Spectral Imaging of Multi-Color Chromogenic Dyes in Pathological Specimens

M. Macville, J. A. van der Laak, E. Speel, Nir Katzir, Y. Garini, D. Soenksen, G. McNamara, P. D. de Wilde, A. Hanselaar, A. Hopman, T. Ried
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引用次数: 33

Abstract

We have investigated the use of spectral imaging for multi‐color analysis of permanent cytochemical dyes and enzyme precipitates on cytopathological specimens. Spectral imaging is based on Fourier‐transform spectroscopy and digital imaging. A pixel‐by‐pixel spectrum‐based color classification is presented of single‐, double‐, and triple‐color in situ hybridization for centromeric probes in T24 bladder cancer cells, and immunocytochemical staining of nuclear antigens Ki‐67 and TP53 in paraffin‐embedded cervical brush material (AgarCyto). The results demonstrate that spectral imaging unambiguously identifies three chromogenic dyes in a single bright‐field microscopic specimen. Serial microscopic fields from the same specimen can be analyzed using a spectral reference library. We conclude that spectral imaging of multi‐color chromogenic dyes is a reliable and robust method for pixel color recognition and classification. Our data further indicate that the use of spectral imaging (a) may increase the number of parameters studied simultaneously in pathological diagnosis, (b) may provide quantitative data (such as positive labeling indices) more accurately, and (c) may solve segmentation problems currently faced in automated screening of cell‐ and tissue specimens. Figures on http://www.esacp.org/acp/2001/22‐3/macville.htm.
病理标本中多色显色染料的光谱成像
我们研究了利用光谱成像技术对细胞病理标本上的永久性细胞化学染料和酶沉淀物进行多色分析。光谱成像是基于傅里叶变换光谱学和数字成像。本文提出了一种基于像素逐像素光谱的颜色分类方法,对T24膀胱癌细胞中的着丝粒探针进行单色、双色和三色原位杂交,并对石蜡包埋宫颈刷材料(AgarCyto)中的核抗原Ki‐67和TP53进行免疫细胞化学染色。结果表明,光谱成像明确地识别三种显色染料在一个单一的亮场显微镜标本。使用光谱参考库可以分析同一标本的连续显微场。结果表明,多色显色染料的光谱成像是一种可靠的、鲁棒的像素颜色识别和分类方法。我们的数据进一步表明,光谱成像的使用(a)可以增加病理诊断中同时研究的参数数量,(b)可以更准确地提供定量数据(如阳性标记指数),(c)可以解决目前在细胞和组织标本自动筛选中面临的分割问题。参见http://www.esacp.org/acp/2001/22‐3/macville.htm。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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