High-Throughput Discovery of Near-Infrared Oxazine Probes for Fluorescence-Guided Glioblastoma Surgery
Vince Cataldi, Dhanir Tailor, Antonio R. Montano, Syed Zaki Husain Rizvi, Samrat Chakraborty, Joshua C. Saldivar, Sanjay V. Malhotra, Lei G. Wang, Summer L. Gibbs, Adam W. G. AlaniBackground/Objectives: Glioblastoma (GBM) is the most aggressive primary malignant brain tumor in adults, characterized by highly infiltrative growth and poorly defined margins that hinder complete surgical resection. Fluorescence-guided surgery (FGS) can enhance intraoperative tumor visualization; however, currently available fluorophores often exhibit limited tumor specificity and inconsistent labeling. This study aimed to identify near-infrared (NIR) probes with improved glioblastoma selectivity using a high-throughput discovery approach. Methods: A chemically diverse library of 127 NIR oxazine probes was screened using automated fluorescence imaging across four GBM cell lines and a sarcoma control line. Top-performing probes were further evaluated in an orthotopic U251MG-GFP glioblastoma mouse model to assess blood–brain barrier penetration and tumor localization in vivo. Results: Five candidate probes exhibited strong, selective NIR fluorescence in GBM cells. In vivo imaging revealed that the lead probe, LGW01-44, achieved the highest tumor-to-brain contrast with minimal background signal. Ex vivo analysis of brain sections confirmed preferential accumulation of LGW01-44 within intracranial tumor tissue. Conclusions: These findings establish a scalable high-throughput platform for the discovery of tumor-selective NIR imaging agents and identify the oxazine probe LGW01-44 as a promising candidate for fluorescence-guided glioblastoma surgery.