Multi-neuronal recording in unrestrained animals with all acousto-optic random-access line-scanning two-photon microscopy

Author:

Yamaguchi Akihiro,Wu Rui,McNulty Paul,Karagyozov Doycho,Mihovilovic Skanata Mirna,Gershow Marc

Abstract

To understand how neural activity encodes and coordinates behavior, it is desirable to record multi-neuronal activity in freely behaving animals. Imaging in unrestrained animals is challenging, especially for those, like larval Drosophila melanogaster, whose brains are deformed by body motion. A previously demonstrated two-photon tracking microscope recorded from individual neurons in freely crawling Drosophila larvae but faced limits in multi-neuronal recording. Here we demonstrate a new tracking microscope using acousto-optic deflectors (AODs) and an acoustic GRIN lens (TAG lens) to achieve axially resonant 2D random access scanning, sampling along arbitrarily located axial lines at a line rate of 70 kHz. With a tracking latency of 0.1 ms, this microscope recorded activities of various neurons in moving larval Drosophila CNS and VNC including premotor neurons, bilateral visual interneurons, and descending command neurons. This technique can be applied to the existing two-photon microscope to allow for fast 3D tracking and scanning.

Funder

Division of Physics

National Institute of Biomedical Imaging and Bioengineering

Publisher

Frontiers Media SA

Subject

General Neuroscience

Reference81 articles.

1. Multifocus microscopy with precise color multi-phase diffractive optics applied in functional neuronal imaging;Abrahamsson;Biomed. Opt. Exp,2016

2. Fast spatial beam shaping by acousto-optic diffraction for 3D non-linear microscopy;Akemann;Opt. Exp,2015

3. “Ultra-fast 3D scanning and holographic illumination in non-linear microscopy using acousto-optic deflectors,”;Akemann,2017

4. Fast optical recording of neuronal activity by three-dimensional custom-access serial holography;Akemann;Nat. Methods,2022

5. Performance bounds on single-particle tracking by fluorescence modulation;Berglund;Appl. Phys. B,2006

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