Differentiation of normal skin and melanoma using high resolution hyperspectral imaging

被引:113
作者
Dicker, David T.
Lerner, Jeremy
Van Belle, Pat
Barth, Stephen F.
Guerry, DuPont
Herlyn, Meenhard
El-Deiry, Wafik S.
机构
[1] Univ Penn, Sch Med, Lab Mol Oncol & Cell Cycle Regulat, Philadelphia, PA 19104 USA
[2] Univ Penn, Sch Med, Dept Med Hematol Oncol, Philadelphia, PA USA
[3] Univ Penn, Sch Med, Dept Genet, Philadelphia, PA USA
[4] Univ Penn, Sch Med, Dept Pharmacol, Philadelphia, PA USA
[5] Univ Penn, Sch Med, Dept Pathol & Lab Med, Philadelphia, PA USA
[6] Univ Penn, Sch Med, Inst Translat Med & Therapeut, Philadelphia, PA USA
[7] Univ Penn, Sch Med, Abramson Comprehens Canc Ctr, Philadelphia, PA USA
[8] LightForm Inc, Hillsborough, NJ USA
[9] Wistar Inst Anat & Biol, Program Mol & Cellular Oncogenesis, Philadelphia, PA 19104 USA
关键词
hyperspectral; imaging spectroscopy; spectral library; histopathology; melanoma; nevus; epidermis; cross correlation analysis;
D O I
10.4161/cbt.5.8.3261
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
We investigated the use of high resolution hyperspectral imaging microscopy to detect abnormalities in skin tissue using hematoxylin eosin stained preparations of normal and abnormal skin, benign nevi and melanomas. A goal of this study was to provide objective data that could be utilized by any researcher; and form the beginnings of a reference spectral data base. All spectral characterizations were acquired in percent transmission, and absorption, with contiguous wavelength acquisition between 400 and 800 nm; and a spectral resolution of similar to 1 nm. Biopsy sections were characterized with varying sample thickness, staining and magnification in order to determine their impact on spectral characterizations. Spectra were classified using spectral waveform cross correlation analysis, an algorithm that is linearity invariant. Classified spectra were incorporated into spectral libraries; and all spectra acquired from the field of view were correlated with library spectra to a quantified, user determined, confidence threshold (minimum correlation coefficient). The results revealed that all skin conditions in our initial data sets could be objectively differentiated providing that staining and section thickness was controlled. We also demonstrated that it is likely that a reference spectral library database could be created to include bioinformatics and cluster analysis. This would assist multiple laboratories to participate in the input and retrieval of target spectral information.
引用
收藏
页码:1033 / 1038
页数:6
相关论文
共 12 条
[1]  
[Anonymous], 2006, Cancer Facts and Figures
[2]   Applications of cost-effective spectral imaging microscopy in cancer research [J].
Barber, PR ;
Vojnovic, B ;
Atkin, G ;
Daley, FM ;
Everett, SA ;
Wilson, GD ;
Gilbey, JD .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2003, 36 (14) :1729-1738
[3]   Digital staining for multispectral images of pathological tissue specimens based on combined classification of spectral transmittance [J].
Bautista, PA ;
Abe, T ;
Yamaguchi, M ;
Yagi, Y ;
Ohyama, N .
COMPUTERIZED MEDICAL IMAGING AND GRAPHICS, 2005, 29 (08) :649-657
[4]   Pathology of melanoma [J].
Elder, DE .
CLINICAL CANCER RESEARCH, 2006, 12 (07) :2308S-2311S
[5]   The approach to the patient with a difficult melanocytic lesion [J].
Elder, DE ;
Xu, XW .
PATHOLOGY, 2004, 36 (05) :428-434
[6]   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
[7]   Multi-component based cross correlation beat detection in electrocardiogram analysis [J].
Last, Thorsten ;
Nugent, Chris D. ;
Owens, Frank J. .
BIOMEDICAL ENGINEERING ONLINE, 2004, 3 (1)
[8]  
LAWRENCE JSP, 2006, GEOPHYS RES LETT, V33, pO7315
[9]   Imaging spectrometer fundamentals for researchers in the biosciences - A tutorial [J].
Lerner, Jeremy M. .
CYTOMETRY PART A, 2006, 69A (08) :712-734
[10]  
Lerner Jeremy M., 2002, American Biotechnology Laboratory, V20, P40