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Updated: Jun 11, 2025

Isolation and Flow Cytometric Analysis of Glioma-infiltrating Peripheral Blood Mononuclear Cells
Published on: November 28, 2015
MAPK/ERK signaling in gliomas modulates interferon responses, T cell recruitment, microglia phenotype, and immune
Kwang-Soo Kim1,2, Junyi Zhang3,4,5,6, Víctor A Arrieta1,2
1Department of Neurological Surgery, Feinberg School of Medicine, Northwestern University, Chicago, IL, USA.
Background:
Glioblastoma (GB) remains a formidable challenge in neuro-oncology, with immune checkpoint blockade (ICB) showing limited efficacy in unselected patients. We previously recently established that MAPK/ERK signaling is associated with overall survival following anti-PD-1 and anti-CTLA-4 treatment in recurrent GB. However, the causal relationship between MAPK/ERK signaling and susceptibility to ICB, as well as the mechanisms underlying this association, remain poorly understood.
Method:
We conducted in vivo kinome-wide CRISPR/Cas9 screenings in murine gliomas to identify key regulators of susceptibility to anti-PD-1 and CD8+ T cell responses and performed survival studies to validate the most relevant genes. Additionally, paired single cell RNA-sequencing (scRNA-seq) with p-ERK staining, spatial transcriptomics on GB samples, and ex-vivo slice culture of a BRAFV600E mutant GB tumor treated with BRAFi/MEKi were used to determine the causal relationship between MAPK signaling, tumor cell immunogenicity, and modulation of microglia phenotype.
Results:
CRISPR/Cas9 screens identified the MAPK pathway, particularly the RAF-MEK-ERK pathway, as the most critical modulator of glioma susceptibility to CD8+ T cells, and anti-PD-1 across all kinases. Experimentally-induced ERK phosphorylation in gliomas enhanced survival with ICB treatment, led to durable anti-tumoral immunity upon re-challenge and memory T cell infiltration in long-term survivors. Elevated p-ERK in glioma cells correlated with increased interferon responses, antigen presentation and T cell infiltration in GB. Moreover, spatial transcriptomics and scRNA-seq analysis revealed the modulation of interferon responses by the MAPK/ERK pathway in BRAFV600E human GB cells with ERK1/2 knockout and in slice cultures of human BRAFV600E GB tissue. Notably, BRAFi/MEKi treatment disrupted the interaction between tumor cells and tumor-associated macrophages/microglia in slice cultures from BRAFV600E mutant GB.
Conclusion:
Our data indicate that the MAPK/ERK pathway is a critical regulator of GB cell susceptibility to anti-tumoral immunity, modulating interferon responses, and antigen-presentation in glioma cells, as well as tumor cell interaction with microglia. These findings not only elucidate the mechanistic underpinnings of immunotherapy resistance in GB but also highlight the MAPK/ERK pathway as a promising target for enhancing immunotherapeutic efficacy in this challenging malignancy.
Insights
The MAPK/ERK pathway regulates glioblastoma's response to immunotherapy by affecting T cell infiltration and interferon responses. Targeting this pathway could improve treatment efficacy for this challenging brain cancer.
Area of Science:
- Neuro-oncology
- Immunology
- Molecular Biology
Background:
- Glioblastoma (GB) poses a significant challenge in neuro-oncology.
- Immune checkpoint blockade (ICB) has limited efficacy in unselected GB patients.
- MAPK/ERK signaling is linked to survival in recurrent GB treated with ICB, but its causal role is unclear.
Purpose of the Study:
- To investigate the causal relationship between MAPK/ERK signaling and susceptibility to ICB in glioblastoma.
- To elucidate the mechanisms by which MAPK/ERK signaling influences tumor immunogenicity and the tumor microenvironment.
- To identify potential therapeutic targets for enhancing ICB efficacy in GB.
Main Methods:
- In vivo kinome-wide CRISPR/Cas9 screens in murine gliomas.
- Survival studies to validate key genes.
- Single cell RNA-sequencing (scRNA-seq) with p-ERK staining.
- Spatial transcriptomics on human GB samples.
- Ex vivo slice culture of BRAFV600E mutant GB treated with BRAFi/MEKi.
Main Results:
- The MAPK pathway, specifically RAF-MEK-ERK, critically modulates glioma susceptibility to CD8+ T cells and anti-PD-1 therapy.
- Experimentally induced ERK phosphorylation enhanced survival with ICB, promoting durable anti-tumoral immunity and memory T cell infiltration.
- Elevated p-ERK correlated with increased interferon responses, antigen presentation, and T cell infiltration in GB.
- MAPK/ERK pathway modulated interferon responses and antigen presentation in human GB cells and disrupted tumor cell-microglia interactions in BRAFV600E GB models.
Conclusions:
- The MAPK/ERK pathway is a key regulator of glioblastoma cell susceptibility to anti-tumoral immunity.
- This pathway influences interferon responses, antigen presentation, and microglia interactions in the tumor microenvironment.
- Targeting the MAPK/ERK pathway presents a promising strategy to enhance immunotherapeutic efficacy in glioblastoma.
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