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Published on: November 28, 2015
CD70 as an actionable immunotherapeutic target in recurrent glioblastoma and its microenvironment
Mathieu Seyfrid1, William Thomas Maich2, Vaseem Muhammad Shaikh1
1Department of Surgery, McMaster University, Hamilton, Ontario, Canada.
Purpose:
Glioblastoma (GBM) patients suffer from a dismal prognosis, with standard of care therapy inevitably leading to therapy-resistant recurrent tumors. The presence of cancer stem cells (CSCs) drives the extensive heterogeneity seen in GBM, prompting the need for novel therapies specifically targeting this subset of tumor-driving cells. Here, we identify CD70 as a potential therapeutic target for recurrent GBM CSCs.
Experimental Design:
In the current study, we identified the relevance and functional influence of CD70 on primary and recurrent GBM cells, and further define its function using established stem cell assays. We use CD70 knockdown studies, subsequent RNAseq pathway analysis, and in vivo xenotransplantation to validate CD70's role in GBM. Next, we developed and tested an anti-CD70 chimeric antigen receptor (CAR)-T therapy, which we validated in vitro and in vivo using our established preclinical model of human GBM. Lastly, we explored the importance of CD70 in the tumor immune microenvironment (TIME) by assessing the presence of its receptor, CD27, in immune infiltrates derived from freshly resected GBM tumor samples.
Results:
CD70 expression is elevated in recurrent GBM and CD70 knockdown reduces tumorigenicity in vitro and in vivo. CD70 CAR-T therapy significantly improves prognosis in vivo. We also found CD27 to be present on the cell surface of multiple relevant GBM TIME cell populations, notably putative M1 macrophages and CD4 T cells.
Conclusion:
CD70 plays a key role in recurrent GBM cell aggressiveness and maintenance. Immunotherapeutic targeting of CD70 significantly improves survival in animal models and the CD70/CD27 axis may be a viable polytherapeutic avenue to co-target both GBM and its TIME.
Insights
CD70 is a promising target for recurrent glioblastoma (GBM). Targeting CD70 with CAR-T therapy improves survival in preclinical models and may offer a new approach for GBM treatment.
Area of Science:
- Neuro-oncology
- Immunotherapy
- Cancer Stem Cell Biology
Background:
- Glioblastoma (GBM) patients have poor prognoses, with standard treatments leading to resistant recurrent tumors.
- Cancer stem cells (CSCs) contribute to GBM heterogeneity and treatment resistance, necessitating targeted therapies.
- CD70 has emerged as a potential therapeutic target for recurrent GBM CSCs.
Purpose of the Study:
- To investigate the role and therapeutic potential of CD70 in primary and recurrent GBM.
- To evaluate the efficacy of anti-CD70 chimeric antigen receptor (CAR)-T therapy against GBM.
- To explore the CD70/CD27 axis in the GBM tumor immune microenvironment (TIME).
Main Methods:
- CD70 knockdown studies and RNAseq pathway analysis.
- In vivo xenotransplantation models for GBM.
- Development and validation of anti-CD70 CAR-T therapy (in vitro and in vivo).
- Assessment of CD27 expression in immune infiltrates from GBM tumors.
Main Results:
- Elevated CD70 expression in recurrent GBM correlates with increased aggressiveness.
- CD70 knockdown reduced GBM cell tumorigenicity in vitro and in vivo.
- Anti-CD70 CAR-T therapy significantly improved survival in preclinical GBM models.
- CD27 was detected on M1 macrophages and CD4 T cells within the GBM TIME.
Conclusions:
- CD70 is crucial for the aggressiveness and maintenance of recurrent GBM cells.
- Targeting CD70 via immunotherapy demonstrates significant survival benefits in animal models.
- The CD70/CD27 axis represents a potential therapeutic strategy for co-targeting GBM and its TIME.
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