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ENTOMOLOGY

Diagnostic survey on varroa mite (Varroa distractor) prevalence in South-Western Ethiopia

ORCID Icon, , ORCID Icon &
Article: 2143610 | Received 15 Jul 2022, Accepted 31 Oct 2022, Published online: 14 Nov 2022

References

  • Abd El-Wahab, T. E., Shalaby, S. E., Al-Kahtani, S. N., Al Naggar, Y., Jamal, Z. A., & Masry, S. H. (2021). Mode of application of acaricides against the ectoparasitic mite (Varroa destructor) infesting honeybee colonies, determines their efficiencies and residues in honey and beeswax. Journal of King Saud University-Science, 33(1), 101236. https://doi.org/10.1016/j.jksus.2020.101236
  • Allsopp, M. H., Govan, V., & Davison, S. (1997). Bee health report: Varroa in South Africa. Bee World, 78(4), 171–14. https://doi.org/10.1080/0005772X.1997.11099361
  • A-Tai Truong, Mi-Sun Yoo, Bo-Ram Yun, Jeong Eun Kang, Jinhyeong Noh, Tae Jun Hwang, Soo Kyoung Seo, Soon-Seek Yoon & Yun Sang Cho. (2022). Prevalence and pathogen detection of Varroa and Tropilaelaps mites in Apis mellifera (Hymenoptera, Apidae) apiaries in South Korea, Journal of Apicultural Research. https://doi.org/10.1080/00218839.2021.2013425
  • Aubert, M., Ball, B., Fries, I., Moritz, R., Milani, N., & Bernardinelli, I. (2008). Virology and the Honeybee (pp. 462). Publications Office of the European Union.
  • Bahreini, R., Nasr, M., Docherty, C., de Herdt, O., Muirhead, S., & Feindel, D. (2020). Evaluation of potential miticide toxicity to Varroa destructor and honey bees, Apis mellifera, under laboratory conditions. Scientific Reports, 10(1), 1–14. https://doi.org/10.1038/s41598-020-78561-2
  • Bahreini, R., Nasr, M., Docherty, C., Feindel, D., Muirhead, S., de Herdt, O., & Vontas, J. (2021). New bioassay cage methodology for in vitro studies on Varroa destructor and Apis mellifera. PLoS ONE, 16(4), e0250594. https://doi.org/10.1371/journal
  • Ball, B. V. (1997). Secondary infections and diseases associated with Varroa jacobsoni. In Opt. Méditerr (Vol. 21 (pp. 49–58). http://om.ciheam.org/om/pdf/c21/97605907.pdf
  • Beaurepaire, A., Piot, N., Doublet, V., Antunez, K., Campbell, E., Chantawannakul, P., Chejanovsky, N., Gajda, A., Heerman, M., Panziera, D., Smagghe, G., Yañez, O., de Miranda, J. R., & Dalmon, A. (2020). Diversity and global distribution of viruses of the Western Honey Bee, Apis mellifera. Insects, 11(4), 239. https://doi.org/10.3390/insects11040239
  • Bernandi, S., & Venturino, E. (2016). Viral epidemiology of the adult Apis mellifera infested by the Varroa destructor mite. Heliyon, 2(2016), e00101. https://doi.org/10.1016/j.heliyon.2016.e00101
  • Bordier, C., Pioz, M., Crauser, D., Le Conte, Y., & Alaux, C. (2017). Should I stay or should I go: Honeybee drifting behaviour as a function of parasitism. Apidologie, 48, 286–297. https://doi.org/10.1007/s13592-016-0475-1
  • Cauia, E., & Cauia, D. (2022). Improving the Varroa (Varroa destructor) control strategy by brood treatment with formic acid-A pilot study on spring applications. Insects, 13(2), 149. https://doi.org/10.3390/insects13020149
  • Chantawannakul, P., de Guzman, Li, J., Williams, G. R., & de Guzman, L. I. (2016). Parasites, pathogens, and pests of honey bees in Asia. Journal of Apidologie, 47(3), 301–324. https://doi.org/10.1007/s13592-015-0407-5
  • Chemurot, M., Akol, C., de Graaf, D. C., de Graaf, D. C., de Graaf, D. C., & de Graaf, D. C. (2016). Factors influencing the prevalence and infestation levels of Varroa destructor in honeybee colonies in two highland agro-ecological zones of Uganda. Experimental & Applied Acarology, 68(4), 497–508. https://doi.org/10.1007/s10493-016-0013-x
  • Conte, Y. L., Meixner, M. D., Brandt, A., Carreck, N. L., Costa, C., Mondet, F., & Buchler, R. (2020). Review on geographical distribution and selection of European honey bees resistant to Varroa destructor. Journal of Insects (MDPI), 11(12), 873. https://doi.org/10.3390/insects11120873
  • Curie. (2008). Economic threshold for Varroa on the Canadian prairies. In Canadian Association of Professional Apiculturists (pp. 2N2). University of Manitoba, Department of Entomology.
  • Dereje, T., Melkam, A., Gezahegn, M., Ararsa, B., Amsalu, B., Esayas, M., & Yildiz, F. (2020). Improved beekeeping technology in Southwestern Ethiopia: Focus on beekeepers’ perception, adoption rate, and adoption determinants. Cogent Food and Agriculture, 6(1), 1814070. https://doi.org/10.1080/23311932.2020.1814070
  • De Souza, A. P. F., Rodrigues, N. R., Fernández-Alba, A. R., & Reyes, F. G. R. (2022). Occurrence of pesticide residues in Brazilian Apis mellifera beeswax by gas chromatography-tandem mass spectrometry and pesticide hazard evaluation. Journal of Apicultural Research, 1–7. https://doi.org/10.1080/00218839.2022.2043228
  • Dessalegn, B., Alemayehu, G., Taye, N., & Amssalu, B. (2016). Identifying the species, effects and seasonal dynamics of honeybee varroa mites: A newly emerging parasite to Ethiopian honeybee. International Journal of Toxicology and Environmental Science, 1(1), 4. https://doi.org/10.15226/2572-3162/2/1/00102
  • Dessalegne, B. (2015). Occurrences and distributions of honeybee (Apis mellifera Jemenetica) varroa mite (Varroa destructor) in Tigray Region, Ethiopia. Journal of Fishery and Livestock. Production, 2(3). https://doi.org/10.4172/2332-2608.1000126
  • Dietemann, V., Beaurepaire, A., Page, P., Yañez, O., Buawangpong, N., Chantawannakul, P., & Neumann, P. (2019). Population genetics of ectoparasitic mites Varroa spp. in Eastern and Western honey bees. Parasitology, 146(11), 1429–1439. https://doi.org/10.1017/S003118201900091X
  • Dietemann, V., Nazzi, F., Martin, S. J., Anderson, D. L., Locke, B., Delaplane, K. S., Wauquiez, Q., Tannahil, C., Frey, E., Ziegelmann, B., Rosenkranz, P., & Ellis, J. L. (2013). Standard methods for varroa research. Journal Apiculture Research, 52(1), 1–54. https://doi.org/10.3896/IBRA.1.52.1.09
  • El-Niweiri, M. A. A., & El- Sarrag, M. S. A. (2006). Detection of the parasitic mite (Varroa jacobsoni) of honey bees (Apis mellifera) in Sudan. Albuhuth, 10(1), 61–76.
  • FAO (Food and Agriculture Organization). (2018). Good Beekeeping practices. Food and Agriculture Organization of the United Nations. http://teca.fao.org
  • Fazier, M., Muli, E., Conklin, T., Schmehl, D., Torto, B., Frazier, J., Tumlinson, J., Evans, J. D., & Raina, S. (2010). A scientific note on Varroa destructor found in East Africa; threat or opportunity? Apidology, 41(4), 463–465. https://doi.org/10.1051/apido/2009073
  • Floris, I., Pusceddu, M., & Satta, A. (2020). How the infestation level of Varroa destructor affects the distribution pattern of multi-infested cells in worker brood of Apis mellifera. Journal of Veterinary Science, 7(3), 136. https://doi.org/10.3390/vetsci7030136
  • Galindo-Cardona, A., Scannapieco, A. C., Russo, R., Escalante, K., Geria, M., Lepori, N., Monmany-Garzia, A. C., Muntaabski, I., Liendo, M. C., Landi, L., Giray, T., & Monmany-Garzia, A. C. (2020). Varroa destructor parasitism and genetic variability at honey bee (Apis mellifera) drone congregation areas and their associations with environmental variables in Argentina. Frontiers in Ecology and Evolution, 8, 590345. https://doi.org/10.3389/fevo.2020.590345
  • Giacobino, A., Cagnolo, N. B., Merke, J., Orellano, E., Bertozzi, E., Masciangelo, G., Pietronave, H., Salto, C., & Signorini, M. (2014). Risk factors associated with the presence of Varroa destructor in honey bee colonies from east-central Argentina. Journal of Preventive Veterinary Medicine, 115(3–4), 280–287. http://dx.doi.org/10.1016/j.prevetmed.2014.04.002
  • Gliński, Z., & Jarosz, J. (1992). Varroa jacobsoni as a carrier of bacterial infections to a recipient bee host. Apidologie, 23(1), 25–31. https://doi.org/10.1051/apido:19920103
  • Gregorc, A., & Sampson, B. (2019). A review on: diagnosis of Varroa mite (Varroa destructor) andSustainable Control in Honey Bee (Apis mellifera) Colonies. Journal of Diversity, 11(12), 243. https://doi.org/10.3390/11120243
  • Guichard, M., Dietemann, V., Neuditschko, M., & Dainat, B. (2020). A review on: Advances and perspectives in selecting resistance traits against the parasitic mite Varroa destructor in honey bees. Journal of Genetics Selection Evolution (GSE), 52, 71. https://doi.org/10.1186/s12711-020-00591-1
  • Haftom, G., Amssalu, B., Smet, L. D., De Graaf, D. C., & Lihoreau, M. (2019). Factors restraining the population growth of Varroa destructor in Ethiopian honey bees (Apis mellifera simensis). PLoS ONE, 14(9), e0223236. pone.0223236. https://doi.org/10.1371/journal
  • Highfield, A. C., Nagar, A. E., Mackinder, L. C. M., Noe, L. M., Hall, M. J., Martin, S. J., & Schroeder, D. C. (2009). Deformed wing virus implicated in Overwintering Honey bee Colony Losses. Applied and Environmental Microbiology, 75(22), 7212–7220. https://doi.org/10.1128/AEM.02227-09
  • Hillayova, M.K., Korený, L., and Skvarenina, J.(2022). The local environmental factors impact the infestation of bee colonies by mite Varroa destructor. Journal oof Ecological Indicators, 141,109104. https://doi.org/10.1016/j.ecolind.2022.109104
  • Hristov, P., Shumkova, R., Palova, N., & Neov, B. (2020). Factors associated with honey bee colony losses: A mini-review. Journal of Veterinary Science, 7(4), 166. https://doi.org/10.3390/vetsci7040166
  • Hubert, J., Bicianova, M., Ledvinka, O., Kamler, M., Lester, P. J., Nesvorna, M., Erban, T., & Erban, T. (2017). Changes in the bacteriome of honey bees associated with the parasite Varroa destructor, and pathogens Nosema and Lotmaria passim. Journal of Microbial Ecology, 73(3), 685–698. https://doi.org/10.1007/s00248-016-0869-7
  • Jack, C. J., & Ellis, J. D. (2021). Integrated pest management control of Varroa destructor (Acari: Varroidae), the most damaging pest of (Apis mellifera L. (Hymenoptera: Apidae)) Colonies. Journal of Insect Science, 21(5), 6, 1–32. https://doi.org/10.1093/jisesa/ieab058
  • Locke, B. (2016). Natural Varroa mite-surviving Apis mellifera honey bee populations. Apidologie, 47(3), 467–482. https://doi.org/10.1007/s13592-015-0412-8
  • Locke, B., Thaduri, S.,Stephan, J.G., Low, M.,Blacquière, T., Dahle, B., Le Conte, Y., Neumann, P., and de Miranda, J.R.(2021). Adapted tolerance to virus infections in four geographically distinct Varroa destructor resistant honeybee populations. Scientific Reports, 11(1), 1–12.
  • Maggi, M., Antúnez, K., Invernizzi, C., Aldea, P., Vargas, M., Negri, P., Brasesco, C., De Jong, D., Message, D., Weinstein, E., Principal, J., Barrios, C., Ruffinengo, S., Da Silva, R. R., & Eguara, M. (2016). Honey bee health in South America. Apidologie, 47(6), 835–854. https://doi.org/10.1007/s13592-016-0445-7
  • Mancuso, T., Croce, L., & Vercelli, M. (2020). Total brood removal and other biotechniques for the sustainable control of varroa mites in honey bee colonies: Economic impact in beekeeping farm case studies in Northwestern Italy. Journal of Sustainability, 12(6), 2302. https://doi.org/10.3390/su12062302
  • Marin, K., & Zlatko, P. (2020). Prediction of total number of Varroa destructor mites in the honey bee (Apis mellifera) colony in late summer. The 13th International scientific/professional conference, Faculty of Agro-biotechnical Sciences Osijek, Josipa Juraj Strossmayer University of Osijek,Osijek, Croatia. https://www.researchgate.net/publication/354544607
  • Martin, S. J., & Brettell, L. E. (2019). Deformed wing virus in honey bees and other insects: Annual review of virology. 2019(6), 49–69. https://doi.org/10.1146/annurev-virology-092818-015700
  • Masaquiza, D., Vargas, J., Ortíz, N., Salazar, R., Curbelo, L., Pérez, A., & Arenal, A. (2021). Hygienic,Behavior of Apis mellifera and Its Relationship with Varroa destructor. Infestation and Honey Production in the Central Highlands of Ecuador. Insects, 12, 966. https://doi.org/10.3390/insects12110966
  • Mendoza, Y., Tomasco, I. H., Antúnez, K., Castelli, L., Branchiccela, B., Santos, E., & Invernizzi, C. (2020). Unraveling honey bee–Varroa destructor interaction: Multiple factors involved in differential resistance between two Uruguayan populations. Journal of Veterinary Science, 7, 116. https://doi.org/10.3390/vetsci7030116
  • Mengistu, S., Kebede, Y., & Begna, D. (2016). Major honeybee health problem with particular emphasis to Anti-Varroa Investigation of Propolis in Toke-Kutaye District, Ethiopia. American-Eurasian Journal of Scientific Research, 11(5), 320–331. https://doi.org/10.5829/idosi.aejsr.2016.11.5.10418
  • Mezgabu, E., Hirpa, E., Begna, D., Yimer, L., Bayan, A., & Chali, M. (2016). Occurrence and distribution of Varroa mite and antivarroa effect of propolis in Walmara District of Oromia special zone around Finfine, Ethiopia. Journal of Veterinary Science & Technology, 7(5), 370. https://doi.org/10.4172/2157-7579.1000370
  • Mondet, F., de Miranda, J. R., Kretzschmar, A., Le Conte, Y., Mercer, A. R., & Schneider, D. S. (2014). On the front line: Quantitative virus dynamics in honeybee (Apis mellifera L.) colonies along a new expansion front of the parasite Varroa destructor. PLoS Pathogens, 10(8), e1004323. https://doi.org/10.1371/journal.ppat.1004323
  • Muli, E., Patch, H., Frazier, M., Frazier, J., Torto, B., Baumgarten, T., Kilonzo, J., Kimani, J. N., Mumoki, F., Masiga, D., Tumlinson, J., & Grozinger, C. (2014). Evaluation of the distribution and impacts of parasites, pathogens, and pesticides on honey bee (Apis mellifera) populations in East Africa. PLoS ONE, 9(4), e94459. https://doi.org/10.1371/journal.pone.0094459
  • Namayanja, D., Akol, A. M., & Kugonza, D. R. (2016). Prevalence of varroa mite infestations among honey bee colonies in Uganda (MSc. Thesis). Department of Zoology, Entomology and Fisheries Sciences, College of Natural Sciences, Makerere University.
  • Nganso, B. T., Fombong, A. T., Yusuf, A. A., Pirk, C. W. W., Stuhl, C., Torto, B., & Blenau, W. (2017). Hygienic and grooming behaviors in African and European honeybees—New damage categories in Varroa destructor. PLoS ONE, 12(6), e0179329. https://doi.org/10.1371/journal
  • Nuru, A., Awraris, G., Ahmed, A. A., Amenay, A., Mohammad, J. A., Brian, T., & Sarah, R. (2014). Crematogaster chiarinii ants as a potential biological control agent for protecting honeybee colonies from attack by Dorylus quadratus driver ants in Ethiopia (Hymenoptera: Formicidae). Agricultural and Forestry Entomology, 16(3), 302–313. https://doi.org/10.1111/afe.12060
  • Paray, M., & Gupta, S. (2017). Economic threshold of Varroa destructor (Anderson and Trueman) infesting Apis mellifera in Kashmir. Indian Journal of Entomology, 79(1), 27–31. https://doi.org/10.5958/0974-8172.2017.00007.4
  • Pirk, C. W. W., Strauss, U., Yusuf, A. A., Demares, F., & Human, H. (2016). A review on: Honeybee health in Africa. Apidologie, 47(3), 276–300. https://doi.org/10.1007/s13592-015-0406-6
  • Qadir, Z. A., Idrees, A., Mahmood, R., Sarwar, G., Bakar, M. A., Ahmad, S., Raza, M. M., & Li, J. (2021). Effectiveness of different soft acaricides against honey bee ectoparasitic mite Varroa destructor (Acari: Varroidae). Insects, 12(11), 1032. https://doi.org/10.3390/insects12111032
  • Ramsey, S. D., Ochoa, R., Bauchan, G., Gulbronson, C., Mowery, J. D., Cohen, A., vanEngelsdorp, D., Joklik, J., Cicero, J. M., Ellis, J. D., Hawthorne, D., & vanEngelsdorp, D. (2019). Varroa destructor feeds primarily on honey bee fat body tissue and not hemolymph. Proceedings of the National Academy of Sciences, 116(5), 1792–1801. https://doi.org/10.1073/pnas.1818371116
  • Rondeau, S., Giovenazzo, P., & Fournier, V. (2019). Risk assessment and predation potential ofStratiolaelaps scimitus (Acari: Laelapidae) to control Varroa destructor (Acari: Varroidae) in honey bees. Risk assessment and predation potential of Stratiolaelaps scimitus (Acari: Laelapidae) to control Varroa destructor (Acari: Varroidae) in honey bees. PLoS ONE, 13(12), e0208812. https://doi.org/10.1371/journal.pone.0208812
  • Rosenkranz, P., Aumeier, P., & Ziegelmann, B. (2010). Biology and control of Varroa destructor. Journal of Invertebrate Pathology, 103(2010), S96–S119. https://doi.org/10.1016/j.jip.2009.07.016
  • Roth, M. A., Wilson, J. M., Tignor, K. R., Gross, A. D., & Messenger, M. (2020). Biology and management of Varroa destructor (Mesostigmata: Varroidae) in Apis mellifera (Hymenoptera: Apidae) Colonies. Journal of Integrated Pest Management, 11(1), 1; 1–8. https://doi.org/10.1093/jipm/pmz036
  • Spivak, M., & Reuter, G. S. (2016). Honeybee diseases and pests: A companion to Beekeeping in Northern Climate. University of Minnesota Extension, Department of Entomology and Minnesota Extension Service, St. Paul.
  • Tesfu, S., & Dawit, H. G. (2021). Identification, characterization and evaluation of honeybee floras in Kafa, Sheka and Benchi Maji zones of Southern Nations, Nationalities and Peoples Region (SNNPR), Ethiopia. Journal of Agricultural Science and Food Technology, 7(3), 310–326. https://doi.org/10.17352/2455-815X.000125
  • Thrusfield, M. (2005). Veterinary Epidemiology (3rd) ed., pp. 232–242). Blackwell Science Ltd., London.
  • Tsuruda, J. M., Harris, J. W., Bourgeois, L., Danka, R. G., Hunt, G. J., & Amdam, G. V. (2012). High-Resolution linkage analyses to identify genes that influence varroa sensitive hygiene behavior in honey bees. PLoS ONE, 7(11),e48276. pone.0048276. https://doi.org/10.1371/journal
  • Underwood, R., & Currie, R. (2007). Effects of release pattern and room ventilation on survival of varroa mites and queens during indoor winter fumigation of honeybee colonies with formic acid. Journal of Canadian Entomology, 139(6), 881–893. https://doi.org/10.4039/N06-085
  • Underwood, R., & Lopez-Uribe, M. (2022). Methods to control varroa mites: An integrated pest management approach. Penn State Extension (PSE), Pennsylvanian State University: ART-5874. Extension.psu.edu.
  • Van der Zee, R., Gray, A., Pisa, L., & De Rijk, T. (2015). An observational study of honey bee colony winter losses and their association with varroa destructor. Neonicotinoids and Other Risk Factors. PLoS ONE, 10(7),e0131611. pone.0131611. https://doi.org/10.1371/journal