G-Protein Coupled Receptors as Emerging Molecular Targets for Next-Generation Insect Pest Management
Keywords:
GPCRs, Neuropeptide receptors, RNA interference, CRISPR/Cas9, Physiological effects, Novel pest management, Signalling pathwayAbstract
Traditional chemical insecticides have been used for crop protection for year’s exhibit significant drawbacks. Pests may develop resistance to insecticides and the chemicals remain in the soil and water for long time. Furthermore, insecticides kill insects that are beneficial, such as bees and wasps. Scientists now explore more targeted approaches, focusing on the interference with G protein-coupled receptors (GPCRs), which are "molecular switches" within the insects controlling development, feeding, mating and behaviours. Due to the significance of these switches, targeting them is a promising way of eliminating pests without damaging effects on other organisms and the environment caused by traditional chemical insecticides. This article examines functioning of these receptors, including those involved in hormonal and neuropeptide signalling. Moreover, it describes recent methods developed for targeting GPCRs in insects, including RNA interference, CRISPR/Cas9-based genetic modification, computer-assisted drug design and virtual screening of molecules. While there are some obstacles in the development of such insecticides due to the limited knowledge about the receptors and difficulties in delivery of drugs to pests, rapid progress in genetics and computational biology contributes to the development of safer and smarter insecticides.
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