• DocumentCode
    810721
  • Title

    Determination of epithelial tissue scattering coefficient using confocal microscopy

  • Author

    Collier, Tom ; Arifler, Dizem ; Malpica, Anais ; Follen, Michele ; Richards-Kortum, Rebecca

  • Author_Institution
    Depts. of Biomed. Eng., Univ. of Texas, Austin, TX, USA
  • Volume
    9
  • Issue
    2
  • fYear
    2003
  • Firstpage
    307
  • Lastpage
    313
  • Abstract
    Most models of light propagation through tissue assume the scattering properties of the various tissue layers are the same. The authors present evidence that the scattering coefficient of normal cervical epithelium is significantly lower than values previously reported for bulk epithelial tissue. They estimated the scattering coefficient of normal and precancerous cervical epithelium using measurements of the reflectance as a function of depth from confocal images. Reflectance measurements were taken from ex vivo cervical biopsies and fit to an exponential function based upon Beer´s law attenuation. The mean scattering coefficients derived were 22 cm-1 for normal tissue and 69 cm-1 for precancerous tissue. These values are significantly lower than previously reported for bulk epithelial tissues and suggest that scattering of bulk tissue is dominated by the stroma. They also suggest that computational models to describe light propagation in epithelial tissue must incorporate different scattering coefficients for the epithelium and stroma. Further, the lower scattering of the epithelium suggests greater probing depths for fiber optic probes used by optical diagnostic devices which measure reflectance and fluorescence in epithelial tissue. The difference in scattering between normal and precancerous tissue is attributed to increased nuclear size, optical density, and chromatin texture. The scattering coefficients measured here are consistent with predictions of numerical solutions to Maxwell´s equations for epithelial cell scattering.
  • Keywords
    Maxwell equations; bio-optics; biological organs; biological techniques; biological tissues; biomedical optical imaging; cancer; cellular biophysics; light propagation; light scattering; optical microscopy; physiological models; reflectivity; Beer law attenuation; Maxwell equations; bulk epithelial tissue; chromatin texture; computational models; confocal images; confocal microscopy; epithelial tissue scattering coefficient; ex vivo cervical biopsies; exponential function; fiber optic probes; fluorescence; light propagation; mean scattering coefficients; normal cervical epithelium; nuclear size; optical density; optical diagnostic devices; precancerous cervical epithelium; probing depths; reflectance; reflectance measurements; scattering coefficients; scattering properties; stroma; tissue layers; Attenuation measurement; Biomedical optical imaging; Biopsy; Light scattering; Microscopy; Optical attenuators; Optical devices; Optical propagation; Optical scattering; Reflectivity;
  • fLanguage
    English
  • Journal_Title
    Selected Topics in Quantum Electronics, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    1077-260X
  • Type

    jour

  • DOI
    10.1109/JSTQE.2003.814413
  • Filename
    1238995