MRI in Oral Tongue Squamous Cell Carcinoma: A Radiomic Approach in the Local Recurrence Evaluation.

IF 3.4 4区 医学 Q2 ONCOLOGY Current oncology Pub Date : 2025-02-18 DOI:10.3390/curroncol32020116
Antonello Vidiri, Vincenzo Dolcetti, Francesco Mazzola, Sonia Lucchese, Francesca Laganaro, Francesca Piludu, Raul Pellini, Renato Covello, Simona Marzi
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Abstract

(1) Background: Oral tongue squamous cell carcinoma (OTSCC) is a prevalent malignancy with high loco-regional recurrence. Advanced imaging biomarkers are critical for stratifying patients at a high risk of recurrence. This study aimed to develop MRI-based radiomic models to predict loco-regional recurrence in OTSCC patients undergoing surgery. (2) Methods: We retrospectively selected 92 patients with OTSCC who underwent MRI, followed by surgery and cervical lymphadenectomy. A total of 31 patients suffered from a loco-regional recurrence. Radiomic features were extracted from preoperative post-contrast high-resolution MRI and integrated with clinical and pathological data to develop predictive models, including radiomic-only and combined radiomic-clinical approaches, trained and validated with stratified data splitting. (3) Results: Textural features, such as those derived from the Gray-Level Size-Zone Matrix, Gray-Level Dependence Matrix, and Gray-Level Run-Length Matrix, showed significant associations with recurrence. The radiomic-only model achieved an accuracy of 0.79 (95% confidence interval: 0.69, 0.87) and 0.74 (95% CI: 0.54, 0.89) in the training and validation set, respectively. Combined radiomic and clinical models, incorporating features like the pathological depth of invasion and lymph node status, provided comparable diagnostic performances. (4) Conclusions: MRI-based radiomic models demonstrated the potential for predicting loco-regional recurrence, highlighting their increasingly important role in advancing precision oncology for OTSCC.

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口腔舌鳞状细胞癌的MRI:局部复发评估的放射学方法。
(1)背景:口腔舌鳞癌(OTSCC)是一种常见的恶性肿瘤,具有较高的局部区域复发率。先进的成像生物标志物对复发高风险患者的分层至关重要。本研究旨在建立基于mri的放射学模型来预测接受手术的OTSCC患者的局部区域复发。(2)方法:回顾性选择92例行MRI、手术及颈淋巴清扫术的OTSCC患者。31例患者出现局部-区域复发。从术前造影后的高分辨率MRI中提取放射组学特征,并将其与临床和病理数据相结合,建立预测模型,包括仅放射组学和放射组学-临床联合方法,并通过分层数据分割进行训练和验证。(3)结果:灰度大小区域矩阵、灰度依赖矩阵和灰度游程矩阵的纹理特征与递归关系显著。仅放射组学模型在训练集和验证集中的准确率分别为0.79(95%置信区间:0.69,0.87)和0.74 (95% CI: 0.54, 0.89)。结合放射学和临床模型,包括病理浸润深度和淋巴结状态等特征,提供了相当的诊断性能。(4)结论:基于mri的放射学模型显示出预测局部区域复发的潜力,突出了其在推进OTSCC精确肿瘤学中的日益重要的作用。
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来源期刊
Current oncology
Current oncology ONCOLOGY-
CiteScore
3.30
自引率
7.70%
发文量
664
审稿时长
1 months
期刊介绍: Current Oncology is a peer-reviewed, Canadian-based and internationally respected journal. Current Oncology represents a multidisciplinary medium encompassing health care workers in the field of cancer therapy in Canada to report upon and to review progress in the management of this disease. We encourage submissions from all fields of cancer medicine, including radiation oncology, surgical oncology, medical oncology, pediatric oncology, pathology, and cancer rehabilitation and survivorship. Articles published in the journal typically contain information that is relevant directly to clinical oncology practice, and have clear potential for application to the current or future practice of cancer medicine.
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