Activating Structural Alterations in MAPK Genes Are Distinct Genetic Drivers in a Unique Subgroup Of Spitzoid

Victor L Quan1, Bin Zhang1, Lauren S Mohan1

  • 1Departments of Dermatology.

Insights

New kinase fusions involving MAPK genes are identified as key drivers in Spitzoid neoplasms. These genetic alterations are crucial for diagnosing and potentially treating these rare tumors with targeted therapies.

Area of Science:

  • Oncology
  • Genetics
  • Dermatopathology

Background:

  • Spitzoid neoplasms are often initiated by kinase fusions, leading to constitutive tyrosine kinase activation.
  • Identifying these genomic drivers is essential for accurate diagnosis, prognosis, and patient management.
  • Previous studies focused on well-described kinase fusions in Spitzoid neoplasms.

Purpose of the Study:

  • To identify novel initiating genomic events and drivers in Spitzoid neoplasms.
  • To characterize a distinct subtype of Spitzoid neoplasm associated with MAPK gene alterations.
  • To evaluate the clinical and morphological features of these newly identified neoplasms.

Main Methods:

  • Retrospective analysis of 86 Spitzoid neoplasm cases diagnosed between 2009 and 2018.
  • Whole transcriptome mRNA and DNA sequencing of 1714 genes.
  • Fluorescence in situ hybridization (FISH) for validation.

Main Results:

  • 9% of cases showed structural rearrangements in MAPK genes (excluding BRAF); 47% had previously described kinase fusions.
  • Novel in-frame fusions identified: MAP3K8-DIPC2, MAP3K8-PCDH7, MAP3K8-UBL3, MAP3K8-SVIL, and ATP2A2-MAP3K3.
  • A MAP2K1 in-frame deletion was also found. Cases occurred in younger patients, were predominantly epithelioid, and showed high-grade nuclear atypia. Some were classified as Spitzoid melanomas.

Conclusions:

  • A distinct subtype of Spitzoid neoplasm characterized by MAPK gene structural alterations has been identified.
  • These findings are important for recognizing potential therapeutic targets, including MAPK inhibitors for metastatic disease.
  • The identification of novel kinase fusions provides new insights into the pathogenesis of Spitzoid neoplasms.

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