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Stoichiometric phosphorylation of human p53 at Ser315 stimulates p53-dependent transcription
J P Blaydes1, M G Luciani, S Pospisilova
1Department of Molecular and Cellular Pathology, Dundee Cancer Research Center, University of Dundee, Dundee DD1 9SY, Scotland, United Kingdom.
Abstract:
p53 protein activity as a transcription factor can be activated in vivo by antibodies that target its C-terminal negative regulatory domain suggesting that cellular enzymes that target this domain may play a role in stimulating p53-dependent gene expression. A phospho-specific monoclonal antibody to the C-terminal Ser(315) phospho-epitope was used to determine whether phosphorylation of endogenous p53 at Ser(315) can be detected in vivo, whether steady-state Ser(315) phosphorylation increases or decreases in an irradiated cell, and whether this phosphorylation event activates or inhibits p53 in vivo. A native phospho-specific IgG binding assay was developed for quantitating the extent of p53 phosphorylation at Ser(315) where one, two, three, or four phosphates/tetramer could be defined after in vitro phosphorylation by cyclin-dependent protein kinases. Using this assay, near-stoichiometric Ser(315) phosphorylation of endogenous p53 protein was detected in vivo after UV irradiation of MCF7 and A375 cells, coinciding with elevated p53-dependent transcription. Transfection of the p53 gene with an alanine mutation at the Ser(315) site into Saos-2 cells gave rise to a form of p53 protein with a substantially reduced specific activity as a transcription factor. The treatment of cells with the cyclin-dependent protein kinase inhibitor Roscovitine promoted a reduction in the specific activity of endogenous p53 or ectopically expressed p53. These results indicate that the majority of p53 protein has been phosphorylated at Ser(315) after irradiation damage and identify a cyclin-dependent kinase pathway that plays a role in stimulating p53 function.
Insights
UV irradiation triggers p53 protein phosphorylation at Ser(315), enhancing its transcription factor activity. This identifies a cyclin-dependent kinase pathway crucial for stimulating p53 function in DNA damage response.
Area of Science:
- Molecular Biology
- Cellular Signaling
- Cancer Research
Background:
- p53 protein acts as a transcription factor, regulating gene expression.
- Its activity can be modulated by modifications like phosphorylation.
- Cellular enzymes targeting p53's C-terminal domain may influence its function.
Purpose of the Study:
- To detect and quantify p53 phosphorylation at Ser(315) in vivo.
- To determine how Ser(315) phosphorylation changes upon UV irradiation.
- To investigate the role of Ser(315) phosphorylation in p53's transcription factor activity.
Main Methods:
- Development of a phospho-specific monoclonal antibody for Ser(315).
- Creation of a native phospho-specific IgG binding assay for quantitation.
- Analysis of p53 activity in cells with Ser(315) mutations and after treatment with kinase inhibitors.
Main Results:
- Near-stoichiometric phosphorylation of p53 at Ser(315) was detected in UV-irradiated cells (MCF7, A375).
- This phosphorylation correlated with increased p53-dependent transcription.
- Mutation of Ser(315) to alanine reduced p53's transcription factor activity.
- Inhibition of cyclin-dependent kinases reduced p53 specific activity.
Conclusions:
- The majority of p53 protein is phosphorylated at Ser(315) following irradiation damage.
- A cyclin-dependent kinase pathway is identified as a key stimulator of p53 function.
- Ser(315) phosphorylation is critical for activating p53's role in gene expression.