Optical volumetric projection for fast 3D imaging through circularly symmetric pupil engineering

Monitoring and manipulating neuronal activities with optical microscopy desires a method where light can be focused or projected over a long axial range so that large brain tissues (>100 [Formula: see text] thick) can be simultaneously imaged, and specific brain regions can be optogenetically sti...

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Veröffentlicht in:Biomedical optics express 2018-02, Vol.9 (2), p.437-446
Hauptverfasser: Cai, Bo, Zhai, Xiaomin, Wang, Zeguan, Shen, Yan, Xu, Ronald, Smith, Zachary J, Wen, Quan, Chu, Kaiqin
Format: Artikel
Sprache:eng
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Zusammenfassung:Monitoring and manipulating neuronal activities with optical microscopy desires a method where light can be focused or projected over a long axial range so that large brain tissues (>100 [Formula: see text] thick) can be simultaneously imaged, and specific brain regions can be optogenetically stimulated without the need for slow optical refocusing. However, the micron-scale resolution required in neuronal imaging yields a depth of field of less than 10 [Formula: see text] in conventional imaging systems. We propose to use a circularly symmetric phase mask to extend the depth of field. A numerical study shows that our method maintains both the peak and the shape of the point spread function vs the axial position better than current methods. Imaging of a 3D bead suspension and sparsely labelled thick brain tissue confirms the feasibility of the system for fast volumetric imaging.
ISSN:2156-7085
2156-7085
DOI:10.1364/BOE.9.000437