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CARRASCO, D.

Publications and source records attributed to CARRASCO, D..

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Permethrin elicits chemoreceptive responses on different Anopheles gambiae sensory appendages.

BACKGROUNDNon-contact detection of pyrethroid insecticides by malaria mosquitoes has been unveiled and may contribute to the evolution of mosquito behavioral modifications against vector control tools. However, the mechanisms underlying this detection are not yet fully understood. It has been hypothesized that the spatial repellency of pyrethroids may be mediated by chemosensory receptors and/or via the activation of voltage-gated sodium channels (VGSCs). This study aimed to explore these two hypotheses by identifying which chemosensory appendages in Anopheles gambiae are involved in the non-contact detection of permethrin, a widely used pyrethroid in malaria control. RESULTSBehavioral responses to permethrin headspace were recorded in female An. gambiae, in which specific sensory appendages were either removed or coated with resin to impair their chemosensory function. Additionally, electrophysiological recordings were performed on different sensory appendages: antennae, palpi and tarsi, to characterize their electrophysiological activity after permethrin stimulation. The behavioral assays revealed that tarsi were primarily responsible for mediating mosquito takeoff responses after permethrin headspace delivery. This finding was supported by significant electrophysiological tarsal responses to the insecticide. In contrast, removal of the antennae did not alter behavioral responses, although electroantennogram recordings indicated neural activity in response to permethrin. The palps showed neither behavioral nor electrophysiological responses. CONCLUSIONThese findings indicate that permethrin is detected through two distinct sensory appendages, tarsi and antennae, but with varying behavioral output. Such appendage-specific detection favors the hypothesis that permethrin detection and the associated behavioral output is mediated by chemosensory receptors rather than by VGSCs. Nonetheless, further investigations are needed to identify the chemosensory receptors and pathways involved in pyrethroid insecticide detection in malaria mosquitoes.

neuroscience↗

Non-contact detection of pyrethroids widely used in vector control by Anopheles mosquitoes

Pyrethroids are the most widely used insecticides to control vector borne diseases including malaria. Physiological resistance mechanisms to these insecticides have been well described, whereas those for behavioral resistance remain overlooked. Field data suggest the presence of spatial sensory detection by Anopheles mosquitoes of the pyrethroid molecules used in insecticide-based control tools, such as long-lasting insecticide nets or insecticide residual spraying, opening the way to the emergence of a wide range of behavioral adaptations among malaria vectors. However, the spatial sensory detection of these molecules is controversial and needs to be demonstrated. The goal of this study was to behaviorally characterize the non-contact detection of three of the most common pyrethroids used for malaria vector control: permethrin, deltamethrin an -cypermethrin. To reach this goal, we recorded the behavior (takeoff response) of Anopheles gambiae pyrethroid-sensitive and resistant laboratory strains, as well as field collected mosquitoes from the Gambiae complex, when exposed to the headspace of bottles containing different doses of the insecticides at 25 and 35{degrees}C, in order to represent a range of laboratory and field temperatures. We found the proportion of laboratory susceptible and resistant female mosquitoes that took off was, in all treatments, dose and the temperature dependent. Sensitive mosquitoes were significantly more prone to take off only in the presence of -cypermethrin, whereas sensitive and resistant mosquitoes showed similar responses to permethrin and deltamethrin. Field-collected mosquitoes of the Gambiae complex were also responsive to permethrin, independently of the species identity (An. gambiae, An. coluzzi and An. arabiensis) or their genotypes for the kdr mutation, known to confer resistance to pyrethroids. The observed ability of Anopheles spp. mosquitoes to detect insecticides without contact could favor the evolution of behavioral modifications that may allow them to avoid or reduce the adverse effect of insecticides and thus, the development of behavioral resistance.

animal behavior and cognition↗