Author:
Singh Poonam,Kumar Pradeep,Pande Veena,Kumar Virendra,Dhiman Ramesh C.
Abstract
AbstractIn this study, we utilized an untargeted NMR metabolomics approach to identify the vector response in terms of metabolic profiling after temperature and insecticide exposure in comparison with the control. Clearly, temperature and insecticide exposure cause changes in the underlying metabolism, and the NMR metabolomic profile enables a direct examination of the immediate response of the vector to cope up with these changes. The present study was designed in four parts: A-Aedes aegypti were exposed to 40 °C for one-hour, DDT-4%, malathion-5%, and deltamethrin-0.05% separately and, part B-D; one-hour exposure at 35 °C and 40 °C temperatures followed by one-hour exposure to insecticide. The resultant metabolite profiles were compared with the control. In response to temperature and insecticide exposure, several metabolites and altered pathways were identified. Citrate, maltose, lipids, Nicotinate, Choline, Pyruvate and β-hydroxybutyrate were found as important components of major biological pathways such as tri-carboxylic acid cycle, branched amino acid degradation, glycolysis/gluconeogenesis, amino acid metabolism, lipid and carbohydrate metabolism, nucleotide PRPP pathway, and phospholipid metabolism. Furthermore, the results also suggest that the changes imposed by exposure to temperature and insecticides individually, are reversed with combined exposure, thus negating the impact of each other and posing a threat to the control of Aedes-borne diseases such as dengue, chikungunya, Zika and yellow fever.
Funder
DEPARTMENT OF SCEINCE AND TECHNOLOGY, Govt. of India
Publisher
Springer Science and Business Media LLC
Reference60 articles.
1. Delatte, H., Gimonneau, G., Triboire, A. & Fontenille, D. Influence of temperature on immature development, survival, longevity, fecundity, and gonotrophic cycles of Aedes albopictus, vector of chikungunya and dengue in the Indian Ocean. J. Med. Entomol. 46, 33–41. https://doi.org/10.1603/033.046.0105 (2009).
2. Singh, P., Yadav, Y., Saraswat, S. & Dhiman, R. C. Intricacies of using temperature of different niches for assessing impact on malaria transmission. Indian J. Med. Res. 144(1), 67–75. https://doi.org/10.4103/0971-5916.193285.PMID:27834328;PMCID:PMC5116901 (2016).
3. Couper, L. I. et al. How will mosquitoes adapt to climate warming?. Elife 17(10), e69630. https://doi.org/10.7554/eLife.69630.PMID:34402424;PMCID:PMC8370766 (2021).
4. Carrasco, D. et al. Behavioural adaptations of mosquito vectors to insecticide control. Curr. Opin. Insect. Sci. 34, 48–54 (2019).
5. Singh, R. K., Dhiman, R. C., Mittal, P. K. & Dua, V. K. Susceptibility status of dengue vectors against various insecticides in Koderma (Jharkhand), India. J. Vector Borne Dis. 48(2), 116–118 (2011) (PMID: 21715737).
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