High speed functional imaging with source localized multifocal two-photon microscopy

Peter Quicke, Stephanie Reynolds, Mark Neil, Thomas Knöpfel, Simon R. Schultz, Amanda J. Foust

Research output: Contribution to journalJournal articlepeer-review

5 Citations (Scopus)

Abstract

Multifocal two-photon microscopy (MTPM) increases imaging speed over single-focus scanning by parallelizing fluorescence excitation. The imaged fluorescence’s susceptibility to crosstalk, however, severely degrades contrast in scattering tissue. Here we present a source-localized MTPM scheme optimized for high speed functional fluorescence imaging in scattering mammalian brain tissue. A rastered line array of beamlets excites fluorescence imaged with a complementary metal-oxide-semiconductor (CMOS) camera. We mitigate scattering-induced crosstalk by temporally oversampling the rastered image, generating grouped images with structured illumination, and applying Richardson-Lucy deconvolution to reassign scattered photons. Single images are then retrieved with a maximum intensity projection through the deconvolved image groups. This method increased image contrast at depths up to 112 µm in scattering brain tissue and reduced functional crosstalk between pixels during neuronal calcium imaging. Source-localization did not affect signal-to-noise ratio (SNR) in densely labeled tissue under our experimental conditions. SNR decreased at low frame rates in sparsely labeled tissue, with no effect at frame rates above 50 Hz. Our non-descanned source-localized MTPM system enables high SNR, 100 Hz capture of fluorescence transients in scattering brain, increasing the scope of MTPM to faster and smaller functional signals.

Original languageEnglish
Article number319174
Pages (from-to)3678-3693
Number of pages16
JournalBiomedical Optics Express
Volume9
Issue number8
Early online date12 Jul 2018
DOIs
Publication statusPublished - 1 Aug 2018

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