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Real-time in vivo computed optical interferometric tomography.


ABSTRACT: High-resolution real-time tomography of scattering tissues is important for many areas of medicine and biology1-6. However, the compromise between transverse resolution and depth-of-field in addition to low sensitivity deep in tissue continue to impede progress towards cellular-level volumetric tomography. Computed imaging has the potential to solve these long-standing limitations. Interferometric synthetic aperture microscopy (ISAM)7-9 is a computed imaging technique enabling high-resolution volumetric tomography with spatially invariant resolution. However, its potential for clinical diagnostics remains largely untapped since full volume reconstructions required lengthy postprocessing, and the phase-stability requirements have been difficult to satisfy in vivo. Here we demonstrate how 3-D Fourier-domain resampling, in combination with high-speed optical coherence tomography (OCT), can achieve high-resolution in vivo tomography. Enhanced depth sensitivity was achieved over a depth-of-field extended in real time by more than an order of magnitude. This work lays the foundation for high-speed volumetric cellular-level tomography.

SUBMITTER: Ahmad A 

PROVIDER: S-EPMC3742112 | biostudies-literature | 2013 Jun

REPOSITORIES: biostudies-literature

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Real-time <i>in vivo</i> computed optical interferometric tomography.

Ahmad Adeel A   Shemonski Nathan D ND   Adie Steven G SG   Kim Hee-Seok HS   Hwu Wen-Mei W WM   Carney P Scott PS   Boppart Stephen A SA  

Nature photonics 20130601 6


High-resolution real-time tomography of scattering tissues is important for many areas of medicine and biology<sup>1-6</sup>. However, the compromise between transverse resolution and depth-of-field in addition to low sensitivity deep in tissue continue to impede progress towards cellular-level volumetric tomography. Computed imaging has the potential to solve these long-standing limitations. Interferometric synthetic aperture microscopy (ISAM)<sup>7-9</sup> is a computed imaging technique enabl  ...[more]

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