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Analysis of Human T Cell Activity in an Allogeneic Co-Culture Setting of Pre-Treated Tumor Cells
Published on: March 7, 2025
MYC and p53 Alterations Cooperate through VEGF Signaling to Repress Cytotoxic T-cell and Immunotherapy Responses in
Katherine C Murphy1, Kelly D DeMarco1, Lin Zhou1
1Department of Molecular, Cell, and Cancer Biology, University of Massachusetts Chan Medical School, Worcester, Massachusetts.
Abstract:
Patients with castration-resistant prostate cancer (CRPC) are generally unresponsive to tumor-targeted treatments and immunotherapies. Genetic alterations acquired during the evolution of CRPC may affect antitumor immunity and immunotherapy responses, which could inform personalized therapeutic strategies. Using our innovative electroporation-based mouse models, we generated distinct genetic subtypes of CRPC found in patients and uncovered unique immune microenvironments. Specifically, mouse and human prostate tumors with MYC amplification and p53 disruption had weak cytotoxic lymphocyte infiltration and an overall dismal prognosis. MYC and p53 cooperated to induce tumor-intrinsic secretion of VEGF, which signaled through VEGFR2 expressed on CD8+ T cells to directly inhibit T-cell migration and effector functions. Targeting VEGF-VEGFR2 signaling in vivo remodeled the immunosuppressive prostate tumor microenvironment, leading to CD8+ T-cell-mediated primary tumor and metastasis growth suppression and significantly increased overall survival in MYC- and p53-altered CRPC. VEGFR2 blockade also led to the induction of PD-L1 in tumors and produced antitumor efficacy in combination with PD-L1 immune checkpoint blockade in multiple preclinical CRPC mouse models. Thus, these results identify a genetic mechanism of immunosuppression through VEGF signaling in prostate cancer that can be targeted to reactivate immune and immunotherapy responses in an aggressive subtype of CRPC.
Significance:
VEGFR2 blockade inhibits VEGF-mediated T-cell suppression and potentiates the effects of PD-L1 immune checkpoint blockade to treat castration-resistant prostate cancer driven by MYC and p53 alterations.
Insights
Targeting VEGF signaling in prostate cancer reactivates anti-tumor immunity. This approach suppresses tumor growth and improves survival in aggressive castration-resistant prostate cancer (CRPC) subtypes by enhancing CD8+ T cell function.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Castration-resistant prostate cancer (CRPC) often resists current treatments.
- Genetic changes in CRPC can influence immune responses and treatment outcomes.
- Understanding these genetic drivers is key for developing personalized therapies.
Purpose of the Study:
- To investigate how genetic alterations in CRPC affect the tumor immune microenvironment.
- To identify mechanisms of immune suppression in CRPC.
- To explore therapeutic strategies targeting these mechanisms.
Main Methods:
- Generated CRPC mouse models with specific genetic alterations (MYC amplification, p53 disruption).
- Analyzed immune cell infiltration and tumor microenvironment.
- Investigated the role of VEGF-VEGFR2 signaling in T cell function.
- Evaluated therapeutic blockade of VEGF-VEGFR2 and PD-L1 in preclinical models.
Main Results:
- MYC amplification and p53 disruption in CRPC led to reduced cytotoxic T lymphocyte infiltration and poor prognosis.
- Cooperative action of MYC and p53 induced tumor VEGF secretion, inhibiting CD8+ T cell migration and function via VEGFR2.
- VEGF-VEGFR2 blockade remodeled the immune microenvironment, suppressed tumor and metastasis growth, and improved survival.
- VEGFR2 blockade increased PD-L1 expression, enhancing efficacy with PD-L1 immune checkpoint inhibitors.
Conclusions:
- Identified a genetic mechanism of immune suppression in CRPC driven by VEGF signaling.
- Targeting VEGF-VEGFR2 signaling can overcome immune evasion in aggressive CRPC.
- This strategy holds promise for reactivating anti-tumor immunity and improving immunotherapy response in CRPC.
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