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Subcellular resolution three-dimensional light-field imaging with genetically encoded voltage indicators.
Quicke, Peter; Howe, Carmel L; Song, Pingfan; Jadan, Herman V; Song, Chenchen; Knöpfel, Thomas; Neil, Mark; Dragotti, Pier L; Schultz, Simon R; Foust, Amanda J.
Afiliação
  • Quicke P; Imperial College London, Department of Bioengineering, London, United Kingdom.
  • Howe CL; Imperial College London, Centre for Neurotechnology, London, United Kingdom.
  • Song P; Imperial College London, Department of Bioengineering, London, United Kingdom.
  • Jadan HV; Imperial College London, Centre for Neurotechnology, London, United Kingdom.
  • Song C; Imperial College London, Department of Electrical and Electronic Engineering, London, United Kingdom.
  • Knöpfel T; Imperial College London, Department of Electrical and Electronic Engineering, London, United Kingdom.
  • Neil M; Imperial College London, Department of Brain Sciences, London, United Kingdom.
  • Dragotti PL; Imperial College London, Department of Brain Sciences, London, United Kingdom.
  • Schultz SR; Imperial College London, Centre for Neurotechnology, London, United Kingdom.
  • Foust AJ; Imperial College London, Department of Physics, London, United Kingdom.
Neurophotonics ; 7(3): 035006, 2020 Jul.
Article em En | MEDLINE | ID: mdl-32904628
ABSTRACT

Significance:

Light-field microscopy (LFM) enables high signal-to-noise ratio (SNR) and light efficient volume imaging at fast frame rates. Voltage imaging with genetically encoded voltage indicators (GEVIs) stands to particularly benefit from LFM's volumetric imaging capability due to high required sampling rates and limited probe brightness and functional sensitivity.

Aim:

We demonstrate subcellular resolution GEVI light-field imaging in acute mouse brain slices resolving dendritic voltage signals in three spatial dimensions.

Approach:

We imaged action potential-induced fluorescence transients in mouse brain slices sparsely expressing the GEVI VSFP-Butterfly 1.2 in wide-field microscopy (WFM) and LFM modes. We compared functional signal SNR and localization between different LFM reconstruction approaches and between LFM and WFM.

Results:

LFM enabled three-dimensional (3-D) localization of action potential-induced fluorescence transients in neuronal somata and dendrites. Nonregularized deconvolution decreased SNR with increased iteration number compared to synthetic refocusing but increased axial and lateral signal localization. SNR was unaffected for LFM compared to WFM.

Conclusions:

LFM enables 3-D localization of fluorescence transients, therefore eliminating the need for structures to lie in a single focal plane. These results demonstrate LFM's potential for studying dendritic integration and action potential propagation in three spatial dimensions.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Neurophotonics Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Reino Unido

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Neurophotonics Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Reino Unido