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Automatic and objective oral cancer diagnosis by Raman spectroscopic detection of keratin with multivariate curve resolution analysis

机译:多元曲线分辨率分析通过拉曼光谱检测角蛋白自动客观地诊断口腔癌

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摘要

We have developed an automatic and objective method for detecting human oral squamous cell carcinoma (OSCC) tissues with Raman microspectroscopy. We measure 196 independent Raman spectra from 196 different points of one oral tissue sample and globally analyze these spectra using a Multivariate Curve Resolution (MCR) analysis. Discrimination of OSCC tissues is automatically and objectively made by spectral matching comparison of the MCR decomposed Raman spectra and the standard Raman spectrum of keratin, a well-established molecular marker of OSCC. We use a total of 24 tissue samples, 10 OSCC and 10 normal tissues from the same 10 patients, 3 OSCC and 1 normal tissues from different patients. Following the newly developed protocol presented here, we have been able to detect OSCC tissues with 77 to 92% sensitivity (depending on how to define positivity) and 100% specificity. The present approach lends itself to a reliable clinical diagnosis of OSCC substantiated by the “molecular fingerprint” of keratin.
机译:我们已经开发了一种自动客观的方法,用于通过拉曼光谱法检测人口腔鳞状细胞癌(OSCC)组织。我们从一个口腔组织样品的196个不同点测量196个独立的拉曼光谱,并使用多元曲线分辨率(MCR)分析对这些光谱进行全局分析。通过对MCR分解的拉曼光谱和角蛋白(标准的OSCC分子标记物)的标准拉曼光谱进行光谱匹配比较,可以自动,客观地进行OSCC组织的区分。我们总共使用了24个组织样本,来自相同10位患者的10个OSCC和10个正常组织,来自不同患者的3个OSCC和1个正常组织。遵循此处介绍的新开发的方案,我们已经能够以77%至92%的灵敏度(取决于如何定义阳性)和100%的特异性检测OSCC组织。本方法有助于通过角蛋白的“分子指纹”证实的OSCC的可靠临床诊断。

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