Determination of optical parameters of human breast tissue from spatially resolved fluorescence: a diffusion theory model
Optics and Photonics
Breast Neoplasms
Models, Theoretical
01 natural sciences
Diffusion
Spectrometry, Fluorescence
Reference Values
0103 physical sciences
Humans
Computer Simulation
Female
Breast
Monte Carlo Method
DOI:
10.1364/ao.41.004024
Publication Date:
2007-08-17T12:31:30Z
AUTHORS (4)
ABSTRACT
We report the measurement of optical transport parameters of pathologically characterized malignant tissues, normal tissues, and different types of benign tumors of the human breast in the visible wavelength region. A spatially resolved steady-state diffuse fluorescence reflectance technique was used to estimate the values for the reduced-scattering coefficient (mu(s)') and the absorption coefficient (mu(a)) of human breast tissues at three wavelengths (530, 550, and 590 nm). Different breast tissues could be well differentiated from one another, and different benign tumors could also be distinguished by their measured transport parameters. A diffusion theory model was developed to describe fluorescence light energy distribution, especially its spatial variation in a turbid and multiply scattering medium such as human tissue. The validity of the model was checked with a Monte Carlo simulation and also with different tissue phantoms prepared with polystyrene microspheres as scatterers, riboflavin as fluorophores, and methylene blue as absorbers.
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