FBXW7 mutations in melanoma and a new therapeutic paradigm

Iraz T Aydin1, Rachel D Melamed1, Sarah J Adams1

  • 1Affiliations of authors: Department of Dermatology (ITY, SJA, AD, DB, JTC) and Department of Pathology (ITA, SJA, MC-M, AD, DB, CC-C, JTC), Icahn School of Medicine at Mount Sinai, New York, NY; Department of Biomedical Informatics (RDM, RR) and Department of Systems Biology (RDM, RR), Columbia University Medical Center, New York, NY; Department of Cancer Research, Skin Cancer Center Hornheide, Munster, Germany (GB); Department of Dermatology, New York University, New York, NY (IO).

Abstract

Insights

FBXW7 gene inactivation is common in melanoma, leading to NOTCH1 activation. Inhibiting NOTCH1 shows promise as a therapeutic strategy for melanoma patients with FBXW7 mutations.

Area of Science:

  • Oncology
  • Cancer Genetics
  • Molecular Biology

Background:

  • Melanoma heterogeneity necessitates distinct therapeutic strategies.
  • Identifying driver genes and therapeutic targets is crucial for melanoma treatment.
  • Genetic insights can guide combinatorial treatment approaches.

Purpose of the Study:

  • To identify actionable "driver" genes in melanoma through exome sequencing.
  • To investigate the role of FBXW7 gene mutations and NOTCH1 pathway in melanoma.
  • To evaluate the therapeutic potential of NOTCH1 inhibition in FBXW7-mutated melanoma.

Main Methods:

  • Exome sequencing of metastatic melanomas to identify somatic mutations.
  • Mutation profiling and functional analysis of FBXW7 and its substrate NOTCH1.
  • In vitro and in vivo assays to assess tumor formation and response to NOTCH1 inhibition.

Main Results:

  • FBXW7 mutations were found in 8.1% of melanoma patients; FBXW7 inactivation occurred in 40% of cell lines.
  • FBXW7 inactivation led to accumulation of NOTCH1 and activation of its target genes.
  • NOTCH1 inhibition resulted in significant tumor shrinkage in vivo.

Conclusions:

  • FBXW7 acts as a tumor suppressor in melanoma, with its inactivation promoting tumor growth.
  • Sustained NOTCH1 activation due to FBXW7 loss identifies a targetable pathway.
  • NOTCH signaling inhibition represents a promising therapeutic strategy for melanoma with FBXW7 alterations.

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