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Follicular thyroid lesions: is there a discriminatory potential in the computerized nuclear analysis?

机译:甲状腺滤泡性病变:在计算机核分析中是否存在歧视性潜力?

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摘要

Background Computerized image analysis seems to represent a promising diagnostic possibility for thyroid tumors. Our aim was to evaluate the discriminatory diagnostic efficiency of computerized image analysis of cell nuclei from histological materials of follicular tumors. Methods We studied paraffin-embedded materials from 42 follicular adenomas (FA), 47 follicular variants of papillary carcinomas (FVPC) and 20 follicular carcinomas (FC) by the software ImageJ. Based on the nuclear morphometry and chromatin texture, the samples were classified as FA, FC or FVPC using the Classification and Regression Trees method. Results We observed high diagnostic sensitivity and specificity rates (FVPC: 89.4% and 100%; FC: 95.0% and 92.1%; FA: 90.5 and 95.5%, respectively). When the tumors were compared by pairs (FC vs FA, FVPC vs FA), 100% of the cases were classified correctly. Conclusion The computerized image analysis of nuclear features showed to be a useful diagnostic support tool for the histological differentiation between follicular adenomas, follicular variants of papillary carcinomas and follicular carcinomas.
机译:背景技术计算机图像分析似乎代表了甲状腺肿瘤的有希望的诊断可能性。我们的目的是评估滤泡性肿瘤组织学材料对细胞核的计算机图像分析的鉴别诊断效率。方法我们使用ImageJ软件研究了42种滤泡性腺瘤(FA),47种滤泡性乳头状癌(FVPC)和20种滤泡性癌(FC)的石蜡包埋材料。根据核形态和染色质质地,使用分类和回归树方法将样品分为FA,FC或FVPC。结果我们观察到较高的诊断敏感性和特异性率(FVPC:89.4%和100%; FC:95.0%和92.1%; FA:90.5和95.5%)。当成对比较肿瘤时(FC vs FA,FVPC vs FA),正确分类了100%的病例。结论核特征的计算机图像分析表明,它对滤泡性腺瘤,乳头状癌的滤泡性变型和滤泡性癌的组织学鉴别是一种有用的诊断支持工具。

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