Related Experiment Video
Updated: Jun 25, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Structural basis for high-affinity peptide inhibition of p53 interactions with MDM2 and MDMX
Marzena Pazgier1, Min Liu, Guozhang Zou
1Institute of Human Virology, University of Maryland School of Medicine, 725 West Lombard Street, Baltimore, MD 21201, USA.
Abstract:
The oncoproteins MDM2 and MDMX negatively regulate the activity and stability of the tumor suppressor protein p53--a cellular process initiated by MDM2 and/or MDMX binding to the N-terminal transactivation domain of p53. MDM2 and MDMX in many tumors confer p53 inactivation and tumor survival, and are important molecular targets for anticancer therapy. We screened a duodecimal peptide phage library against site-specifically biotinylated p53-binding domains of human MDM2 and MDMX chemically synthesized via native chemical ligation, and identified several peptide inhibitors of the p53-MDM2/MDMX interactions. The most potent inhibitor (TSFAEYWNLLSP), termed PMI, bound to MDM2 and MDMX at low nanomolar affinities--approximately 2 orders of magnitude stronger than the wild-type p53 peptide of the same length (ETFSDLWKLLPE). We solved the crystal structures of synthetic MDM2 and MDMX, both in complex with PMI, at 1.6 A resolution. Comparative structural analysis identified an extensive, tightened intramolecular H-bonding network in bound PMI that contributed to its conformational stability, thus enhanced binding to the 2 oncogenic proteins. Importantly, the C-terminal residue Pro of PMI induced formation of a hydrophobic cleft in MDMX previously unseen in the structures of p53-bound MDM2 or MDMX. Our findings deciphered the structural basis for high-affinity peptide inhibition of p53 interactions with MDM2 and MDMX, shedding new light on structure-based rational design of different classes of p53 activators for potential therapeutic use.
Insights
Researchers identified a potent peptide inhibitor, PMI, that strongly binds to MDM2 and MDMX oncoproteins, disrupting tumor suppressor p53 interactions. This discovery advances structure-based drug design for novel anticancer therapies targeting p53.
Area of Science:
- Molecular Biology
- Structural Biology
- Oncology
Background:
- MDM2 and MDMX oncoproteins inhibit the tumor suppressor protein p53, crucial for cancer survival.
- These oncoproteins are key molecular targets for anticancer drug development.
- Understanding p53-MDM2/MDMX interactions is vital for designing effective therapies.
Purpose of the Study:
- To identify novel peptide inhibitors of the p53-MDM2/MDMX interaction using phage display screening.
- To characterize the binding affinity and structural basis of potent peptide inhibitors.
- To explore structure-based rational design of p53 activators for therapeutic applications.
Main Methods:
- Screening of a peptide phage library against synthesized MDM2 and MDMX.
- Chemical synthesis of peptide inhibitors using native chemical ligation.
- Determination of crystal structures of MDM2-PMI and MDMX-PMI complexes at 1.6 Å resolution.
Main Results:
- Identification of a potent peptide inhibitor, PMI (TSFAEYWNLLSP), with low nanomolar affinity for MDM2 and MDMX.
- PMI exhibits significantly higher binding affinity compared to wild-type p53 peptides.
- Structural analysis revealed an enhanced intramolecular H-bonding network in PMI and a novel hydrophobic cleft in MDMX induced by PMI.
Conclusions:
- Deciphered the structural basis for high-affinity peptide inhibition of p53-MDM2/MDMX interactions.
- PMI's unique structural features contribute to its conformational stability and potent binding.
- Findings provide a foundation for structure-based rational design of novel p53 activators as anticancer therapeutics.
Related Concept Videos
Abnormal Proliferation
Covalently Linked Protein Regulators
These groups modify specific amino acids in a protein.
Interactions Between Signaling Pathways
Convergence and divergence, and cross-talk between signaling pathways
Two distinct signaling pathways can converge on a single functional unit, which may either be a single protein or a complex of proteins. The response is either functionally distinct or synergistic between the two pathways but different from the response...
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Negative Regulator Molecules

