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Updated: Feb 25, 2026

Coculture Assays to Study Macrophage and Microglia Stimulation of Glioblastoma Invasion
Published on: October 20, 2016
Inhibition of colony stimulating factor-1 receptor abrogates microenvironment-mediated therapeutic resistance in
D Yan1, J Kowal2,3, L Akkari1,2,3
1Cancer Biology and Genetics Program, Memorial Sloan Kettering Cancer Center, New York, NY, USA.
Abstract:
Glioblastomas represent the most aggressive glioma grade and are associated with a poor patient prognosis. The current standard of care, consisting of surgery, radiation and chemotherapy, only results in a median survival of 14 months, underscoring the importance of developing effective new therapeutic strategies. Among the challenges in treating glioblastomas are primary resistance and the rapid emergence of recurrent disease, which can result from tumor cell-intrinsic mechanisms in addition to tumor microenvironment (TME)-mediated extrinsic resistance. Using a PDGF-B-driven proneural glioma mouse model, we assessed a panel of tyrosine kinase inhibitors with different selectivity profiles. We found that PLX3397, an inhibitor of colony stimulating factor-1 receptor (CSF-1R), blocks glioma progression, markedly suppresses tumor cell proliferation and reduces tumor grade. By contrast, the multi-targeted tyrosine kinase inhibitors dovitinib and vatalanib, which directly target tumor cells, exert minimal anti-tumoral effects in vivo, despite killing glioma cells in vitro, suggesting a TME-mediated resistance mechanism may be involved. Interestingly, PLX3397 interferes with tumor-mediated education of macrophages and consequently restores the sensitivity of glioma cells to tyrosine kinase inhibitors in vivo in preclinical combination trials. Our findings thus demonstrate that microenvironmental alteration by CSF-1R blockade renders tumor cells more susceptible to receptor tyrosine kinase inhibition in a preclinical glioblastoma model, which may have important translational relevance.
Insights
Targeting the tumor microenvironment with CSF-1R inhibitors like PLX3397 can overcome resistance to tyrosine kinase inhibitors in glioblastoma. This approach restores sensitivity, offering a promising therapeutic strategy for aggressive brain tumors.
Area of Science:
- Neuro-oncology
- Cancer immunology
- Drug discovery
Background:
- Glioblastomas are aggressive brain tumors with poor prognosis.
- Current treatments offer limited survival benefits.
- Tumor resistance mechanisms involve both tumor cells and the tumor microenvironment (TME).
Purpose of the Study:
- To evaluate tyrosine kinase inhibitors (TKIs) in a preclinical glioblastoma model.
- To investigate the role of the TME in TKI resistance.
- To explore combination strategies for glioblastoma treatment.
Main Methods:
- Utilized a PDGF-B-driven proneural glioma mouse model.
- Assessed a panel of TKIs with varying selectivity profiles.
- Investigated the effects of CSF-1R inhibition (PLX3397) and multi-targeted TKIs (dovitinib, vatalanib).
- Examined the impact on tumor progression, proliferation, and grade.
- Conducted preclinical combination trials.
Main Results:
- PLX3397 effectively blocked glioma progression, suppressed proliferation, and reduced tumor grade.
- Dovitinib and vatalanib showed minimal anti-tumoral effects in vivo, despite in vitro efficacy.
- PLX3397 interfered with TME-mediated macrophage education.
- Combined PLX3397 with TKIs restored sensitivity in preclinical models.
Conclusions:
- CSF-1R blockade can overcome TME-mediated resistance to TKIs in glioblastoma.
- Targeting the TME is a viable strategy to enhance TKI efficacy.
- This approach holds translational relevance for glioblastoma therapy.

