DocumentCode
1449258
Title
Fluorescence Lifetime and Depth Estimation of a Tumor Site for Functional Imaging Purposes
Author
Harbater, Osnat ; Ben-David, Moshe ; Gannot, Israel
Author_Institution
Dept. of Biomed. Eng., Tel-Aviv Univ., Tel-Aviv, Israel
Volume
16
Issue
4
fYear
2010
Firstpage
981
Lastpage
988
Abstract
Cancerous cells have irregular environmental conditions, such as temperature and pH, which distinguish them from their surroundings. Fluorescence lifetime imaging using near-IR (NIR) fluorescent probes, whose lifetime value is sensitive to pH and temperature, enables the estimation of these values, and provides functional information about the tumor. The lifetime value, extracted from the time-resolved intensity decay curve, combines the photon time delays, caused by the photon time of flight, and the intrinsic lifetime in which we are interested. In this study, we present a model, based on the diffusion approximation of the radiation transport equation, for extracting both the depth of an NIR fluorescent probe, and its intrinsic lifetime value, from a fluorescence time decay curve. The model was validated for different inclusion depths, fluorescent lifetime values, and scattering coefficients using a time-resolved Monte Carlo simulation. Our reported results are the first step toward performing functional imaging using fluorescence lifetime in vivo measurements.
Keywords
Monte Carlo methods; biomedical optical imaging; cancer; diffusion; fluorescence; medical image processing; tumours; NIR fluorescent probe; diffusion approximation; fluorescence lifetime; fluorescence lifetime imaging; fluorescence lifetime in vivo measurements; fluorescent time decay curve; functional imaging; radiation transport equation; scattering coefficients; time-resolved Monte Carlo simulation; tumor site depth estimation; Diffusion theory; fluorescence; optical imaging; optical scattering; time-domain measurements;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/JSTQE.2009.2033209
Filename
5437301
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