In vivo cytometry: A spectrum of possibilites

被引:33
作者
Chung, A
Karlan, S
Lindsley, E
Wachsmann-Hogiu, S
Farkas, DL
机构
[1] Cedars Sinai Med Ctr, Minimally Invas Sug Technol Inst, Los Angeles, CA 90048 USA
[2] Cedars Sinai Med Ctr, Dept Surg, Los Angeles, CA 90048 USA
关键词
optical diagnostics; unstained specimens; in vivo cytometry; spectral imaging; elastic scattering imaging endoscopy;
D O I
10.1002/cyto.a.20220
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Background: We investigate whether optical imaging can reliably detect abnormalities in tissue, in a range of specimens (live cells in vitro; fixed, fresh ex-vivo and in Vivo tissue), without the use of added contrast agents, and review our promising spectral methods for achieving quantitative, real-time, high resolution intrasurgical optical diagnostics. Methods: We use reflectance, fluorescence, two-photon, and Mic scattering imaging, performed with instrumentation we developed or modified, to detect intrinsic tissue signatures. Emphasis is on spectral/hyperspectral imaging approaches allowing the equivalent of in vivo pathology. Results: With experimental focus on unstained specimens, we demonstrate the ability to segment tissue images for cancer detection. Spectral reflectance imaging, Coupled with advanced analysis, typically yields 90% specificity and sensitivity. Autofluorescence is also shown to be diagnostically useful, with lymph nodes results highlighted here. Elastic scattering hyperspectral imaging endoscopy, using a new instrument we designed and built, shows promise in bronchoscopic detection of dysplasia and early cancer in patients. Conclusions: The results demonstrate that advanced optical imaging can detect and localize cellular signatures of cancer in real-time, in vivo, without the use of contrast agents, in animals and humans. This is an important step towards tight spatio-temporal coupling between such detection and clinical intervention. (c) 2006 international Society for Analytical Cytology.
引用
收藏
页码:142 / 146
页数:5
相关论文
共 22 条
[1]   Tumor detection and visualization using cyanine fluorochrome-labeled antibodies [J].
Ballou, B ;
Fisher, GW ;
Hakala, TR ;
Farkas, DL .
BIOTECHNOLOGY PROGRESS, 1997, 13 (05) :649-658
[2]   Ultraviolet and visible spectroscopies for tissue diagnostics: Fluorescence spectroscopy and elastic-scattering spectroscopy [J].
Bigio, IJ ;
Mourant, JR .
PHYSICS IN MEDICINE AND BIOLOGY, 1997, 42 (05) :803-814
[3]   Autofluorescence and diffuse reflectance properties of malignant and benign breast tissues [J].
Breslin, TM ;
Xu, FS ;
Palmer, GM ;
Zhu, CF ;
Gilchrist, KW ;
Ramanujam, N .
ANNALS OF SURGICAL ONCOLOGY, 2004, 11 (01) :65-70
[4]  
Chung Alice, 2005, Curr Surg, V62, P365, DOI 10.1016/j.cursur.2004.12.011
[5]  
Colasanti A, 2000, LASER SURG MED, V26, P441, DOI 10.1002/1096-9101(2000)26:5<441::AID-LSM3>3.0.CO
[6]  
2-0
[7]  
Farkas D.L., 2001, METHODS CELLULAR IMA, P345
[8]   Applications of spectral imaging: Detection and analysis of human melanoma and its precursors [J].
Farkas, DL ;
Becker, D .
PIGMENT CELL RESEARCH, 2001, 14 (01) :2-8
[9]   Significance of autofluorescence for the optical demarcation of field cancerisation in the upper aerodigestive tract [J].
Fryen, A ;
Glanz, H ;
Lohmann, W ;
Dreyer, T ;
Bohle, RM .
ACTA OTO-LARYNGOLOGICA, 1997, 117 (02) :316-319
[10]   Optical coherence tomography for ultrahigh resolution in vivo imaging [J].
Fujimoto, JG .
NATURE BIOTECHNOLOGY, 2003, 21 (11) :1361-1367