CORRECTION OF THE INTERNAL ABSORPTION EFFECT IN FLUORESCENCE EMISSION AND EXCITATION SPECTRA FROM ABSORBING AND HIGHLY SCATTERING MEDIA: THEORY AND EXPERIMENT

被引:50
作者
Zhadin, N. N. [1 ]
Alfano, R. R. [1 ]
机构
[1] CUNY City Coll, Inst Ultrafast Spect & Lasers, New York State Ctr Adv Technol Ultrafast Photon M, Dept Phys,Mediphoton Lab, New York, NY 10031 USA
关键词
fluorescence; internal absorption effect; inner-filter effect; re-absorption; multiple scattering; photon diffusion;
D O I
10.1117/1.429874
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Fluorescence spectra measured from biological samples, such as tissues or cell suspensions, are usually distorted due to the light absorption by intrinsic chromophores. These distortions are aggravated by strong scattering of light inside the samples. A new method is described for a fast correction of these spectral distortions, using only steady-state spectroscopic measurements. The method is based on the formulas derived from a simplified photon diffusion model, in the isotropic one-dimensional approximation applied to a semi-infinite, highly scattering, and moderately absorbing medium with a refractive-index-matched boundary. The formulas describe the spectral distortions of the fluorescence emission and excitation spectra, together with the diffuse reflectance spectrum, as the functions of one spectral characteristic of the medium, the darkness, which is the ratio of absorption coefficient and reduced scattering coefficient. The algorithm does not involve any iterative procedures, and offers a direct, simple, and fast method for real-time spectral correction. The true fluorescence emission or excitation spectrum is directly calculated from a pair of experimental spectra: the fluorescence emission or excitation spectrum and the diffuse reflectance spectrum, measured from the same position on a sample. The correction produces the profile of the true fluorescence spectrum, the same as the one measured from the corresponding sample with an infinitely low absorption and no scattering. The restoration of the spectral profiles of true fluorescence emission and excitation spectra was tested experimentally, using highly scattering phantoms with a fluorescent dye and a deliberately added nonfluorescent dye producing strong inner-filter distortions. (C) 1998 Society of Photo-Optical Instrumentation Engineers.
引用
收藏
页码:171 / 186
页数:16
相关论文
共 60 条
[41]  
Patterson M. S., 1989, APPL OPTICS, V28, P2231
[42]   MATHEMATICAL-MODEL FOR TIME-RESOLVED AND FREQUENCY-DOMAIN FLUORESCENCE SPECTROSCOPY IN BIOLOGICAL TISSUE [J].
PATTERSON, MS ;
POGUE, BW .
APPLIED OPTICS, 1994, 33 (10) :1963-1974
[43]   OPTICAL-PROPERTIES OF NORMAL AND DISEASED HUMAN BREAST TISSUES IN THE VISIBLE AND NEAR-INFRARED [J].
PETERS, VG ;
WYMAN, DR ;
PATTERSON, MS ;
FRANK, GL .
PHYSICS IN MEDICINE AND BIOLOGY, 1990, 35 (09) :1317-1334
[44]   TRANSPORT OF LIGHT IN TISSUE IN PHOTODYNAMIC THERAPY [J].
PROFIO, AE ;
DOIRON, DR .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1987, 46 (05) :591-599
[45]   DIFFUSE REFLECTANCE FROM A FINITE BLOOD MEDIUM - APPLICATIONS TO MODELING OF FIBER OPTIC CATHETERS [J].
REYNOLDS, L ;
JOHNSON, C ;
ISHIMARU, A .
APPLIED OPTICS, 1976, 15 (09) :2059-2067
[46]   A ONE-LAYER MODEL OF LASER-INDUCED FLUORESCENCE FOR DIAGNOSIS OF DISEASE IN HUMAN-TISSUE - APPLICATIONS TO ATHEROSCLEROSIS [J].
RICHARDSKORTUM, R ;
RAVA, RP ;
FITZMAURICE, M ;
TONG, LL ;
RATLIFF, NB ;
KRAMER, JR ;
FELD, MS .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1989, 36 (12) :1222-1232
[47]  
Sevick-Muraca E. M., 1995, P SOC PHOTO-OPT INS, V2387, P274
[48]   ORIGIN OF PHOSPHORESCENCE SIGNALS REEMITTED FROM TISSUES [J].
SEVICKMURACA, EM ;
BURCH, CL .
OPTICS LETTERS, 1994, 19 (23) :1928-1930
[49]  
SEVICKMURACA EM, 1994, METHOD ENZYMOL, V240, P748
[50]   QUANTIFICATION OF THE HEMATOPORPHYRIN DERIVATIVE BY FLUORESCENCE MEASUREMENT USING DUAL-WAVELENGTH EXCITATION AND DUAL-WAVELENGTH DETECTION [J].
SINAASAPPEL, M ;
STERENBORG, HJCM .
APPLIED OPTICS, 1993, 32 (04) :541-548