Predicting symptomatic mesenteric mass in small intestinal neuroendocrine tumors using radiomics

无线电技术 医学 无症状的 放射科 神经内分泌肿瘤 临床实习 内科学 家庭医学
作者
Anela Blažević,Martijn P. A. Starmans,Tessa Brabander,Roy S. Dwarkasing,Renza A. H. van Gils,Johannes Hofland,Gaston J H Franssen,Richard A. Feelders,Wiro J. Niessen,Stefan Klein,Wouter W. de Herder
出处
期刊:Endocrine-related Cancer [Bioscientifica]
卷期号:28 (8): 529-539 被引量:7
标识
DOI:10.1530/erc-21-0064
摘要

Metastatic mesenteric masses of small intestinal neuroendocrine tumors (SI-NETs) are known to often cause intestinal complications. The aim of this study was to identify patients at risk to develop these complications based on routinely acquired CT scans using a standardized set of clinical criteria and radiomics. Retrospectively, CT scans of SI-NET patients with a mesenteric mass were included and systematically evaluated by five clinicians. For the radiomics approach, 1128 features were extracted from segmentations of the mesenteric mass and mesentery, after which radiomics models were created using a combination of machine learning approaches. The performances were compared to a multidisciplinary tumor board (MTB). The dataset included 68 patients (32 asymptomatic, 36 symptomatic). The clinicians had AUCs between 0.62 and 0.85 and showed poor agreement. The best radiomics model had a mean AUC of 0.77. The MTB had a sensitivity of 0.64 and specificity of 0.68. We conclude that systematic clinical evaluation of SI-NETs to predict intestinal complications had a similar performance than an expert MTB, but poor inter-observer agreement. Radiomics showed a similar performance and is objective, and thus is a promising tool to correctly identify these patients. However, further validation is needed before the transition to clinical practice.
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