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Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Mechanistic Analysis of an Extracellular Signal-Regulated Kinase 2-Interacting Compound that Inhibits Mutant
Ramon Martinez1, Weiliang Huang1, Ramin Samadani1
1Department of Pharmaceutical Sciences, University of Maryland, Baltimore- School of Pharmacy, Baltimore, Maryland.
Abstract:
Constitutively active extracellular signal-regulated kinase (ERK) 1/2 signaling promotes cancer cell proliferation and survival. We previously described a class of compounds containing a 1,1-dioxido-2,5-dihydrothiophen-3-yl 4-benzenesulfonate scaffold that targeted ERK2 substrate docking sites and selectively inhibited ERK1/2-dependent functions, including activator protein-1-mediated transcription and growth of cancer cells containing active ERK1/2 due to mutations in Ras G-proteins or BRAF, Proto-oncogene B-RAF (Rapidly Acclerated Fibrosarcoma) kinase. The current study identified chemical features required for biologic activity and global effects on gene and protein levels in A375 melanoma cells containing mutant BRAF (V600E). Saturation transfer difference-NMR and mass spectrometry analyses revealed interactions between a lead compound (SF-3-030) and ERK2, including the formation of a covalent adduct on cysteine 252 that is located near the docking site for ERK/FXF (DEF) motif for substrate recruitment. Cells treated with SF-3-030 showed rapid changes in immediate early gene levels, including DEF motif-containing ERK1/2 substrates in the Fos family. Analysis of transcriptome and proteome changes showed that the SF-3-030 effects overlapped with ATP-competitive or catalytic site inhibitors of MAPK/ERK Kinase 1/2 (MEK1/2) or ERK1/2. Like other ERK1/2 pathway inhibitors, SF-3-030 induced reactive oxygen species (ROS) and genes associated with oxidative stress, including nuclear factor erythroid 2-related factor 2 (NRF2). Whereas the addition of the ROS inhibitor N-acetyl cysteine reversed SF-3-030-induced ROS and inhibition of A375 cell proliferation, the addition of NRF2 inhibitors has little effect on cell proliferation. These studies provide mechanistic information on a novel chemical scaffold that selectively regulates ERK1/2-targeted transcription factors and inhibits the proliferation of A375 melanoma cells through a ROS-dependent mechanism. SIGNIFICANCE STATEMENT: Constitutive activation of the extracellular signal-regulated kinase (ERK1/2) pathway drives the proliferation and survival of many cancer cell types. Given the diversity of cellular functions regulated by ERK1/2, the current studies have examined the mechanism of a novel chemical scaffold that targets ERK2 near a substrate binding site and inhibits select ERK functions. Using transcriptomic and proteomic analyses, we provide a mechanistic basis for how this class of compounds inhibits melanoma cells containing mutated BRAF and active ERK1/2.
Insights
A novel compound selectively inhibits cancer cell growth by targeting ERK2, a key protein in cell proliferation. This inhibition occurs through reactive oxygen species generation, offering a new therapeutic strategy for BRAF-mutated melanoma.
Area of Science:
- Molecular Biology
- Cancer Research
- Medicinal Chemistry
Background:
- Constitutively active extracellular signal-regulated kinase (ERK) 1/2 signaling promotes cancer cell proliferation and survival.
- Previous work identified a scaffold targeting ERK2 substrate docking sites, inhibiting ERK1/2-dependent functions in cancers with Ras or BRAF mutations.
Purpose of the Study:
- To identify chemical features essential for biologic activity of a novel ERK1/2 inhibitor.
- To elucidate the global effects on gene and protein expression in BRAF-mutated melanoma cells.
- To understand the mechanism of action of a lead compound, SF-3-030.
Main Methods:
- Saturation transfer difference-NMR and mass spectrometry to analyze compound-ERK2 interactions.
- Treatment of A375 melanoma cells (BRAF V600E mutant) with SF-3-030.
- Transcriptomic and proteomic analyses to assess global cellular changes.
- Assessment of reactive oxygen species (ROS) and oxidative stress markers (NRF2).
Main Results:
- SF-3-030 formed a covalent adduct with ERK2 at cysteine 252, near the substrate docking site.
- SF-3-030 rapidly altered immediate early gene expression, including Fos family members.
- Transcriptome and proteome changes overlapped with MEK/ERK inhibitors, indicating pathway inhibition.
- SF-3-030 induced ROS and oxidative stress genes (NRF2); ROS inhibition reversed proliferation arrest, while NRF2 inhibition had minimal effect.
Conclusions:
- A novel chemical scaffold selectively regulates ERK1/2-targeted transcription factors.
- SF-3-030 inhibits A375 melanoma cell proliferation via a ROS-dependent mechanism.
- The findings provide mechanistic insight into a new class of selective ERK1/2 inhibitors for BRAF-mutated cancers.
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