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基于 DWI 的放射组学预测急性基底动脉闭塞血管内治疗的功能结局。

DWI-Based Radiomics Predicts the Functional Outcome of Endovascular Treatment in Acute Basilar Artery Occlusion.

机构信息

From the Department of Neurology (X.Z., J.M., J.Y., C.L., J.H., J.S., D.X., C.Y., W.K., J.H., W.L., S.L., F.L., W.Z.), Xinqiao Hospital and The Second Affiliated Hospital, Army Medical University (Third Military Medical University), Chongqing, China.

Department of Neurology (X.Z.), The Affiliated Hospital of Northwest University Xi'an No.3 Hospital, Xian, China.

出版信息

AJNR Am J Neuroradiol. 2023 May;44(5):536-542. doi: 10.3174/ajnr.A7851. Epub 2023 Apr 20.

Abstract

BACKGROUND AND PURPOSE

Endovascular treatment is a reference treatment for acute basilar artery occlusion (ABAO). However, no established and specific methods are available for the preoperative screening of patients with ABAO suitable for endovascular treatment. This study explores the potential value of DWI-based radiomics in predicting the functional outcomes of endovascular treatment in ABAO.

MATERIALS AND METHODS

Patients with ABAO treated with endovascular treatment from the BASILAR registry (91 patients in the training cohort) and the hospitals in the Northwest of China (31 patients for the external testing cohort) were included in this study. The Mann-Whitney test, random forests algorithm, and least absolute shrinkage and selection operator were used to reduce the feature dimension. A machine learning model was developed on the basis of the training cohort to predict the prognosis of endovascular treatment. The performance of the model was evaluated on the independent external testing cohort.

RESULTS

A subset of radiomics features ( = 6) was used to predict the functional outcomes in patients with ABAO. The areas under the receiver operating characteristic curve of the radiomics model were 0.870 and 0.781 in the training cohort and testing cohort, respectively. The accuracy of the radiomics model was 77.4%, with a sensitivity of 78.9%, specificity of 75%, positive predictive value of 83.3%, and negative predictive value of 69.2% in the testing cohort.

CONCLUSIONS

DWI-based radiomics can predict the prognosis of endovascular treatment in patients with ABAO, hence allowing a potentially better selection of patients who are most likely to benefit from this treatment.

摘要

背景与目的

血管内治疗是急性基底动脉闭塞(ABAO)的一种参考治疗方法。然而,对于适合血管内治疗的 ABAO 患者,目前尚无既定的、特定的术前筛选方法。本研究旨在探讨基于 DWI 的放射组学在预测 ABAO 血管内治疗功能结局方面的潜在价值。

材料与方法

本研究纳入了来自 BASILAR 登记处(训练队列 91 例患者)和中国西北地区医院(外部测试队列 31 例患者)的 ABAO 患者,采用 Mann-Whitney U 检验、随机森林算法和最小绝对收缩和选择算子(LASSO)进行特征降维,基于训练队列建立机器学习模型,预测血管内治疗的预后,在独立的外部测试队列中评估模型的性能。

结果

该模型使用放射组学特征子集( = 6)预测 ABAO 患者的功能结局。在训练队列和测试队列中,放射组学模型的受试者工作特征曲线下面积分别为 0.870 和 0.781。在测试队列中,放射组学模型的准确率为 77.4%,灵敏度为 78.9%,特异度为 75%,阳性预测值为 83.3%,阴性预测值为 69.2%。

结论

基于 DWI 的放射组学可预测 ABAO 患者血管内治疗的预后,从而能够更好地选择最有可能从中受益的患者。

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