• DocumentCode
    1551333
  • Title

    Imaging of fluorescence in highly scattering media

  • Author

    Chang, Jenghwa ; Graber, Harry L. ; Barbour, Randall L.

  • Author_Institution
    SUNY Health Sci. Center, Brooklyn, NY, USA
  • Volume
    44
  • Issue
    9
  • fYear
    1997
  • Firstpage
    810
  • Lastpage
    822
  • Abstract
    Two one-speed radiation transport equations coupled by a dynamic equation for the distribution of fluorophore electronic states are used to model the migration of excitation photons and emitted fluorescence photons. The conditions for producing appreciable levels of fluorophore in the excited state are studied, with the conclusion that minimal saturation occurs under the conditions applicable to tissue imaging. This simplifies the derivation of the frequency response and of the imaging operator for a time-harmonic excitation source. Several factors known to influence the fluorescence response-the concentration, mean lifetime and quantum yield of the fluorophore, and the modulation frequency of the excitatory source-are examined. Optimal sensitivity conditions are obtained by analyzing the fluorescence source strength as a function of the mean lifetime and modulation frequency. The dependence of demodulation of the fluorescent signal on the above factors is also examined. In complementary studies, transport-theory-based operators for imaging fluorophore distributions in a highly scattering medium are derived. Experimental data were collected by irradiating a cylindrical phantom containing one or two fluorophore-filled balloons with continuous wave laser light. The reconstruction results show that qualitatively and quantitatively good images can be obtained, with embedded objects accurately located and the fluorophore concentration correctly determined.
  • Keywords
    fluorescence; image reconstruction; laser applications in medicine; light scattering; medical image processing; optical tomography; continuous wave laser light; cylindrical phantom; dynamic equation; emitted fluorescence photons; excitation photons migration; fluorescence imaging; fluorescence source strength; fluorophore electronic states distribution; fluorophore-filled balloons; highly scattering media; modulation frequency; one-speed radiation transport equations; quantum yield; time-harmonic excitation source; tissue imaging; Equations; Fluorescence; Frequency modulation; Light scattering; Optical imaging; Optical scattering; Particle scattering; Radioactive materials; Single photon emission computed tomography; X-ray scattering; Algorithms; Fluorescence; Fourier Analysis; Monte Carlo Method; Optics; Phantoms, Imaging; Radiographic Image Enhancement; Rhodamines; Sensitivity and Specificity; Tomography, X-Ray Computed;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.623050
  • Filename
    623050