Active Plants, Animals & Ecology Genetics & Molecular Biology

A whole-brain connectome of the female Aedes aegypti mosquito

In plain English

AI plain-English summary

Female *Aedes aegypti* mosquitoes bite people, and scientists are now building a complete wiring diagram of their brains to understand why. This matters because only female mosquitoes seek blood, and they do so by processing a complex mix of smells, heat, and other cues. Current genetic tools can probe the mosquito’s sensory organs, but the central brain—where these cues are integrated to trigger host-seeking—remains poorly mapped. Without that map, researchers cannot pinpoint the neural circuits that drive a mosquito to bite. The team will produce a synapse-resolution electron microscopy volume of an adult female brain, proofread and annotated, and release it on a public online platform with navigation tools. Using this connectome, they will create detailed atlases of the chemosensory system and define the circuits involved in host-seeking. They will also compare it to the fruit fly connectome, exploiting the fact that the two species have broadly similar brains but dramatically different feeding strategies. This is fundamental science. If successful, it will not immediately stop a single mosquito bite. But it will give researchers a concrete platform to explore thermosensation, feeding specialisations, and navigational circuits—knowledge that could, down the line, inform new strategies for disrupting disease transmission.

View original technical description
The mosquito Aedes aegypti transmits arboviruses including yellow fever, dengue, and Zika. Females integrate chemosensory, thermal, and other sensory cues when seeking their preferred hosts for a blood meal. Understanding how these cues are processed to regulate host-seeking is an active area of research with major implications for global health. Although the sensory periphery is accessible via genetic tools and physiological techniques, characterising the central brain in light-level studies has been more difficult. We will comprehensively map the brain of an adult Ae. aegypti female by proofreading, annotating, and analysing an imaged, synapse- resolution electron microscopy (EM) volume. This dataset will be made publicly available on a dedicated online platform with user-friendly navigation tools and data visualisation modules, ensuring accessibility for researchers and the interested public worldwide. With this connectome, we will produce detailed atlases of the chemosensory system and define sensory circuits involved in host-seeking. We will leverage Drosophila melanogaster connectomes for cell typing and to kickstart comparative connectomics, benefiting from related species with broadly similar brains but dramatically distinct feeding strategies. This connectome will provide a platform for mosquito researchers to explore exciting areas including thermosensation, feeding specialisations, descending control of behaviour, auditory circuits, circadian rhythm, and navigational circuits.

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Researchers

Elizabeth Marin (EPMC Awardee)Gregory Jefferis (EPMC Awardee)Meg Younger (EPMC Awardee)Wei-Chung Lee (EPMC Awardee)

Related Research

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Original classification

Discovery Award

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