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Three dimensional optical angiography

Optics Express · 2007 · Vol. 15(7) · pp. 4083–4083
Ruikang K. WangSteven L. JacquesZhenhe MaSawan HurstStephen R. HansonAndrás Gruber

Abstract

With existing optical imaging techniques three-dimensional (3-D) mapping of microvascular perfusion within tissue beds is severely limited by the efficient scattering and absorption of light by tissue. To overcome these limitations we have developed a method of optical angiography (OAG) that can generate 3-D angiograms within millimeter tissue depths by analyzing the endogenous optical scattering signal from an illuminated sample. The technique effectively separates the moving and static scattering elements within tissue to achieve high resolution images of blood flow, mapped into the 3-D optically sectioned tissue beds, at speeds that allow for perfusion assessment in vivo. Its development has its origin in Fourier domain optical coherence tomography. We used OAG to visualize the cerebral microcirculation, of adult living mice through the intact cranium, measurements which would be difficult, if not impossible, with other optical imaging techniques.

Optical Coherence Tomography ApplicationsPhotoacoustic and Ultrasonic ImagingOptical Imaging and Spectroscopy TechniquesOpticsOptical coherence tomographyScatteringMaterials scienceAngiographyMicrocirculationLight scatteringOptical tomographyPreclinical imagingBiomedical engineering
Citations
626
FWCI
18.22
field-weighted impact
References
39
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100%
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References
Theory, developments and applications of optical coherence tomography
Journal of Physics D Applied Physics · 2005 · 628 citations
Optical coherence angiography
Optics Express · 2006 · 607 citations
Optical Coherence Tomography
Science · 1991 · 13,588 citations
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