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Oligopeptide Competition Assay for Phosphorylation Site Determination
Published on: May 18, 2017
Phosphorylation regulates Myc expression via prolonged activation of the mitogen-activated protein kinase pathway
Ziqiu Wang1, Lisheng Ge, Meifang Wang
1Thomas E. Starzl Transplant Institute, Department of Surgery, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania 15213, USA.
Abstract:
We previously showed that prolonged and strong ERK phosphorylation induced by Compound 5 (Cpd 5), a Cdc25A protein phosphatase inhibitor, was involved in its mechanism of cell growth inhibition. To study the relationship between ERK phosphorylation and cell growth inhibition, we used Cpd 5 as a tool to investigate ERK-regulated c-Myc expression in Hep3B hepatoma cells. We found that ERK phosphorylation caused by Cpd 5 induced c-Myc phosphorylation, but suppressed c-Myc expression at the mRNA and protein levels. Furthermore, Cpd 5 inhibited c-Myc transcriptional activity and DNA binding ability, and this inhibition was antagonized by ERK kinase (MEK) inhibitor U-0126, implying that the ERK pathway was involved in regulating c-Myc expression. Since the participation of c-Myc protein in transcription requires its dimerization with Max protein, we examined the Myc-Max association in Cpd 5-treated cells and found that Cpd 5 suppressed Myc-Max dimerization. Transfection of Hep3B cells with mutated ERK (T188A/Y190F), which has lost its dual-phosphorylation sites, attenuated the actions of Cpd 5 on Myc-Max association. To further demonstrate whether Myc phosphorylation by Cpd 5-induced ERK activation was able to directly regulate c-myc gene expression, a chromatin immunoprecipitation (ChIP) assay was used to examine the binding of phospho-Myc to the c-myc promoter region. We found that phospho-Myc induced by Cpd 5 had lost its ability to bind to the c-myc promoter, whereas MEK inhibitor U-0126 antagonized this inhibitory effect. These data suggest that an increase in c-Myc phosphorylation in response to prolonged ERK phosphorylation negatively auto-regulates c-Myc gene expression, leading to the suppression of its target gene expression and cell cycle block.
Insights
Prolonged ERK phosphorylation, induced by Compound 5, triggers c-Myc phosphorylation, suppressing c-Myc expression and leading to cell cycle arrest. This highlights a negative feedback loop in cancer cell growth regulation.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- ERK phosphorylation is implicated in cell growth inhibition.
- Compound 5 (Cpd 5) is a Cdc25A protein phosphatase inhibitor known to induce ERK phosphorylation.
- c-Myc is a key transcription factor involved in cell proliferation.
Purpose of the Study:
- To investigate the role of ERK-regulated c-Myc expression in Compound 5-induced cell growth inhibition.
- To elucidate the mechanism by which ERK affects c-Myc expression and function.
Main Methods:
- Hep3B hepatoma cells were treated with Compound 5 and U-0126 (MEK inhibitor).
- Western blotting, RT-qPCR, and chromatin immunoprecipitation (ChIP) assays were performed.
- Mutated ERK constructs were used to assess the role of phosphorylation sites.
Main Results:
- Compound 5 induced c-Myc phosphorylation but suppressed its mRNA and protein levels.
- ERK activation by Compound 5 inhibited c-Myc transcriptional activity and DNA binding.
- Compound 5 suppressed Myc-Max dimerization and phospho-Myc binding to the c-myc promoter.
- U-0126 antagonized the effects of Compound 5 on c-Myc regulation.
Conclusions:
- Prolonged ERK phosphorylation negatively auto-regulates c-Myc gene expression via increased c-Myc phosphorylation.
- This auto-regulation leads to suppressed target gene expression and cell cycle arrest.
- The ERK-c-Myc pathway is a critical mechanism in Compound 5's anti-cancer effects.
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