GRM1 Gene Fusions as an Alternative Molecular Driver in Blue Nevi and Related Melanomas

Thibault Kervarrec1, Giuseppe Lo Bello2, Daniel Pissaloux3

  • 1Department of Pathology, Centre Hospitalier Universitaire de Tours, Tours, France; Biologie des infections à Polyomavirus, INRA UMR 1282 ISP, Université de Tours, Tours, France.

Insights

GRM1 gene fusions are identified as a rare, alternative driver in blue nevi (BN) and melanomas, distinct from common mutations. This discovery offers new insights into the oncogenesis of these rare melanocytic tumors.

Area of Science:

  • Oncology
  • Dermatopathology
  • Cancer Genetics

Background:

  • Activating mutations in GNAQ, GNA11, CYSLTR2, and PLCB4 genes are established drivers of blue nevi (BN) and blue malignant melanocytic tumors.
  • The genetic landscape of these tumors is complex, and alternative oncogenic pathways may exist.

Purpose of the Study:

  • To investigate the role of GRM1 gene fusions as potential oncogenic drivers in blue melanocytic neoplasms lacking common mutations.
  • To characterize the clinical, histopathological, and genetic features of blue nevi and melanomas associated with GRM1 fusions.

Main Methods:

  • Case series analysis of four patients with blue melanocytic neoplasms.
  • Genetic analysis including whole exome RNA sequencing and fluorescence in situ hybridization (FISH) to detect gene fusions and rearrangements.
  • SF3B1 comutation analysis, array comparative genomic hybridization (aCGH), and GRM1 expression analysis.

Main Results:

  • Four cases of blue melanocytic neoplasms harbored GRM1 gene fusions (MYO10::GRM1 or ZEB2::GRM1) and lacked canonical mutations.
  • GRM1 was overexpressed in these cases compared to blue lesions with typical mutations.
  • Two melanomas with MYO10::GRM1 fusions and SF3B1 comutations showed aggressive behavior with rapid metastasis and poor outcomes.

Conclusions:

  • GRM1 gene fusions represent a rare, alternative oncogenic driver in blue nevi and associated melanomas, potentially mutually exclusive of classical mutations.
  • These findings expand the understanding of the molecular pathogenesis of blue melanocytic tumors, particularly plaque-type or Ota nevus subtypes.
  • The identification of GRM1 fusions may have implications for diagnosis and therapeutic strategies in a subset of these rare neoplasms.

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