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MID Infrared multispectral imaging for tumor tissue detection

机译:用于肿瘤组织检测的中红外多光谱成像

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As the number of cancers is steadily increasing, doctors are in need of automatic tools with better and faster analysis methods to help them with the diagnosis. One way to tackle this challenge is to propose label-free methods capable to analyze a large number of samples. Recent development in photonics components could enable to use infrared light to detect abnormal tissues and Mid-IR imaging can provide an unequivocal information about the biochemical composition of human cells. The combination of a set of Quantum Cascade Lasers (QCLs) and lensfree imaging with uncooled bolometer matrix will allow the biochemical mapping over a wide field of view. This experimental setup coupled to machine learning algorithms (Random Forest, Neural Networks, K-means) can help to classify the biological cells in a fast and reproducible way. Images from the frozen section tissue of nude mice bearing human orthotropic oral cavity tumors from the CAL33 cell line have been acquired and analyzed. Using amide and DNA absorption bands, we achieved up to 94% of successful predictions of cancer cells with a population of 325 pixels corresponding to muscle tissues and 325 pixels corresponding to cancer tissues. This work may lead to the development of an imaging device, that could be used for cancer diagnosis at hospital.
机译:随着癌症的数量稳步增加,医生需要自动工具,具有更好,更快的分析方法来帮助他们诊断。解决这一挑战的一种方法是提出无标签的方法能够分析大量样品。光子学部件的最新发育可以使用红外光来检测异常组织,中红外成像可以提供关于人细胞生化组成的明确信息。一组量子级联激光器(QCLS)和具有未冷却的钻头矩阵的透镜Frege成像的组合将允许生物化学映射在广泛的视野上。该实验设置耦合到机器学习算法(随机森林,神经网络,K-MEARY)可以帮助以快速可重复的方式对生物细胞进行分类。从CAL33细胞系中携带人正交口腔肿瘤的裸鼠裸鼠的冻结部分的图像已经获得并分析。使用酰胺和DNA吸收带,我们达到了高达94%的癌细胞成功预测,其群体具有325像素对应于肌肉组织和325像素对应于癌组织的325像素。这项工作可能导致成像装置的开发,可用于医院的癌症诊断。

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