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.
Abstract:
Cutaneous melanomas harboring a B-RafV600E mutation are treated with immune check point inhibitors or kinase inhibitor combination therapies relying on MAPK inhibitors (MAPKi) Dabrafenib and Trametinib (Curti and Faries, 2021). However, cells become resistant to treatments over the timespan of a few months. Resistance to MAPKi has been associated with adoption of an aggressive amoeboid phenotype characterized by elevated RhoA signaling, enhanced contractility and thick cortical filamentous actin (F-actin) structures (Kim et al., 2016; Misek et al., 2020). Targeting active RhoA through Rho-kinase (ROCK) inhibitors, either alone or in combination with immunotherapies, reverts MAPKi-resistance (Misek et al., 2020; Orgaz et al., 2020). Yet, the mechanisms for this behavior remain largely unknown. Given our recent findings of cytoskeleton's role in cancer cell proliferation (Mohan et al., 2019), survival (Weems et al., 2023), and metabolism (Park et al., 2020), we explored possibilities by which RhoA-driven changes in cytoskeleton structure may confer resistance. We confirmed elevated activation of RhoA in a panel of MAPKi-resistant melanoma cell lines, leading to a marked increase in the presence of contractile F-actin bundles. Moreover, these cells had increased glucose uptake and glycolysis, a phenotype disrupted by pharmacological perturbation of ROCK. However, glycolysis was unaffected by disruption of F-actin bundles, indicating that glycolytic stimulation in MAPKi-resistant melanoma is independent of F-actin organization. Instead, our findings highlight a mechanism in which elevated RhoA signaling activates ROCK, leading to the activation of insulin receptor substrate 1 (IRS1) and P85 of the PI3K pathway, which promotes cell surface expression of GLUT1 and elevated glucose uptake. Application of ROCK inhibitor GSK269962A results in reduced glucose uptake and glycolysis, thus impeding cell proliferation. Our study adds a mechanism to the proposed use of ROCK inhibitors for long-term treatments on MAPKi-resistant melanomas.
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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