Benign versus Malignant Soft-Tissue Tumors: Differentiation with 3T Magnetic Resonance Image Textural Analysis Including Diffusion-Weighted Imaging

Youngjun Lee, W. Jee, Yoon Sub Whang, C. Jung, Yang-Guk Chung, So-Yeon Lee
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引用次数: 4

Abstract

Purpose: To investigate the value of MR textural analysis, including use of diffusion-weighted imaging (DWI) to differentiate malignant from benign soft-tissue tumors on 3T MRI. Materials and Methods: We enrolled 69 patients (25 men, 44 women, ages 18 to 84 years) with pathologically confirmed soft-tissue tumors (29 benign, 40 malignant) who underwent pre-treatment 3T-MRI. We calculated MR texture, including mean, standard deviation (SD), skewness, kurtosis, mean of positive pixels (MPP), and entropy, according to different spatial-scale factors (SSF, 0, 2, 4, 6) on axial T1-and T2-weighted images (T1WI, T2WI), contrast-enhanced T1WI (CE-T1WI), high b-value DWI (800 sec/mm 2 ), and apparent diffusion coefficient (ADC) map. We used the Mann-Whitney U test, logistic regression, and area under the receiver operating characteristic curve (AUC) for statistical analysis. Results: Malignant soft-tissue tumors had significantly lower mean values of DWI, ADC, T2WI and CE-T1WI, MPP of ADC, and CE-T1WI, but significantly higher kurtosis of DWI, T1WI, and CE-T1WI, and entropy of DWI, ADC, and T2WI than did benign tumors (P < 0.050). In multivariate logistic regression, the mean ADC value (SSF, 6) and kurtosis of CE-T1WI (SSF, 4) were independently associated with malignancy (P ≤ 0.009). A multivariate model of MR features worked well for diagnosis of malignant soft-tissue tumors (AUC, 0.909). Conclusion: Accurate diagnosis could be obtained using MR textural analysis with DWI and CE-T1WI in differentiating benign from malignant soft-tissue tumors.
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良性与恶性软组织肿瘤:3T磁共振图像纹理分析及弥散加权成像鉴别
目的:探讨3T MRI磁共振结构分析(包括弥散加权成像(DWI))对软组织肿瘤良恶性鉴别的价值。材料和方法:我们招募了69例经病理证实的软组织肿瘤患者(29例良性,40例恶性),其中男性25例,女性44例,年龄18 ~ 84岁,接受了术前3T-MRI检查。根据不同的空间尺度因子(SSF、0、2、4、6)对轴向t1和t2加权图像(T1WI、T2WI)、对比增强T1WI (CE-T1WI)、高b值DWI(800秒/mm 2)和表观扩散系数(ADC)图计算MR纹理,包括均值、标准差(SD)、偏度、峰度、正像元均值(MPP)和熵。我们使用Mann-Whitney U检验、logistic回归和受试者工作特征曲线下面积(AUC)进行统计分析。结果:软组织恶性肿瘤DWI、ADC、T2WI、CE-T1WI均值、ADC MPP、CE-T1WI均值显著低于良性肿瘤,DWI、T1WI、CE-T1WI峰度、DWI、ADC、T2WI熵值显著高于良性肿瘤(P < 0.050)。在多因素logistic回归中,平均ADC值(SSF, 6)和CE-T1WI峰度(SSF, 4)与恶性肿瘤独立相关(P≤0.009)。磁共振特征的多变量模型对软组织恶性肿瘤的诊断效果良好(AUC, 0.909)。结论:MR结构分析结合DWI和CE-T1WI对软组织肿瘤良恶性鉴别具有准确的诊断价值。
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