The quantitative determination of optical properties of tissue is important in the areas of diagnostics and imaging. A new approach based on frequency-domain methods was developed during the previous grant period. The new method uses several high frequency modulated light sources at different distances from a light detector. Using this instrument, it is possible to achieve complete separation of the scattering from the absorption contribution to light extinction as it propagates throughout tissues. An instrument has been built that can accurately recover the entire spectrum of an absorbing substance in strongly scattering media. A particular implementation of the method has been used to continuously monitor oxygen saturation in tissues, noninvasively. The major new achievement is that non-invasive, quantitative tissue spectroscopy can be obtained on the basis of a physical model for light transport in tissues. However, the present method only applies to homogenous tissues.
The aim of this proposal is to systematically approach the problem of detection and quantitation of tissue inhomogeneity. New experimental methods and theoretical approaches will be explored to construct a volume map of the absorption and scattering coefficient of thick tissues. The long term goal of this proposal is to develop the physical basis of new non-invasive diagnostic methods using light and to construct prototype instruments capable of mapping the optical parameters of tissues with sub-centimeter resolution.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA057032-05
Application #
2008078
Study Section
Special Emphasis Panel (ZRG7-DMG (01))
Project Start
1992-04-01
Project End
1998-11-30
Budget Start
1996-12-01
Budget End
1997-11-30
Support Year
5
Fiscal Year
1997
Total Cost
Indirect Cost
Name
University of Illinois Urbana-Champaign
Department
Physics
Type
Schools of Engineering
DUNS #
041544081
City
Champaign
State
IL
Country
United States
Zip Code
61820
Wolf, Ursula; Toronov, Vladislav; Choi, Jee H et al. (2011) Correlation of functional and resting state connectivity of cerebral oxy-, deoxy-, and total hemoglobin concentration changes measured by near-infrared spectrophotometry. J Biomed Opt 16:087013
Fantini, Sergio; Heffer, Erica L; Pera, Vivian E et al. (2005) Spatial and spectral information in optical mammography. Technol Cancer Res Treat 4:471-82
Safonova, Larisa P; Michalos, Antonios; Wolf, Ursula et al. (2004) Age-correlated changes in cerebral hemodynamics assessed by near-infrared spectroscopy. Arch Gerontol Geriatr 39:207-25
Morren, G; Wolf, U; Lemmerling, P et al. (2004) Detection of fast neuronal signals in the motor cortex from functional near infrared spectroscopy measurements using independent component analysis. Med Biol Eng Comput 42:92-9
Toronov, Vlad; Walker, Scott; Gupta, Rajarsi et al. (2003) The roles of changes in deoxyhemoglobin concentration and regional cerebral blood volume in the fMRI BOLD signal. Neuroimage 19:1521-31
Wolf, Martin; Franceschini, Maria A; Paunescu, Lelia A et al. (2003) Absolute frequency-domain pulse oximetry of the brain: methodology and measurements. Adv Exp Med Biol 530:61-73
Wolf, Ursula; Wolf, Martin; Choi, Jee H et al. (2003) Mapping of hemodynamics on the human calf with near infrared spectroscopy and the influence of the adipose tissue thickness. Adv Exp Med Biol 510:225-30
Wolf, Martin; Wolf, Ursula; Choi, Jee H et al. (2003) Detection of the fast neuronal signal on the motor cortex using functional frequency domain near infrared spectroscopy. Adv Exp Med Biol 510:193-7
Wolf, Martin; Wolf, Ursula; Choi, Jee H et al. (2003) Fast cerebral functional signal in the 100-ms range detected in the visual cortex by frequency-domain near-infrared spectrophotometry. Psychophysiology 40:521-8
Wolf, Martin; Wolf, Ursula; Choi, Jee H et al. (2002) Functional frequency-domain near-infrared spectroscopy detects fast neuronal signal in the motor cortex. Neuroimage 17:1868-75

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