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Compressive hyperspectral time-resolved wide-field fluorescence lifetime imaging.


ABSTRACT: Spectrally resolved fluorescence lifetime imaging1-3 and spatial multiplexing1,4,5 have offered information content and collection-efficiency boosts in microscopy, but efficient implementations for macroscopic applications are still lacking. An imaging platform based on time-resolved structured light and hyperspectral single-pixel detection has been developed to perform quantitative macroscopic fluorescence lifetime imaging (MFLI) over a large field of view (FOV) and multiple spectral bands simultaneously. The system makes use of three digital micromirror device (DMD)-based spatial light modulators (SLMs) to generate spatial optical bases and reconstruct N by N images over 16 spectral channels with a time-resolved capability (~40 ps temporal resolution) using fewer than N2 optical measurements. We demonstrate the potential of this new imaging platform by quantitatively imaging near-infrared (NIR) Förster resonance energy transfer (FRET) both in vitro and in vivo. The technique is well suited for quantitative hyperspectral lifetime imaging with a high sensitivity and paves the way for many important biomedical applications.

SUBMITTER: Pian Q 

PROVIDER: S-EPMC5726531 | biostudies-literature | 2017

REPOSITORIES: biostudies-literature

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Compressive hyperspectral time-resolved wide-field fluorescence lifetime imaging.

Pian Qi Q   Yao Ruoyang R   Sinsuebphon Nattawut N   Intes Xavier X  

Nature photonics 20170605


Spectrally resolved fluorescence lifetime imaging<sup>1-3</sup> and spatial multiplexing<sup>1,4,5</sup> have offered information content and collection-efficiency boosts in microscopy, but efficient implementations for macroscopic applications are still lacking. An imaging platform based on time-resolved structured light and hyperspectral single-pixel detection has been developed to perform quantitative macroscopic fluorescence lifetime imaging (MFLI) over a large field of view (FOV) and multip  ...[more]

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