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首页> 外文期刊>NeuroImage: Clinical >Combined FET PET/MRI radiomics differentiates radiation injury from recurrent brain metastasis
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Combined FET PET/MRI radiomics differentiates radiation injury from recurrent brain metastasis

机译:组合式FET PET / MRI放射线学可区分放射损伤与复发性脑转移

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BackgroundThe aim of this study was to investigate the potential of combined textural feature analysis of contrast-enhanced MRI (CE-MRI) and static O-(2-[18F]fluoroethyl)-L-tyrosine (FET) PET for the differentiation between local recurrent brain metastasis and radiation injury since CE-MRI often remains inconclusive.MethodsFifty-two patients with new or progressive contrast-enhancing brain lesions on MRI after radiotherapy (predominantly stereotactic radiosurgery) of brain metastases were additionally investigated using FET PET. Based on histology (n?=?19) or clinicoradiological follow-up (n?=?33), local recurrent brain metastases were diagnosed in 21 patients (40%) and radiation injury in 31 patients (60%). Forty-two textural features were calculated on both unfiltered and filtered CE-MRI and summed FET PET images (20–40?min p.i.), using the software LIFEx. After feature selection, logistic regression models using a maximum of five features to avoid overfitting were calculated for each imaging modality separately and for the combined FET PET/MRI features. The resulting models were validated using cross-validation. Diagnostic accuracies were calculated for each imaging modality separately as well as for the combined model.ResultsFor the differentiation between radiation injury and recurrence of brain metastasis, textural features extracted from CE-MRI had a diagnostic accuracy of 81% (sensitivity, 67%; specificity, 90%). FET PET textural features revealed a slightly higher diagnostic accuracy of 83% (sensitivity, 88%; specificity, 75%). However, the highest diagnostic accuracy was obtained when combining CE-MRI and FET PET features (accuracy, 89%; sensitivity, 85%; specificity, 96%).ConclusionsOur findings suggest that combined FET PET/CE-MRI radiomics using textural feature analysis offers a great potential to contribute significantly to the management of patients with brain metastases.
机译:背景:本研究的目的是研究对比增强MRI(CE-MRI)和静态O-(2- [18F]氟乙基)-L-酪氨酸(FET)PET结合组织特征分析对区分局部和局部的潜力。方法由于对52例脑转移瘤进行放疗(主要是立体定向放射外科手术)后行MRI检查的新的或进行性对比增强脑损害的患者,还使用FET PET进行了研究。根据组织学(n = 19)或临床放射学随访(n = 33),诊断出局部复发性脑转移是21例(40%),放射损伤是31例(60%)。使用LIFEx软件,在未经过滤和经过过滤的CE-MRI上计算了42个纹理特征,并计算了FET PET图像的总和(20-40分钟/分)。选择特征后,分别针对每种成像模式以及FET PET / MRI组合特征计算了使用最多五个特征以避免过拟合的逻辑回归模型。使用交叉验证对生成的模型进行验证。结果对于放射线损伤与脑转移复发之间的区别,从CE-MRI提取的纹理特征的诊断准确性为81%(敏感性为67%;特异性),从而可以区分放射成像损伤和脑转移复发。 ,90%)。 FET PET的质地特征显示出更高的诊断准确度,为83%(灵敏度为88%;特异性为75%)。然而,结合使用CE-MRI和FET PET功能可获得最高的诊断准确度(准确度为89%;灵敏度为85%;特异性为96%)。结论我们的研究结果表明,结合使用结构特征分析的FET PET / CE-MRI放射线学具有极大的潜力,可以为脑转移患者的治疗做出重大贡献。

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