Allosteric MEK inhibitors act on BRAF/MEK complexes to block MEK activation

Gonzalo L Gonzalez-Del Pino1,2, Kunhua Li1,2, Eunyoung Park1,2

  • 1Department of Cancer Biology, Dana-Farber Cancer Institute, Boston, MA 02215.

Insights

Allosteric MEK inhibitors (MEKi) target BRAF/MEK complexes, not free MEK, by stabilizing MEK in a non-activated state. This finding supports developing RAF-selective MEK inhibitors for improved cancer therapies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • The RAF/MEK/ERK pathway is crucial for cell function and frequently dysregulated in cancers.
  • MEK inhibitors (MEKi) are clinically used, often with BRAF inhibitors, for treating melanoma.
  • Emerging evidence suggests MEK inhibitors target RAF/MEK complexes rather than free MEK.

Purpose of the Study:

  • To investigate the mechanism of action of eight diverse, clinical-stage MEKi on BRAF/MEK complexes.
  • To structurally and biochemically characterize MEKi binding to BRAF/MEK complexes.
  • To determine if BRAF/MEK complexes are the primary pharmacologic target for MEKi.

Main Methods:

  • Structural studies of MEKi bound to BRAF/MEK complexes.
  • Biochemical assays to assess MEKi potency against free MEK versus BRAF/MEK complexes.
  • Analysis of MEK activation loop conformation upon MEKi binding.

Main Results:

  • All eight MEKi bind to the allosteric site of MEK within BRAF/MEK complexes.
  • MEKi binding stabilizes the MEK activation loop, preventing RAF-mediated dual phosphorylation and full activation.
  • MEKi demonstrate higher potency against BRAF/MEK complexes compared to free active MEK.

Conclusions:

  • BRAF/MEK complexes represent the physiologically relevant target for allosteric MEK inhibitors.
  • These findings provide a framework for developing more effective and safer RAF-selective MEK inhibitors.
  • Targeting BRAF/MEK complexes offers a promising strategy for cancer therapy.

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