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Raman and FTIR microspectroscopy for detection of brain metastasis

机译:拉曼光谱和FTIR显微光谱检测脑转移

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Vibrational spectroscopic imaging methods are novel tools to visualise chemical component in tissue without staining. Fourier transform infrared (FTIR) imaging is more frequently applied than Raman imaging so far. FTIR images recorded with a FPA detector have been demonstrated to identify the primary tumours of brain metastases. However, the strong absorption of water makes it difficult to transfer the results to non-dried tissues. Raman spectroscopy with near infrared excitation can be used instead and allows collecting the chemical fingerprint of native specimens. Therefore, Raman spectroscopy is a promising tool for tumour diagnosis in neurosurgery. Scope of the study is to compare FTIR and Raman images to visualize the tumour border and identify spectral features for classification. Brain metastases were obtained from patients undergoing surgery at the university hospital. Brain tissue sections were shock frozen, cryosectioned, dried and the same areas were imaged with both spectroscopic method. To visualise the chemical components, multivariate statistical algorithms were applied for data analysis. Furthermore classification models were trained using supervised algorithms to predict the primary tumor of brain metastases. Principal component regression (PCR) was used for prediction based on FTIR images. Support vector machines (SVM) were used for prediction based on Raman images. The principles are shown for two specimens. In the future, the study will be extended to larger data sets
机译:振动光谱成像方法是一种新颖的工具,可在不染色的情况下可视化组织中的化学成分。到目前为止,傅立叶变换红外(FTIR)成像比拉曼成像更常用。用FPA检测器记录的FTIR图像已被证明可以识别脑转移的原发肿瘤。然而,水的强吸收性使得难以将结果转移至未干燥的组织。可以使用具有近红外激发的拉曼光谱代替,并可以收集天然样本的化学指纹。因此,拉曼光谱法是神经外科肿瘤诊断的有前途的工具。研究的范围是比较FTIR和拉曼图像以可视化肿瘤边界并确定光谱特征以进行分类。脑转移是从大学医院接受手术的患者身上获得的。将脑组织切片进行冷冻,冷冻切片,干燥,并用两种光谱法对相同区域成像。为了可视化化学成分,将多元统计算法应用于数据分析。此外,使用监督算法训练分类模型,以预测脑转移的原发肿瘤。主成分回归(PCR)用于基于FTIR图像的预测。支持向量机(SVM)用于基于拉曼图像的预测。给出了两个样本的原理。将来,这项研究将扩展到更大的数据集

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