Radiomics Analysis of Multiparametric MRI Evaluates the Pathological Features of Cervical Squamous Cell Carcinoma

医学 接收机工作特性 磁共振弥散成像 无线电技术 放射科 有效扩散系数 核医学 病理 磁共振成像 内科学
作者
Qingxia Wu,Dapeng Shi,Shewei Dou,Ligang Shi,Mingbo Liu,Li Dong,Xiaowan Chang,Meiyun Wang
出处
期刊:Journal of Magnetic Resonance Imaging [Wiley]
卷期号:49 (4): 1141-1148 被引量:63
标识
DOI:10.1002/jmri.26301
摘要

Background Robust parameters to evaluate pathological aggressiveness are needed to provide individualized therapy for cervical cancer patients. Purpose To investigate the radiomics analysis of multiparametric MRI to evaluate tumor grade, lymphovascular space invasion (LVSI), and lymph node (LN) metastasis of cervical squamous cell carcinoma (CSCC). Study Type Retrospective. Subjects Fifty‐six patients with histopathologically confirmed CSCC. Field Strength/Sequence 3T, axial T 2 and T 2 with fat suppression (FS), diffusion‐weighted imaging (DWI) (multi‐b values), axial dynamic contrast enhanced (DCE) MRI (8 sec temporal resolution). Assessment Regions of interest were drawn around the tumor on each axial slice and fused to generate the whole tumor volume. Sixty‐six radiomics features were derived from each image sequence, including axial T 2 and T 2 FS, ADC maps, and K trans , V e , and V p maps from DCE MRI. Statistical Tests A univariate analysis was performed to assess each parameter's association with tumor grade and the presence of lymphovascular space invasion (LVSI) and lymph node (LN) metastasis. A principal component analysis was employed for dimension reduction and to generate new discriminative valuables. Using logistic regression, a discriminative model of each parameter was built and a receiver operating characteristic curve (ROC) was generated. Results The area under the ROC curve (AUC) of anatomical, diffusion, and permeability parameters in discriminating the presence of LVSI ranged from 0.659 to 0.814, with V e showing the best discriminative value. The AUC in discriminating the presence of LN metastasis and distinguishing tumor grade ranged from 0.747 to 0.850, 0.668 to 0.757, with ADC and V e showing the best discriminative value, respectively. Data Conclusion Functional maps exhibit better discriminative values than anatomical images for discriminating the pathological features of CSCC, with ADC maps showing the best discrimination performance for LN metastasis and V e maps showing the best discriminative value for LVSI and tumor grade. Level of Evidence: 3 Technical Efficacy: Stage 2 J. Magn. Reson. Imaging 2019;49:1141–1148.
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