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Effect of Sub-Lethal Doses of Thiamethoxam on the Memory of Apis mellifera Linnaeus


Affiliations
1 Department of Entomology, Punjab Agricultural University, Ludhiana 141 004, India
 

Honey bees forage owing to their remarkable ability to learn and memorize their cues. The effect of thiamethoxam on the memory of bees was studied through the proboscis extension reflex (PER). The bees that consumed higher doses of thiamethoxam (0.93–5.76 ng bee–1) showed lesser sensitivity to sucrose than those that consumed lower doses (0.03–0.64 ng bee–1). Bees sensitivity was least affected at the highest sucrose concentration (50% w/v). PER in trained and treated bees recorded after 2 and 24 h of consuming the various doses of thiamethoxam showed a significant reduction in memory (13.3–82.2% and 0.00–68.9% respectively). Field-level studies are required to validate the results and formulate strategies at the national level for safeguarding the bees.

Keywords

Apis mellifera, Memory, Proboscis Extension Reflex, Thiamethoxam, Sucrose Concentration.
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  • Potts, S. G., Petanidou, T., Roberts, S., O’Toole, C., Hulbert, A. and Willmer, P., Plant–pollinator biodiversity and pollination services in a complex Mediterranean landscape. Biol. Conserv., 2006, 129, 519–
  • Klein, A., Vaissiere, B. E., Cane, J. H., Steffan-Dewenter, I., Cunningham, S. A., Kremen, C. and Tscharntke, T., Importance of pollinators in changing landscapes for world crops. Proc. R. Soc. London, Ser. B, 2007, 274, 303–313.
  • Bradbear, N., The importance of bees in nature. In Bees and their Role in Forest Livelihoods: A Guide to the Services Provided by Bees and the Sustainable Harvesting, Processing and Marketing of their Products, Food and Agriculture Organization of the United Nations, Rome, Italy, 2009, pp. 13–16.
  • Neumann, P. and Carreck, N. L., Honey bee colony losses. J. Apic. Res., 2010, 49, 1–6.
  • van Engelsdorp, D. et al., Colony collapse disorder: a descriptive study. PLoS ONE, 2009, 4, e6481; doi:10.1371/journal.pone.0006481.
  • Potts, S., Potts, S. G., Biesmeijer, J. C., Kremen, C., Neumann, P., Schweiger, O. and Kunin, W. E., Global pollinator declines: trends, impacts and drivers. Trends Ecol. Evol., 2010, 25, 345–353.
  • Anon., Consumption of chemical pesticides in various states/UTs & pesticide wise consumption of indigenous pesticides during 2017–18 to 2021–22; http://ppqs.gov.in/statistical-database (accessed on October 2022).
  • Elbert, A., Haas, M., Springer, B., Thielert, W. and Nauen, R., Applied aspects of neonicotinoid uses in crop protection. Pest Manage. Sci., 2008, 64, 1099–1105.
  • Jeschke, P., Nauen, R., Schindler, M. and Elbert, A., Overview of the status and global strategy for neonicotinoids. J. Agric. Food Chem., 2011, 59, 2897–2908.
  • Tomizawa, M. and Casida, J. E., Selective toxicity of neonicotinoids attributable to specificity of insect and mammalian nicotinic receptors. Annu. Rev. Entomol., 2005, 48, 339–364.
  • Anon., Major uses of pesticides (Registered under the Insecticides Act, 1968). Central Insecticide Board & Registration Committee, Faridabad, Directorate of Plant Protection, Quarantine & Storage, Department of Agriculture, Cooperation & Farmers Welfare, Ministry of Agriculture & Farmers Welfare, Government of India, 2020; http://ppqs.gov.in/divisions/cib-rc/major-uses-of-pesticides (accessed on September 2020).
  • Choudhary, A., Mohindru, B., Karedla, A. K., Singh, J. and Chhuneja, P. K., Sub-lethal effects of thiamethoxam on Apis mellifera Linnaeus. Toxin Rev., 2021, 41, 1044–1057.
  • Iwasa, T., Motoyama, N., Ambrose, J. T. and Roe, M. R., Mechanism for the differential toxicity of neonicotinoid insecticides in the honey bee, Apis mellifera. Crop Prot., 2004, 23, 371–378.
  • Gauthier, M. et al., Involvement of alpha-bungarotoxin-sensitive nicotinic receptors in long-term memory formation in the honeybee (Apis mellifera). Neurobiol. Learn Mem., 2006, 86, 164–174.
  • Cano Lozano, V., Armengaud, C. and Gauthier, M., Memory impairment induced by cholinergic antagonists injected into the mushroom bodies of the honey bee. J. Comp. Physiol., 2001, 187, 249–254.
  • Dacher, M., Lagarrigue, A. and Gauthier, M., Antennal tactile learning in the honey bee: effect of nicotinic antagonists on memory dynamics. Neuroscience, 2005, 130, 37–50.
  • Bitterman, M. E., Menzel, R., Fietz, A. and Schäfer, S., Classical conditioning of proboscis extension in honey bees (Apis mellifera). J. Comp. Psychol., 1983, 97, 107–119.
  • Menzel, R., Associative learning in honey bees. Apidologie, 1993, 24, 157–168.
  • Karedla, A. K., Impact of thiamethoxam on Apis mellifera Linnaeus in mustard. M.Sc. thesis submitted to Punjab Agricultural University, Ludhiana, India, 2019.
  • Felsenberg, J., Gehring, K. B., Antemann, V. and Eisenhardt, D., Behavioural pharmacology in classical conditioning of the proboscis extension response in honey bees (Apis mellifera). J. Vis. Exp., 2011, 47, e2282; doi:10.3791/2282.
  • Smith, B. H. and Burden, C. M., A proboscis extension response protocol for investigating behavioral plasticity in insects: application to basic, biomedical, and agricultural research. J. Vis. Exp., 2014; doi:10.3791/51057.
  • Aliouane, Y., El-Hassani, A. K., Gary, V., Armengaud, C., Lambin, M. and Gauthier, M., Subchronic exposure of honey bees to sublethal doses of pesticides: effects on behaviour. Environ. Toxicol. Chem., 2009, 28, 113–122.
  • Pavlov, I., Conditioned Reflexes: Investigation of the Physiological Activity of the Cerebral Cortex (translator Anrep, G. V.), Dover Publications, Oxford, UK, 1960.
  • El-Hassani, A. K., Dacher, M., Garry, V., Lambin, M., Gauthier, M. and Armengaud, C., Effects of sublethal doses of acetamiprid and thiamethoxam on the behaviour of the honey bee (Apis mellifera). Arch. Environ. Contam. Toxicol., 2008, 54, 653–661.
  • Nauen, R., Ebbinghaus-Kintscher, U., Salgado, V. L. and Kaussmann, M., Thiamethoxam is a neonicotinoid precursor converted to clothianidin in insects and plants. Pestic. Biochem. Physiol., 2003, 76, 55–69.
  • Christen, V., Mittner, F. and Fent, K., Molecular effects of neonicotinoids in honey bees (Apis mellifera). Environ. Sci. Technol., 2016, 50, 4071–4081.
  • Shi, T., Wang, Y., Qi, L., Liu, F. and Yu, L., Sublethal effects of the neonicotinoid insecticide thiamethoxam on the transcriptome of the honey bee (Apis mellifera). J. Econ. Entomol., 2017, 110, 2283–2289.

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  • Effect of Sub-Lethal Doses of Thiamethoxam on the Memory of Apis mellifera Linnaeus

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Authors

Ashok Kumar Karedla
Department of Entomology, Punjab Agricultural University, Ludhiana 141 004, India
Amit Choudhary
Department of Entomology, Punjab Agricultural University, Ludhiana 141 004, India
Jaspal Singh
Department of Entomology, Punjab Agricultural University, Ludhiana 141 004, India
Pardeep Kumar Chhuneja
Department of Entomology, Punjab Agricultural University, Ludhiana 141 004, India

Abstract


Honey bees forage owing to their remarkable ability to learn and memorize their cues. The effect of thiamethoxam on the memory of bees was studied through the proboscis extension reflex (PER). The bees that consumed higher doses of thiamethoxam (0.93–5.76 ng bee–1) showed lesser sensitivity to sucrose than those that consumed lower doses (0.03–0.64 ng bee–1). Bees sensitivity was least affected at the highest sucrose concentration (50% w/v). PER in trained and treated bees recorded after 2 and 24 h of consuming the various doses of thiamethoxam showed a significant reduction in memory (13.3–82.2% and 0.00–68.9% respectively). Field-level studies are required to validate the results and formulate strategies at the national level for safeguarding the bees.

Keywords


Apis mellifera, Memory, Proboscis Extension Reflex, Thiamethoxam, Sucrose Concentration.

References





DOI: https://doi.org/10.18520/cs%2Fv124%2Fi4%2F451-456