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Updated: Dec 29, 2025

Experimental Melanoma Immunotherapy Model Using Tumor Vaccination with a Hematopoietic Cytokine
Published on: February 24, 2023
Increased antitumor efficacy of PD-1-deficient melanoma-specific human lymphocytes
Lucine Marotte1,2, Sylvain Simon1,2, Virginie Vignard1,2
1Université de Nantes, Inserm, CRCINA, F-44000 Nantes, France.
Background:
Genome editing offers unique perspectives for optimizing the functional properties of T cells for adoptive cell transfer purposes. So far, PDCD1 editing has been successfully tested mainly in chimeric antigen receptor T (CAR-T) cells and human primary T cells. Nonetheless, for patients with solid tumors, the adoptive transfer of effector memory T cells specific for tumor antigens remains a relevant option, and the use of high avidity T cells deficient for programmed cell death-1 (PD-1) expression is susceptible to improve the therapeutic benefit of these treatments.
Methods:
Here we used the transfection of CAS9/sgRNA ribonucleoproteic complexes to edit PDCD1 gene in human effector memory CD8+ T cells specific for the melanoma antigen Melan-A. We cloned edited T cell populations and validated PDCD1 editing through sequencing and cytometry in each T cell clone, together with T-cell receptor (TCR) chain's sequencing. We also performed whole transcriptomic analyses on wild-type (WT) and edited T cell clones. Finally, we documented in vitro and in vivo through adoptive transfer in NOD scid gamma (NSG) mice, the antitumor properties of WT and PD-1KO T cell clones, expressing the same TCR.
Results:
Here we demonstrated the feasibility to edit PDCD1 gene in human effector memory melanoma-specific T lymphocytes. We showed that PD-1 expression was dramatically reduced or totally absent on PDCD1-edited T cell clones. Extensive characterization of a panel of T cell clones expressing the same TCR and exhibiting similar functional avidity demonstrated superior antitumor reactivity against a PD-L1 expressing melanoma cell line. Transcriptomic analysis revealed a downregulation of genes involved in proliferation and DNA replication in PD-1-deficient T cell clones, whereas genes involved in metabolism and cell signaling were upregulated. Finally, we documented the superior ability of PD-1-deficient T cells to significantly delay the growth of a PD-L1 expressing human melanoma tumor in an NSG mouse model.
Conclusion:
The use of such lymphocytes for adoptive cell transfer purposes, associated with other approaches modulating the tumor microenvironment, would be a promising alternative to improve immunotherapy efficacy in solid tumors.
Insights
Genome editing successfully removed programmed cell death-1 (PD-1) from melanoma-specific T cells. PD-1-deficient T cells showed enhanced anti-tumor activity in vitro and in vivo, improving adoptive cell transfer for solid tumors.
Area of Science:
- Immunology
- Cancer Biology
- Gene Editing
Background:
- Genome editing optimizes T cell function for adoptive cell transfer.
- Programmed cell death-1 (PD-1) editing is established in CAR-T cells but less explored in effector memory T cells for solid tumors.
- PD-1 deficient high avidity T cells may enhance therapeutic benefits for solid tumor patients.
Purpose of the Study:
- To investigate the feasibility of editing the PDCD1 gene in human effector memory T cells specific for melanoma antigen Melan-A.
- To evaluate the anti-tumor properties of PD-1 deficient T cells in vitro and in vivo.
- To analyze the transcriptomic changes in PD-1 deficient T cells.
Main Methods:
- Utilized CAS9/sgRNA ribonucleoprotein complexes for PDCD1 gene editing in human effector memory CD8+ T cells.
- Cloned and validated PDCD1 editing using sequencing and cytometry, alongside T-cell receptor (TCR) sequencing.
- Performed whole transcriptomic analyses and assessed in vitro and in vivo anti-tumor properties in NSG mice.
Main Results:
- Demonstrated successful PDCD1 gene editing, leading to significantly reduced or absent PD-1 expression on T cell clones.
- PD-1 deficient T cell clones exhibited superior anti-tumor reactivity against a PD-L1 expressing melanoma cell line.
- Transcriptomic analysis revealed altered gene expression related to proliferation, DNA replication, metabolism, and cell signaling.
- PD-1 deficient T cells significantly delayed tumor growth in a human melanoma xenograft model.
Conclusions:
- PDCD1 gene editing is feasible in human effector memory T lymphocytes for melanoma.
- PD-1 deficient T cells demonstrate enhanced anti-tumor efficacy, suggesting improved adoptive cell transfer strategies.
- Combining PD-1 deficient T cells with other immunomodulatory approaches holds promise for enhancing immunotherapy in solid tumors.

