Trametinib radiosensitises RAS- and BRAF-mutated melanoma by perturbing cell cycle and inducing senescence

Ulrike Schick1, Joan Kyula1, Holly Barker1

  • 1Targeted Therapy Team, The Institute of Cancer Research, London, United Kingdom.

Abstract

Insights

Trametinib, a MEK inhibitor, enhances radiotherapy efficacy in melanoma by inducing cell cycle arrest and senescence. This combination therapy reduced tumor growth in preclinical models with good tolerability.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Research

Background:

  • Melanoma often exhibits radioresistance, limiting the effectiveness of radiotherapy.
  • Constitutive activation of the MAPK pathway, driven by RAS/RAF mutations, contributes to this radioresistance.

Purpose of the Study:

  • To investigate if trametinib, a MEK1/2 inhibitor, can improve the efficacy of radiotherapy in melanoma.
  • To evaluate the combination of trametinib and radiotherapy in preclinical melanoma models.

Main Methods:

  • Clonogenic survival assays were performed on various melanoma cell lines (BRAF, NRAS, KRAS-mutant, and wild-type).
  • Effects on protein levels, cell cycle, DNA damage repair, mitotic catastrophe, and senescence were analyzed.
  • Tumor growth was monitored in athymic mice treated with trametinib and fractionated radiotherapy.

Main Results:

  • Trametinib combined with radiotherapy significantly enhanced cytotoxicity in RAS/RAF-mutated melanoma cells.
  • Radiosensitivity correlated with prolonged G1 arrest, reduced S phase, and increased senescence.
  • Combination treatment in mice led to reduced tumor volume without significant toxicity.

Conclusions:

  • Trametinib effectively radiosensitizes RAS/RAF-mutated melanoma cells through G1 arrest and senescence induction.
  • Combining trametinib with radiotherapy is a well-tolerated and effective strategy for reducing tumor growth in preclinical settings.

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