J., Olivares-Pinto, U., González-Rodríguez, A., Aguilar-Aguilar, M.J., Ruiz-Guzmán, G., Lobo-Segura, J., Cortés-Flores J., Cristobal-Perez, E.J., Martén-Rodríguez, S., Patiño-Conde, V. & Quesada, M. (2024). Effects of floral resources on honey bee populations in Mexico: Using dietary metabarcoding to examine landscape quality in agroecosystems. Ecology and Evolution, 14: e11456.
Calovi, M., Grozinger, C.M. & Miller, D.A. (2021). Summer weather conditions influence winter survival of honey bees (Apis mellifera) in the northeastern United States. Scientific Reports, 11: 1553.
Chabert, S., Eeraerts, M., DeVetter, L.W., Borghi, M. & Mallinger, R.E. (2024). Intraspecific crop diversity for enhanced crop pollination success. A review. Agronomy for Sustainable Development, 44: 1-24.
Duffy, G.A., Coetzee, B.W.T., Janion-Scheepers, C. & Chown, S.L. (2015). Microclimate-based macrophysiology: implications for insects in a warming world. Current Opinion in Insect Science, 11: 84-89.
Eissa, F. & Taha, E.-K.A. (2023). Contaminants in honey: an analysis of EU RASFF notifications from 2002 to 2022. Journal of Consumer Protection and Food Safety, 18: 393-402.
Elwakeil, N.M., Hassanein, Z.A.E., Taha, R., Al-Kahtani, S.N., Aljabr, A.M. & Taha, E.-K.A. (2025). A comparative assessment of three pollen substitutes for honey bee (Apis mellifera L.) colonies during winter and spring. Polish Journal of Environmental Studies, 34: 3121-3128.
Flores, I., López, F.J., Jiménez, E. & Navarro, E. (2020). The use of cork in the thermoregulation of the hive: An innovation attempt to enhance non-wood products and beekeeping in Mediterranean forests. Annals of Silvicultural Research, 44: 123-131.
Gibson, A.K. (2021). Genetic diversity and disease: The past, present, and future of an old idea. Evolution, 76: 20-36.
Gounari, S., Proutsos, N. & Goras, G. (2022). How does weather impact on beehive productivity in a mediterranean island? Italian Journal of Agrometeorology, 1: 65-81.
Helal, R.M., El-Dakhakhni, T.N., Shawer, M.B. & Taha, E.-K.A. (2003). Effect of moving the apiaries on activity of honey bee colonies. 2- Flight activity, gathering of nectar and sugar concentration contents and honey. Journal of Agricultural Research Tanta University, 29: 268-282.
Jarimi, H., Tapia-Brito, E. & Riffat, S. (2020). A review on thermoregulation techniques in honey bees’ (Apis mellifera) beehive microclimate and its similarities to the heating and cooling management in buildings. Future Cities and Environment, 6: 1-8.
Jones, J.C. & Oldroyd, B.P. (2006). Nest thermoregulation in social insects. Advances in Insect Physiology, 33: 153-191.
Khanal, D., Aryal, S., Bista, S., Kafle, K ., B astakoti, B . & Banjade, D. (2024). Optimum sugar syrup feeding intervals for Apis cerana Fab. during the winter dearth period in the sub-tropical area of Nepal. Archives of Agriculture and Environmental Science, 9: 755-760.
Li, Z., Huang, Z.Y., Sharma, D.B., Xue, Y., Wang, Z. & Ren, B. (2016). Drone and worker brood microclimates are egulated differentially in honey bees, Apis mellifera. PLoS ONE, 11:e0148740.
Loftus, J.C., Smith, M.L. & Seeley, T.D. (2016). How honey bee colonies survive in the wild: testing the importance of small nests and frequent swarming. PLoS ONE, 11: e0150362.
Metz, B.N. & Tarpy, D.R. (2022). Variation in the reproductive quality of honey bee males affects their age of flight attempt. PeerJ, 10: e13859.
Minaud, E., Rebaudo F., Mainardi G., Vardakas P., Hatjina F., Steffan-Dewenter I. & Requier F. (2024). Temperature in overwintering honey bee colonies reveals brood status and predicts colony mortality. Ecological Indicators, 169: 112961.
Nürnberger, F., Härtel, S. & Steffan-Dewenter, I. (2018). The influence of temperature and photoperiod on the timing of brood onset in hibernating honey bee colonies. PeerJ, 6: e4801.
Omran, N.S.M. (2011). Wintering of honey bee colonies (Apis mellifera L.) by using a new technique during winter season in Sohag region, Egyptian Journal of Applied Sciences Research, 7: 174-182.
Russell, A.L., Morrison, S.J., Moschonas, E.H. & Papaj, D.R. (2017). Patterns of pollen and nectar foraging specialization by bumblebees over multiple timescales using RFID. Scientific Reports, 9: 42448.
Sanz, M.C., Prado-Jimeno, R. & Fuentes-Pérez, J.F. (2024). Comparative study of natural fibres to improve insulation in wooden beehives using sensor networks. Applied Sciences, 14: 5760.
SAS Institute (2003). SAS/STAT User’s Guide release 9.1. SAS Institute Inc. Cary, NC 27513.
Shawer, D.M.B., Rakha, O.M., Taha, E.-K.A., AL-Kahtani, S.N. & Elnabawy, S.M. (2021). The impact of caging the queens during the flow season on some biological activities of honey bee colonies. Saudi Journal of Biological Sciences, 28: 2975-2979.
Shawer, M.B., El-Dakhakhni, N.M., Helal, R.M. & Taha, E.-K.A. (2003). Effect of moving the apiaries on activity of honey bee colonies. 1- Gathering and storing pollen, brood rearing and wax secretion. Journal of Agricultural Research Tanta University, 29: 250-267.
Shawer, M.B., Taha, E.K.A., Mousa, K.M., Khan, K.A., Ibrahim, S., Hassan, S. & Elnabawy, E.M. (2021). Seasonal variations of colony activities linked to morphometric and glands characterizations of hybrid Carniolan honey bee (Apis mellifera carnica Pollmann) workers. Journal of King Saud University-Science, 33: 101543.
Sihag, R.C. & Rawal, G.K. (2025). Effect of initial colony strength on productivity and pollination services of honey bee (Apis mellifera L.). EUREKA: Life Sciences, 1: 19-28.
Stabentheiner, A. (2003). Endothermic heat production in honey bee winter clusters. Journal of Experimental Biology, 206: 353-358.
Stabentheiner, A., Kovac, H. & Brodschneider, R. (2010). Honey bee colony thermoregulation, regulatory mechanisms and contribution of individuals in dependence on age, location and thermal stress. PLoS ONE, 5: e8967.
Starks, P.T., Blackle, C.A. & Seeley, T.D. (2000). Fever in honey bee colonies. Naturwissenschaften, 87: 229-231.
Taha, E.-K.A. (2005). Studies on honey bee (Apis mellifera L.). Ph.D. Thesis, Faculty of Agriculture, Tanta University Egypt, 151 pp.
Taha, E.-K.A. (2007). Importance of banana Musa sp. (Musaceae) for honey bee Apis mellifera L. (Hymenoptera: Apidae) in Egypt. Bulletin of Entomological Society of Egypt, 2: 125-133.
Taha, E.-K.A. (2014). Seasonal variation of foraging activity, pollen collection and growth of honey bee colonies in Al-Ahsa, Saudi Arabia. Bulletin of Entomological Society of Egypt, 91: 163−175.
Taha, E.-K.A. & Al-Kahtani, S. (2013). Relationship between population size and productivity of honey bee colonies. Journal of Entomology, 10: 163-169.
Taha, E.-K.A. & Al-Kahtani, S.N. (2019). Comparison of the activity and productivity of Carniolan (Apis mellifera carnica Pollmann) and Yemeni (Apis mellifera jemenitica Ruttner) subspecies under environmental conditions of the Al-Ahsa oasis of eastern Saudi Arabia. Saudi Journal of Biological Sciences, 26: 681-687.
Taha, E.-K.A. & Al-Kahtani, S.N. (2020). The relationship between comb age and performance of honey bee colonies. Saudi Journal of Biological Sciences, 27: 30-34.
aha, E.-K.A., Al-Abdulsalam, M. & Al-Kahtani, S.N. (2016). Insect pollinators and foraging behavior of honey bees on alfalfa (Medicago sativa L.) in Saudi Arabia. Journal of the Kansas Entomological Society, 89: 92-99.
Taha, E.-K.A., Taha, R. & Al-Kahtani, S.N. (2019). Nectar and pollen resources for honey bees in Kafrelsheikh, Northern Egypt. Saudi Journal of Biological Sciences, 26: 890-896.
Taha, E.-K.A., Al-Kahtani, S.N. & Taha, R. (2021a). Comparison of the physicochemical characteristics of sidr (Ziziphus spp.) honey produced by Apis florea F. and Apis mellifera L. Journal of Apicultural Research, 60: 470-477.
Taha, E.-K.A., Rakha, O.M., Elnabawy, S.M., Hassan, M.M. & Shawer, D.M.B. (2021b). Comb age significantly influences the productivity of the honey bee (Apis mellifera) colony. Journal of King Saud University-Science, 33: 101436.
Taha, E.-K.A., Shawer, M.B., Elashmawy, A., Mabrouk, M.S., Hassan, M.M. & Hegazy, F.H. (2025). A supplemental protein diet significantly improves morphometric and reproductive traits of the honey bee queens during late winter. Applied Ecology and Environmental Research, 23: 2527-2540.
Tautz, J., Maier, S., Groh, C., Rössler, W. & Brockmann, A. (2003). Behavioral performance in adult honey bees is influenced by the temperature experienced during their pupal development. Proceedings of the National Academy of Sciences, 100: 7343-7347.
Ulgezen, Z.N., Van Langevelde, F. & van Dooremalen, C. (2024). Stress-induced loss of social resilience in honey bee colonies and its implications on fitness. Proceedings of the Royal Society, 291: 20232460.
Wineman, E., Lenski, Y. & Maher, Y. (2003). Solar heating of honey bee colonies (Apis mellifera L.) during the subtropical winter and its impact on hive temperature. worker population and honey production. American Bee Journal, 143: 565-570.
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Copyright (c) 2026 El-Kazafy A. Taha, Saad N. Al-Kahtani, Mohamed B. Shawer, Reda Taha, Sahar Gaber, Nabil M. Elwakeil, Kareem Mousa

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