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Detection of malignant mesothelioma using nuclear structure of mesothelial cells in effusion cytology specimens.

机译:利用积液细胞学标本中的间皮细胞核结构检测恶性间皮瘤。

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摘要

Mesothelioma is a form of cancer generally caused from previous exposure to asbestos. Although it was considered a rare neoplasm in the past, its incidence is increasing worldwide due to extensive use of asbestos. In the current practice of medicine, the gold standard for diagnosing mesothelioma is through a pleural biopsy with subsequent histologic examination of the tissue. The diagnostic tissue should demonstrate the invasion by the tumor and is obtained through thoracoscopy or open thoracotomy, both being highly invasive surgical operations. On the other hand, thoracocentesis, which is removal of effusion fluid from the pleural space, is a far less invasive procedure that can provide material for cytological examination. In this study, we aim at detecting and classifying malignant mesothelioma based on the nuclear chromatin distribution from digital images of mesothelial cells in effusion cytology specimens. Accordingly, a computerized method is developed to determine whether a set of nuclei belonging to a patient is benign or malignant. The quantification of chromatin distribution is performed by using the optimal transport-based linear embedding for segmented nuclei in combination with the modified Fisher discriminant analysis. Classification is then performed through a k-nearest neighborhood approach and a basic voting strategy. Our experiments on 34 different human cases result in 100% accurate predictions computed with blind cross validation. Experimental comparisons also show that the new method can significantly outperform standard numerical feature-type methods in terms of agreement with the clinical diagnosis gold standard. According to our results, we conclude that nuclear structure of mesothelial cells alone may contain enough information to separate malignant mesothelioma from benign mesothelial proliferations. © 2015 International Society for Advancement of Cytometry.
机译:间皮瘤是癌症的一种形式,通常由先前接触石棉引起。尽管在过去它被认为是一种罕见的肿瘤,但是由于广泛使用石棉,其发病率在全世界范围内都在增加。在当前的医学实践中,诊断间皮瘤的金标准是通过胸膜活检并随后对组织进行组织学检查。诊断组织应显示出肿瘤的侵袭,并且可以通过胸腔镜或开胸手术获得,这两种组织都是高度侵入性的手术操作。另一方面,胸腔穿刺术是从胸膜腔清除积液的方法,其侵入性小得多,可以为细胞学检查提供材料。在这项研究中,我们旨在根据积液细胞学标本中间皮细胞数字图像的核染色质分布检测和分类恶性间皮瘤。因此,开发了一种计算机化方法来确定属于患者的一组核是良性还是恶性的。染色质分布的量化是通过结合分段Fisher的改良Fisher判别分析,使用针对分段核的最佳基于传输的线性嵌入进行的。然后通过k最近邻方法和基本投票策略进行分类。我们在34种不同的人类病例上进行的实验得出的结果,通过盲目交叉验证可以得出100%准确的预测。实验比较还表明,该新方法在与临床诊断金标准的一致性方面可以显着优于标准数字特征类型方法。根据我们的结果,我们得出结论,仅间皮细胞的核结构可能包含足够的信息,以将恶性间皮瘤与良性间皮增生区分开。 ©2015国际细胞计数学会。

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