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PD-1 blockade does not improve efficacy of EpCAM-directed CAR T-cell in lung cancer brain metastasis
Jens Blobner1,2,3, Laura Dengler2, Constantin Eberle2
1Department of Neurosurgery, LMU University Hospital, Ludwig Maximilians University (LMU), 81377, Munich, Germany.
Background:
Lung cancer brain metastasis has a devastating prognosis, necessitating innovative treatment strategies. While chimeric antigen receptor (CAR) T-cell show promise in hematologic malignancies, their efficacy in solid tumors, including brain metastasis, is limited by the immunosuppressive tumor environment. The PD-L1/PD-1 pathway inhibits CAR T-cell activity in the tumor microenvironment, presenting a potential target to enhance therapeutic efficacy. This study aims to evaluate the impact of anti-PD-1 antibodies on CAR T-cell in treating lung cancer brain metastasis.
Methods:
We utilized a murine immunocompetent, syngeneic orthotopic cerebral metastasis model for repetitive intracerebral two-photon laser scanning microscopy, enabling in vivo characterization of red fluorescent tumor cells and CAR T-cell at a single-cell level over time. Red fluorescent EpCAM-transduced Lewis lung carcinoma cells (EpCAM/tdtLL/2 cells) were implanted intracranially. Following the formation of brain metastasis, EpCAM-directed CAR T-cell were injected into adjacent brain tissue, and animals received either anti-PD-1 or an isotype control.
Results:
Compared to controls receiving T-cell lacking a CAR, mice receiving EpCAM-directed CAR T-cell showed higher intratumoral CAR T-cell densities in the beginning after intraparenchymal injection. This finding was accompanied with reduced tumor growth and translated into a survival benefit. Additional anti-PD-1 treatment, however, did not affect intratumoral CAR T-cell persistence nor tumor growth and thereby did not provide an additional therapeutic effect.
Conclusion:
CAR T-cell therapy for brain malignancies appears promising. However, additional anti-PD-1 treatment did not enhance intratumoral CAR T-cell persistence or effector function, highlighting the need for novel strategies to improve CAR T-cell therapy in solid tumors.
Insights
Chimeric antigen receptor (CAR) T-cell therapy shows promise for lung cancer brain metastasis. However, adding anti-PD-1 antibodies did not improve CAR T-cell persistence or tumor control in this study.
Area of Science:
- Oncology
- Immunotherapy
- Neuro-oncology
Background:
- Lung cancer brain metastasis has a poor prognosis, driving the need for new treatments.
- Chimeric antigen receptor (CAR) T-cell therapy is effective in blood cancers but faces challenges in solid tumors like brain metastases.
- The PD-L1/PD-1 pathway is a key target for enhancing CAR T-cell activity within the immunosuppressive tumor microenvironment.
Purpose of the Study:
- To investigate the efficacy of combining anti-PD-1 antibodies with CAR T-cell therapy for lung cancer brain metastasis.
- To evaluate the impact of anti-PD-1 blockade on CAR T-cell persistence and anti-tumor activity in the brain.
Main Methods:
- A murine model of orthotopic lung cancer brain metastasis was established using Lewis lung carcinoma cells.
- Intracerebral CAR T-cells targeting EpCAM were administered, with or without anti-PD-1 antibody treatment.
- In vivo imaging (two-photon laser scanning microscopy) was used to track CAR T-cells and tumor cells at a single-cell level.
Main Results:
- EpCAM-directed CAR T-cells increased intratumoral T-cell density, reduced tumor growth, and improved survival compared to control T-cells.
- The addition of anti-PD-1 antibodies did not enhance CAR T-cell persistence within the tumor.
- Anti-PD-1 treatment did not lead to further reductions in tumor growth or provide additional survival benefits.
Conclusions:
- CAR T-cell therapy demonstrates potential for treating brain metastases from lung cancer.
- Combined anti-PD-1 therapy did not improve CAR T-cell function or outcomes in this model.
- Novel strategies are required to overcome the immunosuppressive tumor microenvironment and enhance CAR T-cell efficacy in solid tumors.
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