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Author Spotlight: Unlocking Insights into the Immune Cell Landscape of Tumors
Published on: August 18, 2023
Tumor cell- and infiltrating immune cell-based supervised learning artificial intelligence multimodal platform for
Xin-Jia Cai1, Chao-Ran Peng2, Chuan-Yang Ding2
1Central Laboratory, Peking University School and Hospital of Stomatology & National Center for Stomatology & National Clinical Research Centre for Oral Diseases & National Engineering Research Centre of Oral Biomaterials and Digital Medical Devices & Beijing Key Laboratory of Digital Stomatology & Research Centre of Engineering and Technology for Computerized Dentistry Ministry of Health & NMPA Key Laboratory for Dental Materials, Beijing, China.
Abstract:
Survival assessment for oral squamous cell carcinoma (OSCC) remains a significant clinical challenge. This study develops novel artificial intelligence (AI) platforms for assessing overall survival in OSCC patients based on 240 whole-slide images from multicenter cohorts. A comprehensive evaluation is conducted on four convolutional neural network architectures under two distinct deep learning (DL) training paradigms: supervised DL with precise annotations (PathS model, c-index = 0.809), and weakly supervised DL using slide-level labels without manual annotations (c-index = 0.707). Gradient-weighted class activation mapping reveals novel AI-based prognostic insights to simultaneously identify tumor cells and tumor-infiltrating immune cells as key predictive features. Additionally, our platform achieved significantly improved accuracy compared to conventional clinical signatures (CS model, c-index = 0.721). Furthermore, the clinical potential is enhanced through the development of a multimodal nomogram combining PathS signatures with CS (c-index = 0.817), representing a substantial advancement in personalized survival assessment for OSCC patients.
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