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Updated: Nov 21, 2025

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
A phosphorylation-dependent switch in the disordered p53 transactivation domain regulates DNA binding
Xun Sun1, H Jane Dyson1, Peter E Wright2
1Department of Integrative Structural and Computational Biology, The Scripps Research Institute, La Jolla, CA 92037.
Abstract:
The tumor-suppressor p53 is a critical regulator of the cellular response to DNA damage and is tightly regulated by posttranslational modifications. Thr55 in the AD2 interaction motif of the N-terminal transactivation domain functions as a phosphorylation-dependent regulatory switch that modulates p53 activity. Thr55 is constitutively phosphorylated, becomes dephosphorylated upon DNA damage, and is subsequently rephosphorylated to facilitate dissociation of p53 from promoters and inactivate p53-mediated transcription. Using NMR and fluorescence spectroscopy, we show that Thr55 phosphorylation inhibits DNA-binding by enhancing competitive interactions between the disordered AD2 motif and the structured DNA-binding domain (DBD). Nonphosphorylated p53 exhibits positive cooperativity in binding DNA as a tetramer. Upon phosphorylation of Thr55, cooperativity is abolished and p53 binds initially to cognate DNA sites as a dimer. As the concentration of phosphorylated p53 is further increased, a second dimer binds and causes p53 to dissociate from the DNA, resulting in a bell-shaped binding curve. This autoinhibition is driven by favorable interactions between the DNA-binding surface of the DBD and the multiple phosphorylated AD2 motifs within the tetramer. These interactions are augmented by additional phosphorylation of Ser46 and are fine-tuned by the proline-rich domain (PRD). Removal of the PRD strengthens the AD2-DBD interaction and leads to autoinhibition of DNA binding even in the absence of Thr55 phosphorylation. This study reveals the molecular mechanism by which the phosphorylation status of Thr55 modulates DNA binding and controls both activation and termination of p53-mediated transcriptional programs at different stages of the cellular DNA damage response.
Insights
Phosphorylation of Thr55 on tumor suppressor p53 acts as a switch, regulating DNA binding and transcription. This molecular mechanism controls p53 activity during the DNA damage response.
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- The tumor suppressor p53 is crucial for cellular response to DNA damage.
- Posttranslational modifications, like phosphorylation, tightly regulate p53 activity.
- Thr55 in the N-terminal transactivation domain acts as a phosphorylation-dependent regulatory switch.
Purpose of the Study:
- To elucidate the molecular mechanism by which Thr55 phosphorylation modulates p53 DNA binding and transcriptional activity.
- To understand how p53 activity is controlled during different stages of the DNA damage response.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy
- Fluorescence spectroscopy
Main Results:
- Thr55 phosphorylation inhibits p53 DNA binding by promoting interactions between the AD2 motif and the DNA-binding domain (DBD).
- Phosphorylation abolishes cooperativity, leading to initial dimer binding and subsequent tetramer dissociation, resulting in a bell-shaped binding curve.
- Additional phosphorylation at Ser46 and the proline-rich domain (PRD) further fine-tune this autoinhibition.
Conclusions:
- The phosphorylation status of Thr55 is a key determinant of p53's DNA-binding affinity and transcriptional output.
- This mechanism allows for dynamic control of p53-mediated transcriptional programs, enabling both activation and termination.
- Understanding Thr55 regulation provides insights into p53's role in DNA damage response and cancer.
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