A vector-based strategy for olfactory navigation in Drosophila
Векторная стратегия обонятельной навигации у Drosophila
2026-07-22
SCID: 54.1/a69gxq5t
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Drosophilaedge trackingfan-shaped body FC2 neuronsolfactory navigationvector-based computations
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Abstract (AI)
Abstract For many species, odours serve as key navigational cues 1,2 . Although tracking an odour plume has been modelled as a reflexive process 3–5 , it remains unclear whether animals can use memories of their past odour encounters to infer the spatial structure of their chemical environment or their location within it. Here we developed a virtual-reality olfactory paradigm that allows head-fixed Drosophila to explore structured chemical landscapes, offering insight into how memory mechanisms shape their navigational strategies. We found that flies track an appetitive odour corridor by following its boundary, alternating between rapid counter-turns to exit the plume and directed returns to its edge. Using a combination of behavioural modelling, functional calcium imaging and neural perturbations, we show that this ‘edge tracking’ strategy relies on vector-based computations within the Drosophila central complex, in which flies store and dynamically update memories of the direction to return to the plume’s boundary. Consistent with this, we find that FC2 neurons within the fan-shaped body, which encode a fly’s navigational goal 6 , signal the direction back to the odour boundary when flies are outside the plume. Plume tracking thus engages components of a conserved navigational toolkit, in which flies can use directional memories to navigate through complex and shifting chemical landscapes.
Key Findings
1
Edge-tracking strategy depends on vector-based computations in the central complex that store and dynamically update direction memories to the plume boundary.
2
FC2 neurons in the fan-shaped body signal the direction back to the odour boundary when flies are outside the plume.
3
Flies track an appetitive odour corridor by following its boundary, alternating rapid counter-turns to exit the plume with directed returns to the edge.
4
Head-fixed Drosophila can explore structured chemical landscapes in a virtual-reality olfactory paradigm, revealing memory-based navigation.
5
Plume tracking recruits conserved navigational toolkit components, enabling use of directional memories to navigate complex, shifting chemical landscapes.
Research Object
Head-fixed Drosophila navigating structured olfactory (chemical) landscapes in a virtual-reality olfactory paradigm
Research Subject
Vector-based edge-tracking navigation: how flies store and dynamically update directional memories (vectors) to return to an odour-plume boundary, including the role of central complex circuits (FC2 neurons in the fan-shaped body) in encoding the direction to the plume edge
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2026-07-22
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