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Updated: Jan 20, 2026

Experimental Melanoma Immunotherapy Model Using Tumor Vaccination with a Hematopoietic Cytokine
Published on: February 24, 2023
Genomic profiling of a dedifferentiated mucosal melanoma following exposure to immunotherapy
Lisa Prior1, Sinead Toomey2, Megan Greally1
1Departments of Medical Oncology.
Abstract:
The treatment landscape for metastatic melanoma has been revolutionised by the introduction of immunotherapy and targeted therapies. Despite these advances, some patients exhibit primary or acquired resistance to treatment. We present the case of a resected mucosal melanoma that on relapse underwent transformation to a dedifferentiated state. The relapsed tumour was phenotypically disparate and demonstrated loss of all typical melanoma-associated immunohistochemical markers. Furthermore, it demonstrated aggressive biological behaviour and immunotherapy resistance. We performed genomic profiling of the original and relapsed tumour to further elucidate the mechanisms underlying this rare phenomenon. Mass spectrometry-based single-nucleotide polymorphism genotyping technology was used to screen for mutations in the original and recurrent tumour. Whole-exome sequencing was performed on the original tumour, recurrent tumour and blood. Both the original and recurrent tumour shared a NRAS mutation, a similar aneuploidy profile and proportion of somatic single-nucleotide variants. However, in contrast to the original tumour, the recurrent tumour demonstrated a lower mutational burden and deletions in the CDKN2A/CDKN2B and CHEK2 genes. The genomic similarity between the original and recurrent tumour attests to a common ancestry and the possible existence of nongenomic drivers inciting phenotype plasticity. In contrast, the low mutational load and potential inactivation of tumour suppressor genes in the recurrent tumour may underlie its rapid proliferative rate and immunoresistance. Dynamic treatment models are desired in the future to track the genomic and epigenetic evolution of a tumour to guide optimal therapy choice and sequencing.
Insights
Metastatic melanoma can transform into a dedifferentiated state upon relapse, losing typical markers and becoming resistant to immunotherapy. Genomic analysis revealed shared mutations but distinct tumor suppressor gene deletions in the recurrent tumor.
Area of Science:
- Oncology
- Genomics
- Cancer Biology
Background:
- Metastatic melanoma treatment has advanced with immunotherapy and targeted therapies.
- However, primary and acquired treatment resistance remain significant challenges.
- Understanding resistance mechanisms is crucial for improving patient outcomes.
Observation:
- A case of resected mucosal melanoma is presented, which transformed into a dedifferentiated state upon relapse.
- The relapsed tumor exhibited phenotypic divergence, loss of melanoma markers, aggressive behavior, and immunotherapy resistance.
- Genomic profiling was performed on both original and relapsed tumors.
Findings:
- Both tumors shared an NRAS mutation and similar aneuploidy profiles.
- The recurrent tumor showed a lower mutational burden and deletions in CDKN2A/CDKN2B and CHEK2 genes.
- Genomic similarity suggests common ancestry, while genomic alterations may drive dedifferentiation and resistance.
Implications:
- Phenotype plasticity and tumor suppressor gene inactivation may contribute to aggressive behavior and immunotherapy resistance in dedifferentiated melanoma.
- Dynamic treatment models are needed to track tumor evolution and guide therapy.
- Further research into nongenomic drivers of phenotype plasticity is warranted.
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