RhoA activation promotes glucose uptake to elevate proliferation in MAPK inhibitor resistant melanoma cells

Vasanth Siruvallur Murali1,2, Divya Rajendran1,2, Tadamoto Isogai1,2

  • 1Lyda Hill Department of Bioinformatics, UT Southwestern Medical Center, Dallas, TX, USA.

Insights

Resistance to melanoma treatments like MAPKi can be overcome by targeting RhoA signaling. Inhibiting Rho-kinase (ROCK) reduces glucose uptake and glycolysis, offering a new strategy for long-term cancer therapy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Metabolism

Background:

  • Cutaneous melanomas with B-RafV600E mutations are treated with MAPK inhibitors (MAPKi), but resistance develops rapidly.
  • MAPKi resistance is linked to an amoeboid phenotype, increased RhoA signaling, and enhanced cell contractility.
  • Rho-kinase (ROCK) inhibitors can reverse MAPKi resistance, but the underlying mechanisms are unclear.

Approach:

  • Investigated RhoA-driven cytoskeletal changes in MAPKi-resistant melanoma cell lines.
  • Assessed glucose uptake and glycolysis in resistant cells and the effects of ROCK inhibition.
  • Elucidated the signaling pathway linking RhoA/ROCK to glucose metabolism and cell proliferation.

Key Points:

  • MAPKi-resistant melanoma cells exhibit elevated RhoA activation and increased F-actin bundles.
  • These cells show increased glucose uptake and glycolysis, which is reversed by ROCK inhibition.
  • Glycolysis is independent of F-actin organization but dependent on RhoA/ROCK signaling.

Conclusions:

  • A novel mechanism reveals that elevated RhoA activates ROCK, leading to IRS1/PI3K pathway activation and GLUT1 expression.
  • This pathway promotes glucose uptake and glycolysis, contributing to MAPKi resistance in melanoma.
  • ROCK inhibitors represent a promising therapeutic strategy for overcoming MAPKi resistance and improving long-term melanoma treatment outcomes.

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