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Updated: Feb 6, 2026

Tumor Treating Field Therapy in Combination with Bevacizumab for the Treatment of Recurrent Glioblastoma
Published on: October 27, 2014
Glioblastoma Recurrence Correlates With Increased APE1 and Polarization Toward an Immuno-Suppressive Microenvironment
Amanda L Hudson1,2,3, Nicole R Parker1,2,3, Peter Khong1,2,3
1The Brain Cancer Group, Bill Walsh Translational Cancer Research Laboratory, Kolling Institute, St Leonards, NSW, Australia.
Abstract:
While treatment with surgery, radiotherapy and/or chemotherapy may prolong life for patients with glioblastoma, recurrence is inevitable. What is still being discovered is how much these treatments and recurrence of disease affect the molecular profiles of these tumors and how these tumors adapt to withstand these treatment pressures. Understanding such changes will uncover pathways used by the tumor to evade destruction and will elucidate new targets for treatment development. Nineteen matched pre-treatment and post-treatment glioblastoma tumors were subjected to gene expression profiling (Fluidigm, TaqMan assays), MGMT promoter methylation analysis (pyrosequencing) and protein expression analysis of the DNA repair pathways, known to be involved in temozolomide resistance (immunohistochemistry). Gene expression profiling to molecularly subtype tumors revealed that 26% of recurrent post-treatment specimens did not match their primary diagnostic specimen subtype. Post-treatment specimens had molecular changes which correlated with known resistance mechanisms including increased expression of APEX1 (p < 0.05) and altered MGMT methylation status. In addition, genes associated with immune suppression, invasion and aggression (GPNMB, CCL5, and KLRC1) and polarization toward an M2 phenotype (CD163 and MSR1) were up-regulated in post-treatment tumors, demonstrating an overall change in the tumor microenvironment favoring aggressive tumor growth and disease recurrence. This was confirmed by in vitro studies that determined that glioma cell migration was enhanced in the presence of M2 polarized macrophage conditioned media. Further, M2 macrophage-modulated migration was markedly enhanced in post-treatment (temozolomide resistant) glioma cells. These findings highlight the ability of glioblastomas to evade not only the toxic onslaught of therapy but also to evade the immune system suggesting that immune-altering therapies may be of value in treating this terrible disease.
Insights
Glioblastoma tumors adapt to treatments, altering their molecular profile and promoting recurrence. Understanding these changes reveals new therapeutic targets and suggests immune-altering strategies may improve treatment outcomes.
Area of Science:
- Neuro-oncology
- Cancer Molecular Biology
- Tumor Microenvironment
Background:
- Glioblastoma treatment often leads to inevitable recurrence.
- Tumor molecular profiles change under treatment pressure, impacting therapeutic resistance.
- Understanding these adaptive mechanisms is crucial for developing novel treatments.
Purpose of the Study:
- To investigate molecular changes in glioblastoma following treatment.
- To identify how tumors adapt to evade therapy and immune surveillance.
- To uncover new therapeutic targets for glioblastoma.
Main Methods:
- Gene expression profiling of matched pre-treatment and post-treatment glioblastoma tumors.
- Analysis of MGMT promoter methylation status.
- Protein expression analysis of DNA repair pathways and immune cell markers.
Main Results:
- 26% of recurrent tumors showed altered molecular subtypes compared to primary tumors.
- Post-treatment tumors exhibited increased expression of resistance-associated genes (e.g., APEX1) and altered MGMT methylation.
- Genes linked to immune suppression, invasion, and M2 macrophage polarization were upregulated, enhancing tumor cell migration.
Conclusions:
- Glioblastomas adapt to therapy by altering molecular profiles and promoting an immunosuppressive microenvironment.
- Tumor cells enhance migration, particularly in the presence of M2 macrophages, contributing to recurrence.
- Targeting immune evasion and tumor microenvironment modulation may offer new therapeutic avenues for glioblastoma.
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