AI Article Synopsis

  • Animals use compensatory actions, based on global visual motion cues called optic-flow, to maintain stability and efficiently navigate their surroundings.
  • This study focuses on the fruit fly (Drosophila) to uncover specific neural circuits involved in visual course control, rather than relying solely on the simpler optomotor response traditionally studied in insects.
  • The research reveals that electrical coupling between optic-flow-sensitive neurons, along with chemical synapses in the HS-H2 network, is crucial for proper navigation and turning behaviors, highlighting a new role for gap junctions in these processes.

Article Abstract

Animals rely on compensatory actions to maintain stability and navigate their environment efficiently. These actions depend on global visual motion cues known as optic-flow. While the optomotor response has been the traditional focus for studying optic-flow compensation in insects, its simplicity has been insufficient to determine the role of the intricate optic-flow processing network involved in visual course control. Here, we reveal a series of course control behaviours in Drosophila and link them to specific neural circuits. We show that bilateral electrical coupling of optic-flow-sensitive neurons in the fly's lobula plate are required for a proper course control. This electrical interaction works alongside chemical synapses within the HS-H2 network to control the dynamics and direction of turning behaviours. Our findings reveal how insects use bilateral motion cues for navigation, assigning a new functional significance to the HS-H2 network and suggesting a previously unknown role for gap junctions in non-linear operations.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11470938PMC
http://dx.doi.org/10.1038/s41467-024-53173-wDOI Listing

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