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24.04.2024 | Hollow Organ GI

Epstein–Barr virus positive gastric cancer: the pathological basis of CT findings and radiomics models prediction

verfasst von: Shuangshuang Sun, Lin Li, Mengying Xu, Ying Wei, Feng Shi, Song Liu

Erschienen in: Abdominal Radiology

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Abstract

Purpose

To analyze the clinicopathologic information and CT imaging features of Epstein–Barr virus (EBV)-positive gastric cancer (GC) and establish CT-based radiomics models to predict the EBV status of GC.

Methods

This retrospective study included 144 GC cases, including 48 EBV-positive cases. Pathological and immunohistochemical information was collected. CT enlarged LN and morphological characteristics were also assessed. Radiomics models were constructed to predict the EBV status, including decision tree (DT), logistic regression (LR), random forest (RF), and support vector machine (SVM).

Results

T stage, Lauren classification, histological differentiation, nerve invasion, VEGFR2, E-cadherin, PD-L1, and Ki67 differed significantly between the EBV-positive and -negative groups (p = 0.015, 0.030, 0.006, 0.022, 0.028, 0.030, < 0.001, and < 0.001, respectively). CT enlarged LN and large ulceration differed significantly between the two groups (p = 0.019 and 0.043, respectively). The number of patients in the training and validation cohorts was 100 (with 33 EBV-positive cases) and 44 (with 15 EBV-positive cases). In the training cohort, the radiomics models using DT, LR, RF, and SVM yielded areas under the curve (AUCs) of 0.905, 0.771, 0.836, and 0.886, respectively. In the validation cohort, the diagnostic efficacy of radiomics models using the four classifiers were 0.737, 0.722, 0.751, and 0.713, respectively.

Conclusion

A significantly higher proportion of CT enlarged LN and a significantly lower proportion of large ulceration were found in EBV-positive GC. The prediction efficiency of radiomics models with different classifiers to predict EBV status in GC was good.

Graphical Abstract

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Metadaten
Titel
Epstein–Barr virus positive gastric cancer: the pathological basis of CT findings and radiomics models prediction
verfasst von
Shuangshuang Sun
Lin Li
Mengying Xu
Ying Wei
Feng Shi
Song Liu
Publikationsdatum
24.04.2024
Verlag
Springer US
Erschienen in
Abdominal Radiology
Print ISSN: 2366-004X
Elektronische ISSN: 2366-0058
DOI
https://doi.org/10.1007/s00261-024-04306-8

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