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Updated: Jun 14, 2025

Generation of Induced Pluripotent Stem Cells from Human Melanoma Tumor-infiltrating Lymphocytes
Published on: November 11, 2016
Inverse correlation between TP53 gene status and PD-L1 protein levels in a melanoma cell model depends on an
Lucia Martinkova1, Pavlina Zatloukalova2, Martina Kucerikova2,3
1RECAMO, Masaryk Memorial Cancer Institute, 602 00, Brno, Czech Republic. lucia.haronikova@mou.cz.
Background:
PD-L1 expression on cancer cells is an important mechanism of tumor immune escape, and immunotherapy targeting the PD-L1/PD1 interaction is a common treatment option for patients with melanoma. However, many patients do not respond to treatment and novel predictors of response are emerging. One suggested modifier of PD-L1 is the p53 pathway, although the relationship of p53 pathway function and activation is poorly understood.
Methods:
The study was performed on human melanoma cell lines with various p53 status. We investigated PD-L1 and proteins involved in IFNγ signaling by immunoblotting and mRNA expression, as well as membrane expression of PD-L1 by flow cytometry. We evaluated differences in the ability of NK cells to recognize and kill target tumor cells on the basis of p53 status. We also investigated the influence of proteasomal degradation and protein half-life, IFNγ signaling and p53 activation on biological outcomes, and performed bioinformatic analysis using available data for melanoma cell lines and melanoma patients.
Results:
We demonstrate that p53 status changes the level of membrane and total PD-L1 protein through IRF1 regulation and show that p53 loss influences the recently discovered SOX10/IRF1 regulatory axis. Bioinformatic analysis identified a dependency of SOX10 on p53 status in melanoma, and a co-regulation of immune signaling by both transcription factors. However, IRF1/PD-L1 regulation by p53 activation revealed complicated regulatory mechanisms that alter IRF1 mRNA but not protein levels. IFNγ activation revealed no dramatic differences based on TP53 status, although dual p53 activation and IFNγ treatment confirmed a complex regulatory loop between p53 and the IRF1/PD-L1 axis.
Conclusions:
We show that p53 loss influences the level of PD-L1 through IRF1 and SOX10 in an isogenic melanoma cell model, and that p53 loss affects NK-cell cytotoxicity toward tumor cells. Moreover, activation of p53 by MDM2 inhibition has a complex effect on IRF1/PD-L1 activation. These findings indicate that evaluation of p53 status in patients with melanoma will be important for predicting the response to PD-L1 monotherapy and/or dual treatments where p53 pathways participate in the overall response.
Insights
p53 status influences PD-L1 levels in melanoma by regulating IRF1 and SOX10, impacting NK cell-mediated tumor cell killing. Understanding p53’s role is key for predicting immunotherapy response.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Programmed death-ligand 1 (PD-L1) expression is crucial for tumor immune evasion and a target for melanoma immunotherapy.
- Many patients do not respond to PD-L1/PD1-targeted therapies, necessitating new response predictors.
- The p53 pathway's role in modulating PD-L1 expression and immunotherapy response remains unclear.
Purpose of the Study:
- To investigate the relationship between p53 pathway status and PD-L1 expression in melanoma.
- To explore how p53 influences immune signaling and natural killer (NK) cell cytotoxicity in melanoma.
- To identify potential biomarkers for predicting response to PD-L1-based immunotherapies.
Main Methods:
- Utilized human melanoma cell lines with varying p53 status.
- Assessed PD-L1 protein and mRNA levels, and IFNγ signaling pathway components via immunoblotting and flow cytometry.
- Evaluated NK cell-mediated tumor cell killing and performed bioinformatic analysis on cell line and patient data.
Main Results:
- p53 status significantly alters PD-L1 protein levels by regulating IRF1 and the SOX10/IRF1 axis.
- p53 loss impacts NK cell cytotoxicity against melanoma cells.
- While IFNγ activation showed minor differences based on p53 status, combined p53 activation and IFNγ treatment revealed complex regulatory interactions with the IRF1/PD-L1 axis.
Conclusions:
- p53 loss influences PD-L1 levels via IRF1 and SOX10, affecting NK cell activity in melanoma.
- p53 activation, particularly via MDM2 inhibition, has complex effects on the IRF1/PD-L1 pathway.
- Assessing p53 status in melanoma patients may improve predictions for response to PD-L1-based immunotherapies, including combination treatments.
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