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Can Structural MRI Radiomics Predict DIPG Histone H3 Mutation and Patient Overall Survival at Diagnosis Time?

机译:结构MRI放射学可以在诊断时预测DIPG组蛋白H3突变和患者总体生存率吗?

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Radiomics was proposed to identify tumor phenotypes noninvasively from quantitative imaging features. The present study aimed at investigating if radiomic features measured at diagnosis time from structural MRI can predict histone H3 mutations and overall survival of patients with diffuse intrinsic pontine glioma. To this end, 316 radiomic features from multimodal diagnostic MRI of 38 patients were extracted, and three clinical parameters were added. Two approaches for computing radiomic features were proposed: a global estimation from a spherical region of interest defined inside the tumor and a local estimation where features are computed inside the previously defined region from fixed size spherical patches and the mean of these features is considered. A feature selection pipeline was then developed. Three machine learning models for H3 mutation classification and three regression models for overall survival prediction were used. Leave-one-out F1-weighted scores for SVM model combining imaging and clinical features reached 0.83, showing a good prediction of H3 mutation using structural MRI. Results on overall survival prediction are not conclusive and suggest the need of a larger number of patients.
机译:提议用Radimics从定量成像特征无创地鉴定肿瘤表型。本研究旨在调查在结构性MRI诊断时测量的放射学特征是否可以预测组蛋白H3突变和弥漫性桥脑神经胶质瘤患者的整体生存。为此,从38例患者的多模式诊断MRI中提取了316个放射特征,并添加了三个临床参数。提出了两种用于计算放射特征的方法:从肿瘤内部定义的感兴趣的球形区域进行全局估计,以及从固定大小的球形斑块在先前定义的区域内部计算特征的局部估计,并考虑这些特征的均值。然后开发了特征选择管道。使用了三个用于H3突变分类的机器学习模型和三个用于总体生存预测的回归模型。结合影像学和临床特征的SVM模型的F1加权平均得分达到0.83,表明使用结构MRI可以很好地预测H3突变。总体生存预测的结果尚无定论,表明需要更多的患者。

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