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Published on: July 30, 2018
Targeting Androgen Receptor as a Novel Radiosensitizing Therapy to Improve Long-Term Survival and Anti-tumor Immunity
Chi Zhang1, Jyoti Kaushal2, Nan Zhao2
1Mayo Clinic Arizona.
Abstract:
Glioblastoma (GBM) remains the most aggressive primary adult brain cancer with limited therapeutic options. Our prior research demonstrated that androgen receptor antagonists (ARAs) enhance survival in GBM mouse models by preferentially suppressing glioma stem cells. This study investigates the potential of ARAs as radiosensitizers in combination with radiotherapy (RT). Combined effects of ARAs and RT were evaluated using an orthotopic GBM mouse model. RNA-Seq and TCGA analyses delineated AR-associated regulatory networks, while integrated cellular and molecular approaches utilizing human and mouse GBM cell lines, as well as in patient-derived primary high-grade glioma cultures, interrogated signaling and immune paradigms. ARA treatment induced G2/M cell cycle arrest, apoptosis, and downregulated DNA repair genes, with AR expression correlating with the DNA repair and TGF-β pathway. In both immortalized GBM cell lines and primary high-grade glioma cultured cells, ARAs in combination with RT showed only a modest enhancement of radiosensitivity. However, in an orthotopic GBM mouse model, ARA + RT demonstrated a strong synergy, achieving 100% long-term survival, compared to less than 50% with ARA alone and 0% with RT alone. Mechanistically, ARA modulated the TGF-β pathway, durably switching from Smad3 linker to c-terminal phosphorylation (pSmad3C) and inhibiting LIF/STAT3 axis. Distinct TGF-βs ligand expression patterns were observed in ARA-treated GBM cells. A protein-protein interaction noted between AR and Smad3, which was disrupted following ARA treatment, leading to elevated protein levels and nuclear localization of pSmad3C (S423/425), indicating normalization/activation of the TGF-β/pSmad3C-dependent anti-tumorigenic cascade. Comprehensive analyses in GBM cell lines and mouse model tissues demonstrated pathway reprogramming characterized by elevated TGF-β2 and increased pSmad3C. Tissue analysis revealed immune activation in the tumor microenvironment, while peripheral blood and spleen showed systemic immune responses following ARA + RT. Our study provides novel insights into how ARAs enhance RT efficacy through immunomodulation involving TGF-β/pSmad3C cascade, offering therapeutic implications in GBM.
Insights
Androgen receptor antagonists (ARAs) combined with radiotherapy (RT) show significant synergy in glioblastoma (GBM) mouse models, leading to 100% long-term survival by modulating the TGF-β pathway and activating immune responses.
Area of Science:
- Oncology
- Cancer Biology
- Immunology
Background:
- Glioblastoma (GBM) is an aggressive brain cancer with poor prognosis.
- Androgen receptor antagonists (ARAs) have shown promise in suppressing glioma stem cells.
- The potential of ARAs as radiosensitizers in GBM treatment is underexplored.
Purpose of the Study:
- To investigate the radiosensitizing effects of ARAs in combination with radiotherapy (RT) for GBM.
- To elucidate the underlying molecular and immune mechanisms of ARA + RT synergy.
- To evaluate the therapeutic efficacy of combined ARA and RT in preclinical GBM models.
Main Methods:
- Orthotopic GBM mouse models were used to assess combined ARA and RT efficacy.
- RNA-sequencing and TCGA analyses identified AR-associated regulatory networks.
- In vitro studies utilized human and mouse GBM cell lines and patient-derived cultures to analyze signaling pathways and immune responses.
Main Results:
- ARA treatment induced G2/M cell cycle arrest, apoptosis, and downregulated DNA repair genes in GBM cells.
- While modest radiosensitivity was observed in vitro, ARA + RT demonstrated 100% long-term survival in an orthotopic GBM mouse model.
- Mechanistically, ARAs modulated the TGF-β pathway, promoting pSmad3C nuclear localization and inhibiting the LIF/STAT3 axis, leading to pathway reprogramming and immune activation.
Conclusions:
- Combined ARA and RT exhibits potent synergistic efficacy in preclinical GBM models, significantly improving survival outcomes.
- ARAs enhance RT efficacy through immunomodulation, involving the TGF-β/pSmad3C cascade and systemic immune responses.
- This study highlights a promising therapeutic strategy for GBM, warranting further clinical investigation.
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