Completed Genetics & Molecular Biology Brain & Nervous System

A high-quality connectome of the complete adult Drosophila central nervous system

In plain English

AI plain-English summary

Scientists are building the first complete wiring diagram of an adult fruit fly's entire central nervous system—a map of every neuron and every connection between them. This matters because no one has ever mapped a complete nervous system for any animal capable of complex behaviour. Existing fly brain maps are partial: they miss the nerve cord that controls movement, or they lack both hemispheres. Without a full map, researchers cannot trace how sensory signals travel from the fly's eyes and antennae through its brain and down to its legs and wings. That gap makes it impossible to understand how the nervous system coordinates behaviours like decision-making, memory recall, or flexible movement. If the project succeeds, it will give more than 200 labs worldwide a shared reference tool. Biologists will use it to study how neural circuits produce specific behaviours. Theoretical neuroscientists will analyse a complete, biologically realistic network—something never available before. The team expects general principles to emerge that apply to all nervous systems, including human ones. This is fundamental science: no immediate practical application, but the kind of foundational knowledge that has historically enabled unexpected breakthroughs in medicine, robotics, and artificial intelligence.

View original technical description
Building on advances during our successful connectomics collaboration (2016-20), we now propose a very ambitious new goal: a complete, high-quality connectome for the male Drosophila central nervous system (CNS). With Wellcome support and leveraging Janelia’s unique electron microscopy imaging capability, we could turn image data into a fully analysed connectome. This would be the first CNS connectome of an animal with complex motor and cognitive behaviours. In contrast to existing fly datasets, it will be bilaterally complete, include brain and nerve cord and have intact sensory-motor connectivity. This connectome should have an enormous impact on the understanding of CNS-spanning circuitry underlying complex behaviour. We will publicly release initial draft and high-quality versions as soon as they are complete. We will immediately use it to study multisensory integration, memory recall, decision making, modification of brain states, the flexible organisation of motor behaviour, and sexually dimorphic circuits. It will provide a critical resource for >200 labs worldwide studying Drosophila neurobiology (with impacts on developmental biology and molecular cell atlases) and provide new opportunities for theoretical neuroscientists to study complete, biologically-defined neural networks in a richly investigated organism. We expect general principles, applicable to all nervous systems, including those of humans, to emerge.

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Researchers

Gerald Rubin (EPMC Awardee)Gregory Jefferis (EPMC Awardee)Gwyneth Card (EPMC Awardee)Matthias Landgraf (EPMC Awardee)Scott Waddell (EPMC Awardee)

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Original classification

Collaborative Award in Science

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