Genomic profiling of a dedifferentiated mucosal melanoma following exposure to immunotherapy

Lisa Prior1, Sinead Toomey2, Megan Greally1

  • 1Departments of Medical Oncology.

Melanoma Research
|August 20, 2019
PubMed

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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