Specificity of Phosphorylation Responses to Mitogen Activated Protein (MAP) Kinase Pathway Inhibitors in Melanoma
Joel Basken1, Scott A Stuart1, Andrew J Kavran1,2
1From the ‡Department of Chemistry and Biochemistry.
Abstract:
The BRAF-MKK1/2-ERK1/2 pathway is constitutively activated in response to oncogenic mutations of BRAF in many cancer types, including melanoma. Although small molecules that inhibit oncogenic BRAF and MAP kinase kinase (MKK)1/2 have been successful in clinical settings, resistance invariably develops. High affinity inhibitors of ERK1/2 have been shown in preclinical studies to bypass the resistance of melanoma and colon cancer cells to BRAF and MKK1/2 inhibitors, and are thus promising additions to current treatment protocols. But still unknown is how molecular responses to ERK1/2 inhibitors compare with inhibitors currently in clinical use. Here, we employ quantitative phosphoproteomics to evaluate changes in phosphorylation in response to the ERK inhibitors, SCH772984 and GDC0994, and compare these to the clinically used MKK1/2 inhibitor, trametinib. Combined with previous studies measuring phosphoproteomic responses to the MKK1/2 inhibitor, selumetinib, and the BRAF inhibitor, vemurafenib, the outcomes reveal key insights into pathway organization, phosphorylation specificity and off-target effects of these inhibitors. The results demonstrate linearity in signaling from BRAF to MKK1/2 and from MKK1/2 to ERK1/2. They identify likely targets of direct phosphorylation by ERK1/2, as well as inhibitor off-targets, including an off-target regulation of the p38α mitogen activated protein kinase (MAPK) pathway by the MKK1/2 inhibitor, trametinib, at concentrations used in the literature but higher than in vivo drug concentrations. In addition, several known phosphorylation targets of ERK1/2 are insensitive to MKK or ERK inhibitors, revealing variability in canonical pathway responses between different cell systems. By comparing multiple inhibitors targeted to multiple tiers of protein kinases in the MAPK pathway, we gain insight into regulation and new targets of the oncogenic BRAF driver pathway in cancer cells, and a useful approach for evaluating the specificity of drugs and drug candidates.
Insights
New ERK inhibitors bypass resistance to current cancer drugs by targeting the BRAF-MAPK pathway. This study compares their molecular effects to existing therapies, revealing pathway linearity and off-target impacts.
Area of Science:
- Molecular Biology
- Cancer Research
- Pharmacology
Background:
- The BRAF-MKK1/2-ERK1/2 pathway is crucial in many cancers, often activated by BRAF mutations.
- Resistance to current BRAF and MKK1/2 inhibitors is a significant clinical challenge.
- ERK1/2 inhibitors show preclinical promise in overcoming resistance to existing therapies.
Purpose of the Study:
- To compare the molecular responses to ERK1/2 inhibitors (SCH772984, GDC0994) with clinically used MKK1/2 inhibitors (trametinib).
- To elucidate pathway organization, phosphorylation specificity, and off-target effects within the MAPK pathway.
- To evaluate the specificity and potential of novel ERK inhibitors in cancer treatment.
Main Methods:
- Quantitative phosphoproteomics was employed to analyze global phosphorylation changes.
- Responses to ERK inhibitors SCH772984 and GDC0994 were compared to trametinib.
- Data was integrated with previous studies on BRAF (vemurafenib) and MKK1/2 (selumetinib) inhibitors.
Main Results:
- Demonstrated linear signaling from BRAF to MKK1/2 and MKK1/2 to ERK1/2.
- Identified direct ERK1/2 phosphorylation targets and off-target effects, including p38α MAPK pathway regulation by trametinib at high concentrations.
- Revealed variability in canonical pathway responses, with some ERK1/2 targets insensitive to MKK or ERK inhibition across different cell systems.
Conclusions:
- Comparing multiple MAPK pathway inhibitors provides critical insights into pathway regulation and potential new therapeutic targets.
- ERK1/2 inhibitors represent a promising strategy to overcome resistance in BRAF-mutant cancers.
- Quantitative phosphoproteomics is a valuable approach for assessing drug specificity and candidate evaluation.
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