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Updated: Aug 6, 2025

A Melanoma Patient-Derived Xenograft Model
Published on: May 20, 2019
The MDM2 Inhibitor Navtemadlin Arrests Mouse Melanoma Growth In Vivo and Potentiates Radiotherapy
Katrine Ingelshed1, Diana Spiegelberg2,3, Pavitra Kannan1
1Department of Microbiology, Tumor and Cell Biology, Karolinska Institutet, Stockholm, Sweden.
Abstract:
The tumor suppressor protein p53 is mutated in close to 50% of human tumors and is dysregulated in many others, for instance by silencing or loss of p14ARF. Under steady-state conditions, the two E3 ligases MDM2/MDM4 interact with and inhibit the transcriptional activity of p53. Inhibition of p53-MDM2/4 interaction to reactivate p53 in tumors with wild-type (WT) p53 has therefore been considered a therapeutic strategy. Moreover, studies indicate that p53 reactivation may synergize with radiation and increase tumor immunogenicity. In vivo studies of most MDM2 inhibitors have utilized immunodeficient xenograft mouse models, preventing detailed studies of action of these molecules on the immune response. The mouse melanoma cell line B16-F10 carries functional, WT p53 but does not express the MDM2 regulator p19ARF. In this study, we tested a p53-MDM2 protein-protein interaction inhibitor, the small molecule Navtemadlin, which is currently being tested in phase II clinical trials. Using mass spectrometry-based proteomics and imaging flow cytometry, we identified specific protein expression patterns following Navtemadlin treatment of B16-F10 melanoma cells compared with their p53 CRISPR-inactivated control cells. In vitro, Navtemadlin induced a significant, p53-dependent, growth arrest but little apoptosis in B16-F10 cells. When combined with radiotherapy, Navtemadlin showed synergistic effects and increased apoptosis. In vivo, Navtemadlin treatment significantly reduced the growth of B16-F10 melanoma cells implanted in C57Bl/6 mice. Our data highlight the utility of a syngeneic B16-F10 p53+/+ mouse melanoma model for assessing existing and novel p53-MDM2/MDM4 inhibitors and in identifying new combination therapies that can efficiently eliminate tumors in vivo.
Significance:
The MDM2 inhibitor Navtemadlin arrests mouse tumor growth and potentiates radiotherapy. Our results support a threshold model for apoptosis induction that requires a high, prolonged p53 signaling for cancer cells to become apoptotic.
Insights
The MDM2 inhibitor Navtemadlin reactivates the tumor suppressor p53, halting melanoma growth and enhancing radiotherapy. This study validates a new mouse model for developing p53-MDM2/MDM4 inhibitors and combination therapies.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The tumor suppressor protein p53 is frequently mutated or dysregulated in human cancers.
- MDM2 and MDM4 are E3 ligases that inhibit p53 activity.
- Reactivating p53 in wild-type p53 tumors is a promising therapeutic strategy, potentially synergizing with radiation.
Purpose of the Study:
- To evaluate the efficacy of the MDM2 inhibitor Navtemadlin in a syngeneic mouse melanoma model.
- To investigate the p53-dependent effects of Navtemadlin alone and in combination with radiotherapy.
- To establish a suitable model for assessing p53-MDM2/MDM4 inhibitors and combination therapies.
Main Methods:
- Utilized the B16-F10 mouse melanoma cell line with functional, wild-type p53.
- Employed mass spectrometry-based proteomics and imaging flow cytometry to analyze protein expression.
- Assessed Navtemadlin's effects on cell growth, apoptosis, and tumor progression in vitro and in vivo, with and without radiotherapy.
Main Results:
- Navtemadlin induced p53-dependent growth arrest but limited apoptosis in B16-F10 cells in vitro.
- Combination of Navtemadlin with radiotherapy demonstrated synergistic effects and increased apoptosis.
- Navtemadlin treatment significantly inhibited B16-F10 melanoma tumor growth in C57Bl/6 mice.
Conclusions:
- The B16-F10 p53+/+ mouse melanoma model is effective for evaluating p53-MDM2/MDM4 inhibitors.
- Navtemadlin demonstrates anti-tumor activity and potentiates radiotherapy, supporting its therapeutic potential.
- High, prolonged p53 signaling is required for apoptosis induction, suggesting a threshold model.

