Differential diagnosis of thyroid nodules with virtual touch tissue imaging of ARFI elastography

Tao Li, Pei Zhou, Mingyue Ding, Yongwei Mi, Yiyong Li, Ji Zhang
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Abstract

The aim of this study was to evaluate the diagnostic performance of virtual touch tissue imaging (VTI) based on ARFI elastography technique for differentiating malignant from benign thyroid nodules. One hundred pathologically proven thyroid nodules (80 benign, 20 malignant) in 76 participants were recruited in this study. The likelihood of malignancy in the light of VTI features was scored into 6 levels by one experienced sonogist who was blinded to pathological results. In addition, the mean gray value within the thyroid nodule (mGVTN) derived from VTI image was calculated for quantitative analysis. Receiver-operating characteristic curve (ROC) analyses were performed to assess the diagnostic performance of VTI score and mGVTN. The frequency of malignant nodules (11/20) classified between VTI levels 4 to 6 was more than that of benign nodules (6/80) (p <0.001). The mGVTN of malignant nodules (45±23) was significantly lower than that of benign nodules (115±58) (p <0.001), where the range of mGVTN was from 0 to 255. The sensitivity, specificity, accuracy, positive predictive value and negative predictive value of VTI score were 55.0%, 92.5%, 85.0%, 64.7% and 89.2%, respectively. For mGVTN, those values were 70.0%, 90.0%, 86.0%, 63.6% and 92.3%, respectively. In conclusion, the VTI image seemed to be an effective tool in the differential diagnosis of thyroid nodules. The diagnosis performance of mGVTN was almost consistent with that of VTI score, which indicated that the mGVTN as a quantitative parameter might facilitate doctors diagnosing malignant thyroid nodules by VTI.
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ARFI弹性成像的虚拟触摸组织成像对甲状腺结节的鉴别诊断
本研究的目的是评估基于ARFI弹性成像技术的虚拟触摸组织成像(VTI)对甲状腺结节良恶性鉴别的诊断性能。本研究招募了76名参与者的100个病理证实的甲状腺结节(80个良性,20个恶性)。根据VTI特征,恶性肿瘤的可能性由一位经验丰富的超声医师评分为6个级别,他对病理结果一无所知。此外,计算由VTI图像得到的甲状腺结节内平均灰度值(mGVTN)进行定量分析。采用受试者工作特征曲线(ROC)分析评价VTI评分和mGVTN的诊断价值。VTI分级在4 ~ 6级的恶性结节(11/20)多于良性结节(6/80)(p <0.001)。恶性结节的mGVTN(45±23)明显低于良性结节(115±58)(p <0.001),其mGVTN范围为0 ~ 255。VTI评分的敏感性、特异性、准确性、阳性预测值和阴性预测值分别为55.0%、92.5%、85.0%、64.7%和89.2%。对于mGVTN,这些值分别为70.0%、90.0%、86.0%、63.6%和92.3%。综上所述,VTI图像似乎是甲状腺结节鉴别诊断的有效工具。mGVTN的诊断效果与VTI评分的诊断效果基本一致,说明mGVTN作为定量参数可能有助于医生利用VTI诊断甲状腺恶性结节。
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