作者
Mohammadhadi Khorrami, Prateek Prasanna, Amit Gupta, Pradnya Patil, Priya D Velu, Rajat Thawani, German Corredor, Mehdi Alilou, Kaustav Bera, Pingfu Fu, Michael Feldman, Vamsidhar Velcheti, Anant Madabhushi
发表日期
2020/1/1
期刊
Cancer immunology research
卷号
8
期号
1
页码范围
108-119
出版商
American Association for Cancer Research
简介
No predictive biomarkers can robustly identify patients with non–small cell lung cancer (NSCLC) who will benefit from immune checkpoint inhibitor (ICI) therapies. Here, in a machine learning setting, we compared changes (“delta”) in the radiomic texture (DelRADx) of CT patterns both within and outside tumor nodules before and after two to three cycles of ICI therapy. We found that DelRADx patterns could predict response to ICI therapy and overall survival (OS) for patients with NSCLC. We retrospectively analyzed data acquired from 139 patients with NSCLC at two institutions, who were divided into a discovery set (D1 = 50) and two independent validation sets (D2 = 62, D3 = 27). Intranodular and perinodular texture descriptors were extracted, and the relative differences were computed. A linear discriminant analysis (LDA) classifier was trained with 8 DelRADx features to predict RECIST-derived response …
引用总数
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