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Kilohertz frame-rate two-photon tomography.

Abbas Kazemipour | Ondrej Novak | Daniel Flickinger | Jonathan S Marvin | Ahmed S Abdelfattah | Jonathan King | Philip M Borden | Jeong Jun Kim | Sarah H Al-Abdullatif | Parker E Deal | Evan W Miller | Eric R Schreiter | Shaul Druckmann | Karel Svoboda | Loren L Looger | Kaspar Podgorski
Nature methods | 2019

Point-scanning two-photon microscopy enables high-resolution imaging within scattering specimens such as the mammalian brain, but sequential acquisition of voxels fundamentally limits its speed. We developed a two-photon imaging technique that scans lines of excitation across a focal plane at multiple angles and computationally recovers high-resolution images, attaining voxel rates of over 1 billion Hz in structured samples. Using a static image as a prior for recording neural activity, we imaged visually evoked and spontaneous glutamate release across hundreds of dendritic spines in mice at depths over 250 µm and frame rates over 1 kHz. Dendritic glutamate transients in anesthetized mice are synchronized within spatially contiguous domains spanning tens of micrometers at frequencies ranging from 1-100 Hz. We demonstrate millisecond-resolved recordings of acetylcholine and voltage indicators, three-dimensional single-particle tracking and imaging in densely labeled cortex. Our method surpasses limits on the speed of raster-scanned imaging imposed by fluorescence lifetime.

Pubmed ID: 31363222

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Associated grants

  • Agency: NINDS NIH HHS, United States
    Id: R01 NS098088
  • Agency: NIGMS NIH HHS, United States
    Id: R35 GM119855

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MATLAB (tool)

RRID:SCR_001622

Multi paradigm numerical computing environment and fourth generation programming language developed by MathWorks. Allows matrix manipulations, plotting of functions and data, implementation of algorithms, creation of user interfaces, and interfacing with programs written in other languages, including C, C++, Java, Fortran and Python. Used to explore and visualize ideas and collaborate across disciplines including signal and image processing, communications, control systems, and computational finance.

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ScanImage (tool)

RRID:SCR_014307

Open source software application for laser scanning microscopy, electrophysiology, laser scanning photostimulation, and other physiological methods focused on neurobiology. Used to control laser scanning microscopes without need for custom data acquisition hardware. Standard data acquisition boards are used to acquire data and control laser scanning. The tasks of signal integration and image processing are placed on the computer CPU. Multiple versions of ScanImage are available, each with their own features.

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C57BL/6NCrl (tool)

RRID:IMSR_CRL:027

Mus musculus with name C57BL/6NCrl from IMSR.

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