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The yellow fever mosquito Ae. aegypti can transmit many deadly diseases including yellow fever, dengue fever and Zika fever, causing tremendous distress and loss of life. Mosquitoes make use of multiple cues such as CO2, skin odor, and body heat to locate their hosts1. Given that both humans and other warm-blooded animals produce CO2 and have similar body temperatures, it seems likely that female Ae. aegypti rely primarily on skin odor for host discrimination2. This creates a complex picture, however, with one early study isolating more than 300 compounds from human skin emanations3. Further behavioral assays have indicated that a number of these compounds evoke behavioral responses in Ae. aegypti4,5,6,7, but precisely how these compounds are detected by the mosquito remains largely unknown. Recent research by our group has identified several human odorants that may be involved in Ae. aegypti host-seeking activity, though their roles have yet to be confirmed by further behavioral assays8. How these essential human odorants are decoded in the peripheral sensory system of Ae. aegypti has yet to be established.
Insects detect odorants through the chemosensory sensilla on their olfactory appendages. Inside each of the sensilla, different olfactory receptors, including odorant receptors (ORs), ionotropic receptors (IRs) and gustatory receptors (GRs), are expressed on the membrane of olfactory sensory neurons9. These ORs are responsible for sensing many odorants encountered by insects, especially the odors associated with food, hosts and mating partners10,11,12,13. A previous study focusing on deorphanizing the function of ORs in Anopheles gambiae using the Xenopus expression system coupled with a two-electrode voltage clamp has found that Anopheles ORs are specifically tuned to the aromatics that are the major components in human emanations14. A recent genome study identified up to 117 OR genes in Ae. aegypti15. Consequently, a way to systematically address the functions of these Aedes ORs in response to biologically or ecologically important odorants such as human odors or oviposition stimuli would provide useful information for those seeking to further understand the chemical ecology or neuroethology of Ae. aegypti.
The two-electrode voltage clamp (TEVC) technique was originally developed to examine the function of membrane ion channels in the mid-1990s16,17. Since then, TEVC has been used to investigate ORs from a number of different insect species14,18,19,20,21,22,23,24,25,26,27,28,29,30,31,32,33,34. This functional examination of ORs has substantially contributed to answering important ecological questions in insects, including: 1) How do insects locate food sources? 2) How are they attracted by the volatile sex pheromones released by their mating partners? 3) How do they find a perfect oviposition site for their offspring? and 4) Are there any compounds, plant-derived or synthetic, that can efficiently protect humans from biting bugs? Answers to these questions are crucial for controlling important disease vectors such as mosquitoes.
A number of other approaches, including those based on the human embryonic kidney cell line 293 (HEK293), the Drosophila empty neuron system, zinc-finger nuclease, transcription activator-like effector nuclease, and the CRISPR/Cas9 gene editing system, have also been used in OR functional studies12,20,35,36,37. However, these techniques all require the skills of an experienced molecular biologist and involve multiple potentially confounding factors. TEVC/oocyte expression is capable of directly measuring odor-evoked receptor currents and ion conductance and has the added advantage of the speedy quick setup time required to express receptors from cRNA. In this study, we therefore used TEVC to examine the responses of one Ae. aegypti OR55 (AaegOR55) against several odorants with potential biological relevance, revealing that oocytes expressed with AaegOR55•AaegOrco showed a dose-dependent response to the human odorant benzaldehyde.