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MRI-based Radiomics of Sarcomas in the Preclinical Arm of a Coclinical Trial

机译:肉瘤的MRI基础射击在肠外试验中的临床前臂

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Radiomics provide an exciting approach to developing imaging biomarkers in the context of precision medicine. We focuson the preclinical arm of a co-clinical trial investigating synergy of immunotherapy combined with radiation therapy (RT)and surgical resection using a genetically engineered mouse model of sarcoma. Our protocol involves the acquisition ofMRI data with T1, T2 and T1 with contrast agent. There are two MRI time points i.e. one day before RT (20Gy) and oneweek later. After the second MRI acquisition the primary tumor is surgically removed, and the mice are followed for upto 6 months to investigate for local recurrence or distant metastases. The tumor images are segmented using deep learning.We performed radiomics for the tumor, peritumoral rim and the combined tumor and peritumoral rim. Our first radiomicsanalysis was focused on determining features which are most indicative to the effects of RT. Our second analysis aimedto answer if radiomics features could predict primary tumor recurrence within this population. Top features were selectedfor training classifiers based on neural networks and support vector machines. Our results show that gray level radiomicfeatures show that tumors often acquire more heterogeneous texture and that tumor volume increases one-week post RT.The results also suggest that radiomics features serve to indicate likelihood of primary tumor recurrence with the bestpredictive power in the combined tumor and peritumoral area in pre-RT data (AUC: 0.83). In conclusion, we have createda radiomics pipeline to serve in our current preclinical arm of the co-clinical trial.
机译:辐射瘤提供了在精密药物背景下开发成像生物标志物的激动人心的方法。我们焦点在临床试验调查免疫疗法协同作用的临床前臂联合放射治疗(RT)和手术切除使用肉瘤的遗传工程鼠标模型。我们的协议涉及收购带有T1,T2和T1的MRI数据具有造影剂。有两个MRI时间点I.E.在RT前一天(20Gy)和一个一周后。在第二次MRI采集后,手术移除原发性肿瘤,并遵循小鼠探讨局部复发或远处转移的6个月。使用深度学习进行肿瘤图像进行分段。我们对肿瘤,蠕动边缘和组合肿瘤和Peritumoral rim进行了辐射组。我们的第一个射频分析重点是测定最重要的特征,这些特征是RT的影响。我们的第二次分析旨在答案如果adrioMics特征可以预测该人群中的原发性肿瘤复发。选择顶级功能用于基于神经网络和支持向量机的培训分类器。我们的结果表明灰度级射频特征表明,肿瘤常常获得更多的异质质地,肿瘤体积增加一周的rt。结果还表明,辐射族特征有助于表示原发性肿瘤复发的可能性在RT数据(AUC:0.83)中,组合肿瘤和蠕动区域的预测力。总之,我们创造了辐射瘤管道在我们目前的共同临床试验中的临床前臂中服务。

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