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Updated: Sep 5, 2025

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Published on: February 5, 2020
Non-synergy of PD-1 blockade with T-cell therapy in solid tumors
John S Davies1,2, Farrah Karimipour1, Ling Zhang1
1NCI, National Institutes of Health, Bethesda, Maryland, USA.
Background:
Cell therapy has shown promise in the treatment of certain solid tumors, but its efficacy may be limited by inhibition of therapeutic T cells by the programmed cell death protein-1 (PD-1) receptor. Clinical trials are testing cell therapy in combination with PDCD1 disruption or PD-1-axis blockade. However, preclinical data to support these approaches and to guide the treatment design are lacking.
Methods:
Mechanisms of tumor regression and interaction between cell therapy and PD-1 blockade were investigated in congenic murine tumor models based on targeting established, solid tumors with T-cell receptor T cells directed against tumor-restricted, non-self antigens (ie, tumor neoantigens).
Results:
In solid tumor models of cell therapy, PD-1 blockade mediated a reproducible but non-synergistic increase in tumor regression following adoptive T-cell transfer. Tumor regression was associated with increased tumor infiltration by endogenous T cells but not by transferred T cells. The effect was independent of PD-1 receptor expression by transferred T cells and was dependent on the endogenous T-cell repertoire and on tumor antigenicity. PD-1 blockade primarily induced cell state changes in endogenous tumor-antigen-specific T cells rather than transferred T cells.
Conclusions:
Together, these findings support the concept that PD-1 blockade acts primarily through endogenous rather than transferred T cells to mediate a non-synergistic antitumor effect in solid tumor cell therapy. These findings have important implications for strategies to leverage PD-1 receptor disruption or blockade to enhance the efficacy of cell therapy.
Insights
Programmed cell death protein-1 (PD-1) blockade enhances cell therapy for solid tumors by boosting endogenous T cells, not transferred ones. This offers insights for improving cancer treatment strategies.
Area of Science:
- Immunology
- Oncology
- Cell Therapy
Background:
- Cell therapy shows potential for solid tumors but can be limited by T cell inhibition via the programmed cell death protein-1 (PD-1) receptor.
- Clinical trials are exploring PD-1 pathway blockade or disruption combined with cell therapy.
- Preclinical data are needed to guide the design of these combined treatment strategies.
Purpose of the Study:
- To investigate the mechanisms of tumor regression in response to cell therapy combined with PD-1 blockade.
- To understand the interaction between cell therapy and PD-1 blockade in solid tumor models.
- To evaluate the impact of PD-1 blockade on both transferred and endogenous T cells.
Main Methods:
- Utilized congenic murine solid tumor models.
- Administered T-cell receptor T cells targeting tumor neoantigens.
- Investigated the effects of PD-1 blockade in combination with adoptive T-cell transfer.
Main Results:
- PD-1 blockade reproducibly increased tumor regression but not synergistically with cell therapy.
- Tumor regression correlated with increased infiltration by endogenous T cells, not transferred T cells.
- PD-1 blockade's effects were dependent on the endogenous T-cell repertoire and tumor antigenicity, primarily altering endogenous T cell states.
Conclusions:
- PD-1 blockade enhances cell therapy for solid tumors mainly by activating endogenous T cells, not the transferred therapeutic cells.
- The antitumor effect of PD-1 blockade in this context is non-synergistic.
- These findings are crucial for developing strategies that combine PD-1 blockade with cell therapy to improve cancer treatment efficacy.
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