Optimization and dissemination of non-linear Acousto-Optic Lens two-photon microscopy for high speed multiscale 3D imaging

Information

  • Research Project
  • 10005501
  • ApplicationId
    10005501
  • Core Project Number
    U01NS113273
  • Full Project Number
    5U01NS113273-02
  • Serial Number
    113273
  • FOA Number
    RFA-NS-18-019
  • Sub Project Id
  • Project Start Date
    9/1/2019 - 5 years ago
  • Project End Date
    8/31/2022 - 2 years ago
  • Program Officer Name
    TALLEY, EDMUND M
  • Budget Start Date
    9/1/2020 - 4 years ago
  • Budget End Date
    8/31/2021 - 3 years ago
  • Fiscal Year
    2020
  • Support Year
    02
  • Suffix
  • Award Notice Date
    8/17/2020 - 4 years ago

Optimization and dissemination of non-linear Acousto-Optic Lens two-photon microscopy for high speed multiscale 3D imaging

PROJECT SUMMARY To understand brain function, it is essential to identify how information is represented in neuronal population activity and how it is transformed by individual neurons as it flows through microcircuits. ?Two-photon (2P) microscopy is a core tool for this because it enables neuronal activity to be monitored at high spatial resolution deep within brain tissue in behaving animals?. ?However, ?t?he temporal resolution of conventional galvanometer-based 2P microscopy severely limits measurements of fast signaling in 3D neuronal circuits. Acousto-optic lens (AOL) microscopy, which enables fast focussing and selective imaging of regions of interest distributed within the imaging volume, has substantially improved the temporal resolution of 3D 2P microscopy. But current AOL microscopes, which rely on ?linear acoustic drive waveforms, suffer from limitations that make them ine?fficient to monitor signaling in structures that project in the Z dimension. ?Each change in the focus requires a 24 ?µ?s ?dead time? to refill the AOL aperture and continuous line scanning is restricted to the selected X-Y focal plane, limiting imaging rates for 3D dendritic trees to a few Hz, rather than the 100-1000 Hz required for monitoring neurotransmitter reporters and voltage indicators. ?The main aim of this project is to optimize and disseminate ?nonlinear ?AOL 3D microscopy, a technology we have invented to overcome these limitations by enabling ultra-fast line scanning (up to 40 kHz) in any arbitrary direction in X, Y and Z. By developing a prototype ?nonlinear AOL 2P microscope with real time correction of brain movement, we have demonstrated the performance of this technology for high-speed multiscale 3D imaging of neural circuits in awake behaving animals. We will build on these results by optimizing ?nonlinear AOL microscopy for imaging entire 3D dendritic trees and the surrounding neuronal population at unprecedented speeds. We will develop variants of this dendritic ?arboreal imaging? approach to provide low spatial resolution, ultra-high-speed 3D imaging (up to 1 kHz) by combining the fast scanning and adaptive optics properties of ?nonlinear ?AOLs. We will also extend the real time FPGA analysis used in our closed loop 3D movement correction to enable ?attentional imaging? where active regions of a dendritic tree, or circuit, are rapidly detected and imaged at higher spatio-temporal resolution. These applications ?will provide the temporal resolution required for monitoring voltage across the entire 3D dendritic tree of pyramidal cells in awake animals for the first time. Moreover, attentional imaging will enable neurotransmitter release to be mapped at high spatiotemporal resolution. Low cost dissemination of this powerful new technology will be achieved by providing US labs and an imaging facility with compact ?nonlinear AOL modules that will be added to their existing conventional 2P microscopes. By extending our open source microscope GUI software, standardizing data formats with NWB2 and refining automated analysis pipelines, we will also deliver reliable user-friendly microscope control and a semiautomated data analysis framework for the collaborators to carry out experiments on a range of different neural circuits.

IC Name
NATIONAL INSTITUTE OF NEUROLOGICAL DISORDERS AND STROKE
  • Activity
    U01
  • Administering IC
    NS
  • Application Type
    5
  • Direct Cost Amount
    439699
  • Indirect Cost Amount
    27041
  • Total Cost
    466740
  • Sub Project Total Cost
  • ARRA Funded
    False
  • CFDA Code
    853
  • Ed Inst. Type
  • Funding ICs
    NIMH:408000\NINDS:58740\
  • Funding Mechanism
    Non-SBIR/STTR RPGs
  • Study Section
    ZNS1
  • Study Section Name
    Special Emphasis Panel
  • Organization Name
    UNIVERSITY COLLEGE LONDON
  • Organization Department
  • Organization DUNS
    225410919
  • Organization City
    LONDON
  • Organization State
  • Organization Country
    UNITED KINGDOM
  • Organization Zip Code
    WC1E 6BT
  • Organization District
    UNITED KINGDOM