Wide-field quantitative imaging of tissue microstructure using sub-diffuse spatial frequency domain imaging

DM McClatchy, EJ Rizzo, WA Wells, PP Cheney… - Optica, 2016 - opg.optica.org
Optica, 2016opg.optica.org
Localized measurements of scattering in biological tissue provide sensitivity to
microstructural morphology but have limited utility to wide-field applications, such as surgical
guidance. This study introduces sub-diffusive spatial frequency domain imaging (sd-SFDI),
which uses high spatial frequency illumination to achieve wide-field sampling of localized
reflectances. Model-based inversion recovers macroscopic variations in the reduced
scattering coefficient (μs′) and the phase function backscatter parameter (γ) …
Localized measurements of scattering in biological tissue provide sensitivity to microstructural morphology but have limited utility to wide-field applications, such as surgical guidance. This study introduces sub-diffusive spatial frequency domain imaging (sd-SFDI), which uses high spatial frequency illumination to achieve wide-field sampling of localized reflectances. Model-based inversion recovers macroscopic variations in the reduced scattering coefficient (μs′) and the phase function backscatter parameter (γ). Measurements in optical phantoms show quantitative imaging of user-tuned phase-function-based contrast with accurate decoupling of parameters that define both the density and the size-scale distribution of scatterers. Measurements of fresh ex vivo breast tissue samples revealed, for the first time, unique clustering of sub-diffusive scattering properties for different tissue types. The results support that sd-SFDI provides maps of microscopic structural biomarkers that cannot be obtained with diffuse wide-field imaging and characterizes spatial variations not resolved by point-based optical sampling.
opg.optica.org
以上显示的是最相近的搜索结果。 查看全部搜索结果