Comparison of FNA-based conventional cytology specimens and digital image analysis in assessment of pancreatic lesions.

IF 2.5 4区 医学 Q2 PATHOLOGY
Cytojournal Pub Date : 2023-10-09 eCollection Date: 2023-01-01 DOI:10.25259/Cytojournal_61_2022
Farzaneh Khozeymeh, Mona Ariamanesh, Nema Mohamadian Roshan, Amirhossein Jafarian, Mohammadreza Farzanehfar, Hassan Mehrad Majd, Alireza Sedghian, Mansoureh Dehghani
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引用次数: 0

Abstract

Objectives: Endoscopic ultrasound-guided fine-needle aspiration (EUS-FNA) is one of the most important diagnostic tools for investigation of suspected pancreatic masses, although the interpretation of the results is controversial. In recent decades, digital image analysis (DIA) has been considered in pathology. The aim of this study was to assess the DIA in the evaluation of EUS-FNA based cytopathological specimens of pancreatic masses and comparing it with conventional cytology analysis by pathologist.

Material and methods: This study was performed using cytological slides related to EUS-FNA samples of pancreatic lesions. The digital images were prepared and then analyzed by ImageJ software. Factors such as perimeter, circularity, area, minimum, maximum, mean, median of gray value, and integrated chromatin density of cell nucleus were extracted by software ImageJ and sensitivity, specificity, and cutoff point were evaluated in the diagnosis of malignant and benign lesions.

Results: In this retrospective study, 115 cytology samples were examined. Each specimen was reviewed by a pathologist and 150 images were prepared from the benign and malignant lesions and then analyzed by ImageJ software and a cut point was established by SPSS 26. The cutoff points for perimeter, integrated density, and the sum of three factors of perimeter, integrated density, and circularity to differentiate between malignant and benign lesions were reported to be 204.56, 131953, and 24643077, respectively. At this cutting point, the accuracy of estimation is based on the factors of perimeter, integrated density, and the sum of the three factors of perimeter, integrated density, and circularity were 92%, 92%, and 94%, respectively.

Conclusion: The results of this study showed that digital analysis of images has a high accuracy in diagnosing malignant and benign lesions in the cytology of EUS-FNA in patients with suspected pancreatic malignancy and by obtaining cutoff points by software output factors; digital imaging can be used to differentiate between benign and malignant pancreatic tumors.

Abstract Image

Abstract Image

Abstract Image

基于FNA的常规细胞学标本和数字图像分析在胰腺病变评估中的比较。
目的:内镜超声引导下细针抽吸(EUS-FNA)是研究可疑胰腺肿块最重要的诊断工具之一,尽管对结果的解释存在争议。近几十年来,数字图像分析(DIA)在病理学中得到了广泛的应用。本研究的目的是评估DIA在评估基于EUS-FNA的胰腺肿块细胞病理学标本中的作用,并将其与病理学家的传统细胞学分析进行比较。材料和方法:本研究使用与胰腺病变EUS-FNA样本相关的细胞学玻片进行。准备数字图像,然后通过ImageJ软件进行分析。应用ImageJ软件提取细胞核的周长、圆形度、面积、最小值、最大值、平均值、灰度值中值和染色质积分密度等因素,评价其在良恶性病变诊断中的敏感性、特异性和临界点。结果:在这项回顾性研究中,共检查了115份细胞学样本。病理学家对每个标本进行审查,从良性和恶性病变中制备150张图像,然后通过ImageJ软件进行分析,并通过SPSS 26建立切割点。据报道,周长、积分密度以及周长、积分密集度和圆形度三个因素之和的分界点分别为204.56、131953和24643077。在这个切入点上,估计的准确性是基于周长、积分密度这三个因素的,周长、积分密集度和圆形度这三个因子的总和分别为92%、92%和94%。结论:本研究结果表明,在EUS-FNA细胞学检查中,通过软件输出因子获取分界点,图像的数字分析在诊断疑似胰腺恶性肿瘤患者的良恶性病变方面具有较高的准确性;数字成像可用于鉴别胰腺良恶性肿瘤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cytojournal
Cytojournal PATHOLOGY-
CiteScore
2.20
自引率
42.10%
发文量
56
审稿时长
>12 weeks
期刊介绍: The CytoJournal is an open-access peer-reviewed journal committed to publishing high-quality articles in the field of Diagnostic Cytopathology including Molecular aspects. The journal is owned by the Cytopathology Foundation and published by the Scientific Scholar.
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