Electrophysiologic and behavioral responses mediated by volatiles involved in the repellency of Apis mellifera (Lepeletier) (Hymenoptera: Apidae)
DOI:
https://doi.org/10.12741/ebrasilis.v13.e903Keywords:
benzaldehyde, chemical communication, metyl antranilate, repellentsAbstract
Repellent volatiles to insects might be an important tool for management of bees in areas which the presence of these organisms is not required. This study aimed to evaluate the electroantennal and behavioral responses of Africanized honeybees (workers), Apis mellifera (Lepeletier) (Hymenoptera Apidae), at different ages, to benzaldehyde (BA) and methyl anthranilate (MA) and to evaluate the potential repellency of these compounds under field conditions. Laboratory tests were conducted to study electroantennographic responses (mV) and chemotactic behavior of worker bees aged 1-5 (young) and 20-30 (old) days in four choice olfactometer. Electrophysiological responses to each compound did not differ between young and old workers. Bees antennae (young) triggered significantly greater responses to BA, in the older ones, a higher response was observed to MA, both compared to control (ethanol). The threshold response to BA and MA was achieved at 10 µg/µL, both compounds repelled bees at the same dose in olfactometer. Treatments with BA and MA, in field conditions, were less visited by scouter honey bees than those without these compounds (control).
References
Abramson, CI, MK Wilson, JB Singleton, PA Wanderley, MJA Wanderley & LM Michaluk, 2006. Citronella is not a repellent to africanized honey bees Apis mellifera L. (Hymenoptera: Apidae). Bioassay, 1: 1-7. DOI: https://doi.org/10.14295/BA.v1.0.40
Afify, A, B Horlacher, J Roller & CG Galizia, 2014. Different repellents for Aedes aegypti against blood-feeding and oviposition. PLoS One, 9: 1-8. DOI: https://doi.org/10.1371/journal.pone.0103765
Ayres, M, MJr Ayres, DL Ayres & AAS Santos, 2007. BioEstat 5.0 Aplica
Azambuja, W, 2020. Benzalde
Burkle, LA & JB Runyon, 2016. Drought and leaf herbivory influence floral volatiles and pollinator attraction. Global Change Biology, 22:1644-1656. DOI: https://doi.org/10.1111/gcb.13149
Collins, AM, WL Rubink, JIC Aguilar & RL Hellmich II, 1996. Use of insect repellents for dispersing defending honey bees (Hymenoptera: Apidae). Journal of Economic Entomology, 89: 608-613. DOI: https://doi.org/10.1093/jee/89.3.608
Fancelli, M & ALM Mesquita, 1998. Pragas do maracujazeiro. In. Braga Sobrinho, R, JE Cardoso, FCO Freire (Eds). Pragas de fruteiras tropicais de import
Frasnelli, E & G Vallortigara, 2017. Distribution of antennal olfactory and non-olfactory sensilla in different species of bees. Symmetry, 9:1-10. DOI: http://doi.org/10.3390/sym9080135
Free, JB & AW Ferguson & JR Simpkins, 1989. Honeybee responses to chemical components from the worker sting apparatus mandibular glands in field tests. Journal of Apicultural Research, 28: 7-21. DOI: https://doi.org/10.1080/00218839.1989.11100814
Gadenne, C, RB Barrozo & S Anton, 2016. Plasticity in Insect Olfation: To smell or not to smell? Annual Review of Entomology, 61: 317-33. DOI: https://doi.org/10.1146/annurev-ento-010715-023523
Hickel, ER & E Schuck, 1995. Vespas e abelhas atacando a uva no Alto do Vale do Rio do Peixe, o que fazer e quando insetos ben
Huot, B, J Yao, BL Montgomery & SY He, 2014. Growth
Kain, P, SM Boyle, SK Tharadra, T Pham, A Dahanukar & A Ray, 2013. Odour receptors and neurons for DEET and new insect repellents. Nature, 502: 507-514. DOI: https://doi.org/10.1038/nature12594
Klatt, BJ, C Burmeister, C Westphal, T Tscharntke & M von Fragstein, 2013. Flower volatiles, Crop varieties and bee responses. PLoS One, 8: e72724. DOI: https://doi.org/10.1371/journal.pone.0072724
Knudsen, JT, R Eriksson, J Gershenzon & B Stahl, 2006. Diversity and distribution of floral scent. The botanical Review, 72: 1-120. DOI: https://doi.org/10.1663/0006-8101(2006)72[1:DADOFS]2.0.CO;2
Michener, CD, 1975. The Brazilian bee problem. Annual Review Entomology, 20: 399-416. DOI: https://doi.org/10.1146/annurev.en.20.010175.002151
Murai, T, T Imai & M Maekawa, 2000. Methyl anthranilate as an attractant for two thrips species and the thrips parasitoid Ceranisus menes. Journal of Chemical Ecology, 26: 2557- 2565. DOI: https://doi.org/10.1023/A:1005536713025
Pagare, S, M Bhatia, N Tripathi, S Pagare & YK Bansal, 2015. Secondary metabolites of plants and their role: overview. Current Trends in Biotechnology and Pharmacy, 9: 293-304.
Pankiw, T, 2009. Reducing honey bee defensive responses and social wasp colonization with methyl anthranilate. Journal of Medical Entomology, 46: 782-788. DOI: https://doi.org/10.1603/033.046.0408
Paulraj, MG, AD Reegan & S Ignacimuthu, 2011. Toxicity of Benzaldehyde and Propionic Acid against Immature and Adult stages of Aedes aegypti (Linn.) and Culex quinquefasciatus (Say) (Diptera: Culicidae). Journal of Entomology, 8: 539-547. DOI: https://doi.org/10.3923/je.2011.539.547
Pelosi, P, J Zhu & W Knoll, 2018. Odorant-Binding Proteins as Sensing Elements for Odour Monitoring. Sensors, 3248: 1-19. DOI: https://doi.org/10.3390/s18103248
Reinhard, J, M Sinclair, M Srinivasan & C Claudianos, 2010. Honeybees learn odour mixtures via a selection of key odorants. PLoS ONE, 5: 1-14. DOI: https://doi.org/10.1371/journal.pone.0009110
Sandoz, JC, 2011. Behavioral and neurophysiological study of olfactory perception and learning in honeybees. Frontiers in Systems Neuroscience, 5:1-20. DOI: https://doi.org/10.3389/fnsys.2011.00098
Townsend, GF, 1963. Benzaldehyde: a new repellent for driving bees. Bee World, 44: 146- 149. DOI: https://doi.org/10.1080/0005772X.1963.11097015
Verschut, TA, MA Carlsson & PA Hamb
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