Longitudinal Surgical Modeling of Early Glioblastoma Recurrence Reveals Emergence of Margin-Associated Neural Programs

Glioblastoma (GBM) is a lethal, treatment-resistant brain cancer characterized by diffuse brain invasion, complex neuron-glioma signaling, and cellular, molecular, and spatial heterogeneity. Surgery is the current mainstay of treatment, aimed at maximizing tumor cytoreduction, decompressing the brain to improve neurological function, and providing material for analyses to inform prognostication and adjuvant treatment selection. To accurately model GBM surgical resection and tissue sampling in preclinical animal models, we developed the Maximal Safe Intracranial Surgery (MSIS) system. MSIS integrated a miniaturized neurosurgical resection device and enabled a safe, tunable, and reproducible approach for intracranial tumor resection, multi-regional biopsy, and longitudinal tissue sampling in murine models, with stereotactic, sterile, and high-viability tissue collection. MSIS was applied across five distinct orthotopic brain tumor models to reproducibly generate histologically and radiologically representative models of post-surgical GBM. Similar to humans, increasing the extent of resection correlated with improved animal survival, and recurrent growth patterns varied significantly by model type. Transcriptional profiles of matched primary vs. post-surgical recurrent tumors revealed enrichment of margin-associated transcriptional states consistent with neuron-glioma signaling. Overall, the MSIS system offers opportunities to model the standard-of-care, dissect the spatial and temporal dynamics of GBM, and pair therapeutic discovery with contextual tumor pathobiology.

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Publication Details

Journal
Cancer Research
Published
2026-10-05
DOI
https://doi.org/10.1158/0008-5472.can-25-5176
Primary Topic
Glioma Diagnosis and Treatment
Type
article
Field-Weighted Citation Impact
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article

Longitudinal Surgical Modeling of Early Glioblastoma Recurrence Reveals Emergence of Margin-Associated Neural Programs

Nhan L. Tran, Alexandros Poulopoulos, Michelle Monje, Chixiang Chen et al.
Cancer Research
Glioma Diagnosis and Treatment
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Longitudinal Surgical Modeling of Early Glioblastoma Recurrence Reveals Emergence of Margin-Associated Neural Programs

Nhan L. Tran, Alexandros Poulopoulos, Michelle Monje, Chixiang Chen, Jeffrey A. Winkles, Xiaoxuan Fan, Adarsha P. Malla, Jennifer R. Fang, Pavlos Anastasiadis, Angad Beniwal, Richard Drexler, Graeme F. Woodworth, Chris Sereduk, Matthew J. Flick
article en

Abstract

Glioblastoma (GBM) is a lethal, treatment-resistant brain cancer characterized by diffuse brain invasion, complex neuron-glioma signaling, and cellular, molecular, and spatial heterogeneity. Surgery is the current mainstay of treatment, aimed at maximizing tumor cytoreduction, decompressing the brain to improve neurological function, and providing material for analyses to inform prognostication and adjuvant treatment selection. To accurately model GBM surgical resection and tissue sampling in preclinical animal models, we developed the Maximal Safe Intracranial Surgery (MSIS) system. MSIS integrated a miniaturized neurosurgical resection device and enabled a safe, tunable, and reproducible approach for intracranial tumor resection, multi-regional biopsy, and longitudinal tissue sampling in murine models, with stereotactic, sterile, and high-viability tissue collection. MSIS was applied across five distinct orthotopic brain tumor models to reproducibly generate histologically and radiologically representative models of post-surgical GBM. Similar to humans, increasing the extent of resection correlated with improved animal survival, and recurrent growth patterns varied significantly by model type. Transcriptional profiles of matched primary vs. post-surgical recurrent tumors revealed enrichment of margin-associated transcriptional states consistent with neuron-glioma signaling. Overall, the MSIS system offers opportunities to model the standard-of-care, dissect the spatial and temporal dynamics of GBM, and pair therapeutic discovery with contextual tumor pathobiology.

Cancer Research
University of Maryland, Baltimore (US), Mayo Clinic in Arizona (US), Mayo Clinic Hospital (US), University of Baltimore (US), Stanford University (US)
Openalex Percentile: Top 12%
Glioma Diagnosis and Treatment
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