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Updated: Aug 16, 2025

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
SLC1A5 enhances malignant phenotypes through modulating ferroptosis status and immune microenvironment in glioma
Liying Han1, Jinpeng Zhou1, Leiyang Li1
1Department of Neurosurgery, Tangdu Hospital, Fourth Military Medical University, Xi'an, China.
Abstract:
Glioma is the most common type of primary malignant tumor in the central nervous system with limited treatment satisfaction. Finding new therapeutic targets has remained a major challenge. Ferroptosis is a novel and distinct type of programmed cell death, playing a regulatory role in the progression of tumors. However, the role of ferroptosis or ferroptosis-related genes (FRGs) in glioma progression has not been extensively studied. In our study, a novel ferroptosis-related prognostic model, including 7 genes, was established, in which patients classified into the high-risk group had more immuno-suppressive status and worse prognosis. Among these 7 genes, we screened solute carrier family 1 member 5 (SLC1A5), an FRG, as a possible new target for glioma treatment. Our results showed that the expression of SLC1A5 was significantly upregulated in glioblastoma tissues compared with the low-grade gliomas. In addition, SLC1A5 knockdown could significantly inhibit glioma cell proliferation and invasion, and reduce the sensitivity of ferroptosis via the GPX4-dependent pathway. Furthermore, SLC1A5 was found to be related to immune response and SLC1A5 knockdown decreased the infiltration and M2 polarization of tumor-associated macrophages. Pharmacological inhibition of SLC1A5 by V9302 was confirmed to promote the efficacy of anti-PD-1 therapy. Overall, we developed a novel prognostic model for glioma based on the seven-FRGs signature, which could apply to glioma prognostic and immune status prediction. Besides, SLC1A5 in the model could regulate the proliferation, invasion, ferroptosis and immune state in glioma, and be applied as a prognostic biomarker and potential therapeutic target for glioma.
Insights
A new 7-gene ferroptosis model predicts glioma prognosis and immune status. Solute carrier family 1 member 5 (SLC1A5) inhibition targets glioma growth and enhances immunotherapy.
Area of Science:
- Neuro-oncology
- Cancer biology
- Immunology
Background:
- Glioma, a common brain tumor, presents treatment challenges.
- Ferroptosis, a programmed cell death form, impacts tumor progression.
- The role of ferroptosis-related genes (FRGs) in glioma is understudied.
Purpose of the Study:
- To establish a ferroptosis-related gene signature for glioma prognosis.
- To identify novel therapeutic targets for glioma treatment.
- To investigate the role of SLC1A5 in glioma progression and immune response.
Main Methods:
- Development of a 7-gene ferroptosis prognostic model.
- Analysis of SLC1A5 expression in glioma tissues.
- Assessment of SLC1A5 knockdown effects on glioma cells and immune cells.
- Evaluation of SLC1A5 inhibition combined with anti-PD-1 therapy.
Main Results:
- The 7-gene model stratified patients by risk, predicting prognosis and immune suppression.
- SLC1A5 was upregulated in glioblastoma and its inhibition suppressed proliferation, invasion, and ferroptosis sensitivity.
- SLC1A5 knockdown reduced tumor-associated macrophage infiltration and M2 polarization.
- Pharmacological inhibition of SLC1A5 enhanced anti-PD-1 therapy efficacy.
Conclusions:
- A novel 7-gene FRG signature serves as a prognostic and immune biomarker for glioma.
- SLC1A5 is a potential therapeutic target regulating glioma growth, ferroptosis, and immunity.
- Targeting SLC1A5 may improve glioma treatment outcomes, including response to immunotherapy.

