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March 7, 2026Journal of Experimental Biology2 citationsOpen Access

The role of haltere campaniform sensilla on equilibrium reflexes of the fruit fly, Drosophila melanogaster

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TSTarun Kumar SharmaASAnne SustarJOJaison J. Omoto

Key Points

  • The study aims to directly demonstrate the role of haltere campaniform sensilla in equilibrium reflexes during flight stabilization in fruit flies.
  • Utilized Gal4 driver lines for specific expression in populations of campaniform neurons.
  • Recorded equilibrium responses of tethered Drosophila melanogaster flies during yaw axis rotation.
  • Genetically silenced or ablated varying numbers of campaniform sensilla to assess effects on motor responses.
  • The magnitude of wing and head motor responses decreased linearly as more campaniform sensilla were genetically silenced or ablated.
  • Significant evidence supporting the involvement of campaniform sensilla in detecting angular velocity during flight.

Abstract

Flying animals use a combination of sensory modalities to maintain stable flight in the face of external and internal perturbations. Although insects rely extensively on vision for this task, members of the order Diptera possess specialized mechanosensory organs called halteres, which contain hundreds of strain-sensing campaniform sensilla that encode forces on the base of the structures as they oscillate during flight. Although the importance of halteres for flight stabilization is supported by past experiments involving surgical ablation or artificial manipulation, the requirement of the campaniform sensilla themselves has yet to be directly demonstrated. We investigated the role of haltere campaniform sensilla in the fruit fly, Drosophila melanogaster, by using a collection of Gal4 driver lines which are expressed in different populations of campaniform neurons while recording the equilibrium responses of tethered flies subjected to rotation about their yaw axis. We show that the magnitude of the wing and head motor responses of flies decrease linearly with increasing number of campaniform sensilla genetically silenced or ablated, providing direct evidence for the involvement of these mechanosensory structures in the detection of angular velocity during flight.

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Cite This Study

Sharma et al. (2026) studied this question.

synapsesocial.com/papers/69abc1f65af8044f7a4eb23chttps://doi.org/10.1242/jeb.250431
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