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Identification of primary tumors of brain metastases by SIMCA classification of IR spectroscopic images

机译:通过SIMCA分类红外光谱图像鉴定脑转移的原发肿瘤

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Brain metastases are secondary intracranial lesions which occur more frequently than primary brain tumors. The four most abundant types of brain metastasis originate from primary tumors of lung cancer, colorectal cancer, breast cancer and renal cell carcinoma. As metastatic cells contain the molecular information of the primary tissue cells and IR spectroscopy probes the molecular fingerprint of cells, IR spectroscopy based methods constitute a new approach to determine the origin of brain metastases. IR spectroscopic images of 4 by 4 mm 2 tissue areas were recorded in transmission mode by a FTIR imaging spectrometer coupled to a focal plane array detector. Unsupervised cluster analysis revealed variances within each cryosection. Selected clusters of five IR images with known diagnoses trained a supervised classification model based on the algorithm soft independent modeling of class analogies (SIMCA). This model was applied to distinguish normal brain tissue from brain metastases and to identify the primary tumor of brain metastases in 15 independent IR images. All specimens were assigned to the correct tissue class. This proof-of-concept study demonstrates that IR spectroscopy can complement established methods such as histopathology or immunohistochemistry for diagnosis. (c) 2006 Elsevier B.V. All rights reserved.
机译:脑转移是继发性颅内病变,其发生率高于原发性脑肿瘤。脑转移的四种最丰富类型来自肺癌,大肠癌,乳腺癌和肾细胞癌。由于转移细胞包含原代组织细胞的分子信息,而红外光谱探测细胞的分子指纹,基于红外光谱的方法构成了确定脑转移起源的新方法。通过耦合到焦平面阵列检测器的FTIR成像光谱仪以透射模式记录4×4mm 2组织区域的IR光谱图像。无监督的聚类分析显示每个冷冻切片内的差异。基于已知诊断的5个IR图像的选定聚类训练了基于类比的软独立建模算法(SIMCA)的监督分类模型。该模型用于区分正常脑组织和脑转移瘤,并在15个独立的IR图像中鉴定脑转移瘤的原发性肿瘤。将所有标本分配到正确的组织类别。这项概念验证研究表明,红外光谱可以补充已建立的方法(例如组织病理学或免疫组织化学)进行诊断。 (c)2006 Elsevier B.V.保留所有权利。

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