Health evaluation of Africanized Apis mellifera in the province of Pastaza
Agricultura y Silvicultura
DOI:
https://doi.org/10.33936/latecnica.v15i2.7137Keywords:
beekeeping, diseases, infestation, pollination, sustainability.Abstract
Approximately 35% of all food produced depends on biological pollination and 90% of this pollination involves Apis mellifera. This species is vital for agricultural pollination, but faces threats such as pests, diseases and climate change that have increased colony mortality. The objective of the work was to carry out a sanitary assessment of A. mellifera in the province of Pastaza. The methodological approach was observational and descriptive using stratified sampling in active hives to evaluate the presence of diseases such as american and european foulbrood, and the Varroa destructor mite. For V. destructor, the “jar test” and bacteriological cultures for the foulbrood were used. The results revealed that no cases of american or european foulbrood were detected in the hives, showing that environmental conditions in Pastaza could be less favorable for these pathogens. However, the prevalence of V. destructor was significant, affecting 34.21% of the evaluated hives, with some exceeding the critical threshold of 5% infestation, which represents a considerable risk to the health of the colonies. These results show the urgent need to implement integrated beekeeping management strategies to control V. destructor infestation and prevent colony collapse. In conclusion, the absence of foulbrood is a positive finding, and the high prevalence of V. destructor shows the importance of improving beekeeping management practices in Pastaza to ensure the long-term sustainability of beekeeping in the region.
Downloads
References
Akongte, P. N., Park, B.-S., Jo, Y.-Y., Kim, D.-w., Kim, K.-M., Oh, D.-G. and Choi, Y.-S. (2023). Field evaluation of honeybee colonies (Apis mellifera L.) for selecting breeding lines. Journal of Asia-Pacific Entomology, 26(2), 1-14. https://doi.org/10.1016/j.aspen.2023. 102101
Alburaki, M., Abban, S. K., Evans, J. D. and Chen, Y. P. (2024). Occurrence and distribution of two bacterial brood diseases (American and European foulbrood) in US honey bee colonies and resistance to antibiotics from 2015 to 2022. Journal of Apicultural Research, 63(4), 701-710. https://doi.org/10.1080/00218839.2024.2329854
Alvarado Downing, G. E., Mayorga Castañeda, F. J. y Trujillo, M. E. (2012). Patología, diagnóstico y control de las principales enfermedades y plagas de las abejas melíferas. In: F. Suárez Güemes, E. Guzmán Novoa, & A. Correa Benítez (Eds.), Plagas de las abejas melíferas (pp. 1-146). Organismo Internacional Regional de Sanidad Agropecuaria. https://dn790009.ca.archive.org/0/items/2007467812012ManualDeAbejas/200746781-2012-Manual-de-Abejas.pdf
Büchler, R., Kovačić, M., Buchegger, M., Puškadija, Z., Hoppe, A. and Brascamp, E. W. (2020). Evaluation of traits for the selection of Apis mellifera for resistance against Varroa destructor. Insects, 11(9). https://doi.org/10.3390/insects11090618
Büchler, R., Uzunov, A., Kovačić, M., Prešern, J., Pietropaoli, M., Hatjina, F., Pavlov, B., Charistos, L., Formato, G. and Galarza, E. (2020). Summer brood interruption as integrated management strategy for effective Varroa control in Europe. Journal of Apicultural Research, 59(5), 764-773. https://doi.org/10.1080/00218839.2020.1793278
Chagas, D. B., Monteiro, F. L., Hübner, S. d. O., Lima, M. d. and Fischer, G. (2019). Viruses that affect Apis mellifera and their occurrence in Brazil. Ciência Rural, 49, 1-8. https://doi.org/10.1590/0103-8478cr20181042
De Jong, D., De Jong, P. H. and Gonçalves, L. S. (1982). Weight loss and other damage to developing worker honeybees from infestation with Varroa jacobsoni. Journal of Apicultural Research, 21(3), 165-167. https://doi.org/10.1080/00218839.1982.11100535
DeGrandi-Hoffman, G., Ahumada, F., Zazueta, V., Chambers, M., Hidalgo, G. and deJong, E. W. (2016). Population growth of Varroa destructor (Acari: Varroidae) in honey bee colonies is affected by the number of foragers with mites. Experimental and Applied Acarology, 69(1), 21-34. https://doi.org/10.1007/s10493-016-0022-9
Devi, S., Barwar, C. and Devi, M. (2019). Different methods for the management of Varroa mite (Varroa destructor) in honey bee colony. Journal of Entomology and Zoology Studies 7(4), 178-182. https://www.entomoljournal.com/special-issue?year=2019&vol=7&issue=4& ArticleId=5438
Franco, W., Portero, C. y Picón, G. (2024). Potencialidades y limitaciones de los suelos de las chakras de tres comunidades amazónicas del cantón Arajuno, Pastaza. Siembra, 11(3(Especial)), e6631. https://revistadigital.uce.edu.ec/index.php/SIEMBRA/article/ view/6631
Giannini, T. C., Cordeiro, G. D., Freitas, B. M., Saraiva, A. M. and Imperatriz-Fonseca, V. L. (2015). The dependence of crops for pollinators and the economic value of pollination in Brazil. J. Econ. Entomol., 108(3), 849-857. https://doi.org/10.1093/jee/tov093
Gregorc, A., Alburaki, M., Sampson, B., Knight, P. and Adamczyk, J. (2018). Toxicity of selected acaricides to honey bees (Apis mellifera) and Varroa (Varroa destructor Anderson and Trueman) and their use in controlling Varroa within honey bee colonies. Insects, 9. https://doi.org/10.3390/insects9020055
Grossar, D., Haynes, E., Budge, G. E., Parejo, M., Gauthier, L., Charrière, J. D., Chapuisat, M. and Dietemann, V. (2023). Population genetic diversity and dynamics of the honey bee brood pathogen Melissococcus plutonius in a region with high prevalence. Journal of Invertebrate Pathology, 196(3), 1-8. https://doi.org/10.1016/j.jip.2022.107867
Guichard, M., Dietemann, V., Neuditschko, M. and Dainat, B. (2020). Advances and perspectives in selecting resistance traits against the parasitic mite Varroa destructor in honey bees. Genet Sel. Evol., 52(1), 71. https://doi.org/10.1186/s12711-020-00591-1
Hernández-Fuentes, A., Chávez-Borges, D., Cenobio-Galindo, A. J., Velázquez, A. P., Figueira, A., Jiménez-Alvarado, R. and Campos-Montiel, R. (2021). Characterization of total phenol and flavonoid contents, colour, functional properties from honey samples with different floral origins. International Journal of Food Studies, 10(5), 346-358. https://doi.org/10.7455/ijfs/10.2.2021.a6
Jack, C. J. and Ellis, J. D. (2021). Integrated pest management control of Varroa destructor (Acari: Varroidae), the most damaging pest of (Apis mellifera L. (Hymenoptera: Apidae)) Colonies. Zootecnia Tropical, 21(5). https://doi.org/10.1093/jisesa/ieab058
Kušar, D., Papić, B., Zajc, U., Zdovc, I., Golob, M., Žvokelj, L., Knific, T., Avberšek, J., Ocepek, M. and Pislak Ocepek, M. (2021). Novel taqman PCR assay for the quantification of Paenibacillus larvae spores in bee-related samples. Insects, 12(11), 1-19. https://doi.org/10.3390/insects12111034
Leclercq, G., Blacquière, T., Gengler, N. and Francis, F. (2018). Hygienic removal of freeze-killed brood does not predict Varroa-resistance traits in unselected stocks. Journal of Apicultural Research, 57(2), 292-299. https://doi.org/10.1080/00218839.2018.1426350
Marcolin, L. C., Lima, L. R., de Oliveira Arias, J. L., Berrio, A. C. B., Kupski, L., Barbosa, S. C. and Primel, E. G. (2021). Meliponinae and Apis mellifera honey in southern Brazil: physicochemical characterization and determination of pesticides. Food Chemistry, 363, 130175. https://doi.org/https://doi.org/10.1016/j.foodchem.2021.130175
Masaquiza-Moposita, D., Martin, D., Zapata, J., Soldado, G. and Salas, D. (2023). Apicultura ecuatoriana: situación y perspectiva. Tesla Revista Científica, 3, e252. https://doi.org/10.55204/trc.v3i2.e252
Mondet, F., Beaurepaire, A., McAfee, A., Locke, B., Alaux, C., Blanchard, S., Danka, B. and Le Conte, Y. (2020). Honey bee survival mechanisms against the parasite Varroa destructor: a systematic review of phenotypic and genomic research efforts. International Journal for Parasitology, 50(6), 433-447. https://doi.org/10.1016/j.ijpara.2020.03.005
Nekoei, S., Rezvan, M., Khamesipour, F., Mayack, C., Molento, M. B. and Revainera, P. D. (2023). A systematic review of honey bee (Apis mellifera, Linnaeus, 1758) infections and available treatment options. Vet. Med. Sci., 9(4), 1848-1860. https://doi.org/10.1002/vms3.1194
Osterman, J., Aizen, M. A., Biesmeijer, J. C., Bosch, J., Howlett, B. G., Inouye, D. W., Jung, C., Martins, D. J., Medel, R., Pauw, A., Seymour, C. L. and Paxton, R. J. (2021). Global trends in the number and diversity of managed pollinator species. Agriculture, Ecosystems & Environment, 322, 107653. https://doi.org/10.1016/j.agee.2021.107653
Rangel, J. and Fisher, A. (2019). Factors affecting the reproductive health of honey bee (Apis mellifera) drones—a review. Apidologie, 50(6), 759-778. https://doi.org/10.1007/s13592-019-00684-x
Reinbacher, L., Fernández-Ferrari, M. C., Angeli, S. and Schausberger, P. (2018). Effects of metarhizium anisopliae on host choice of the bee-parasitic mite Varroa destructor. Acarologia, 58(2), 287-295. https://doi.org/10.24349/acarologia/20184241
Requier, F., Garnery, L., Kohl, P. L., Njovu, H. K., Pirk, C. W. W., Crewe, R. M. and Steffan-Dewenter, I. (2019). The conservation of native honey bees is crucial. Trends in Ecology & Evolution, 34(9), 789-798. https://doi.org/10.1016/j.tree.2019.04.008
Rosenkranz, P., Aumeier, P. and Ziegelmann, B. (2010). Biology and control of Varroa destructor. Journal of Invertebrate Pathology, 103(1), 96-119. https://doi.org/10.1016/j.jip.2009.07.016
Rowland, B. W., Rushton, S. P., Shirley, M. D. F., Brown, M. A. and Budge, G. E. (2021). Identifying the climatic drivers of honey bee disease in England and Wales. Scientific Reports, 11(1), 1-23. https://doi.org/10.1038/s41598-021-01495-w
Traynor, K. S., Mondet, F., de Miranda, J. R., Techer, M., Kowallik, V., Oddie, M. A. Y., Chantawannakul, P. and McAfee, A. (2020). Varroa destructor: A complex parasite, crippling honey bees worldwide. Trends in Parasitology, 36(7), 592-606. https://doi.org/10.1016/j.pt.2020.04.004
Vargas Hidalgo, J. S., Pisuña Lluglluna, E. N., Flores Granizo, P. E. y Barrionuevo Quinto, D. F. (2024). Diagnóstico y prevalencia del ácaro Varroa destructor en Apiarios de Apis mellifera en el Límite Provincial de Tungurahua y Pastaza. Ciencia Latina Revista Científica Multidisciplinar, 8(2), 4861-4875. https://doi.org/10.37811/cl_rcm.v8i2.10900
Wagoner, K., Spivak, M., Hefetz, A., Reams, T. and Rueppell, O. (2019). Stock-specific chemical brood signals are induced by Varroa and Deformed Wing Virus, and elicit hygienic response in the honey bee. Scientific Reports, 9(1), 8753. https://doi.org/10.1038/s41598-019-45008-2
Warner, S., Pokhrel, L. R., Akula, S. M., Ubah, C. S., Richards, S. L., Jensen, H. and Kearney, G. D. (2024). A scoping review on the effects of Varroa mite (Varroa destructor) on global honey bee decline. Science of The Total Environment, 906(2), 1-18. https://doi.org/10.1016/j.scitotenv.2023.167492
Wilhelm, E., Korschineck, I., Sigmund, M., Paulsen, P., Hilbert, F. and Rossmanith, W. (2023). Monitoring of Paenibacillus larvae in lower Austria through DNA-based detection without de-sporulation: 2018 to 2022. Veterinary Sciences, 10(3), 1-19. https://doi.org/10.3390/vetsci10030213
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2025 Jaime Andrés Chamba Tivan Chamba Tivan , Danilo-Reni Vinocunga-Pillajo

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.





