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April 30, 2026Nature Communications2 citationsOpen Access

High-speed whole-brain imaging in Drosophila

WGWayan GautheyALAlbert LinOAOsama M. Ahmed

Key Points

  • To enhance the speed of brain-wide imaging in Drosophila, enabling accurate capture of rapid neural activity.
  • Developed a specialized microscope and LBM module for flies.
  • Recorded brain-wide calcium signals in adult flies at 28 or 60 volumes per second.
  • Combined temporal super-resolution with LBM data for detailed recordings of courtship song responses.
  • Identified fast-timescale auditory responses missed by traditional methods.
  • Achieved high spatial and temporal resolution in whole-brain activity capture.
  • Validated LBM as an effective tool for studying complex neural dynamics in Drosophila.

Abstract

Recent advances in brain-wide recordings of small animals such as worms, fish, and flies have revealed complex activity involving large populations of neurons. In the Drosophila brain, with about 140,000 neurons, brain-wide recordings have been critical to uncovering widespread sensory and motor activity. However, current limitations in volumetric imaging rates hinder the accurate capture of fast neural dynamics. To improve the speed of volumetric imaging in Drosophila, we leverage the recently introduced light beads microscopy (LBM) method. We built a microscope and a LBM module tailored to fly brain experiments and used it to record brain-wide calcium signals in adult behaving flies at either 28 volumes per second or at 60 volumes per second (when selecting the central brain alone). We uncover fast-timescale auditory responses that are missed with standard volumetric imaging. We also demonstrate how temporal super-resolution can be combined with LBM data to uncover responses to single Drosophila courtship song pulses. This establishes LBM as a viable tool for capturing whole-brain activity at high spatial and temporal resolution in the fly. Gauthey and colleagues leverage the light beads microscopy method for high-speed whole-brain imaging in behaving Drosophila, revealing fast auditory responses missed by conventional two-photon microscopy.

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Cite This Study

Gauthey et al. (2026) studied this question.

synapsesocial.com/papers/69f2f19c1e5f7920c6387453https://doi.org/10.1038/s41467-026-72437-1
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