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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Recognition Dynamics of p53 and MDM2: Implications for Peptide Design
Karim M ElSawy1,2, David P Lane3, Chandra S Verma4,5,6
1York Centre for Complex Systems Analysis (YCCSA), University of York , York, YO10 5GE, United Kingdom.
Abstract:
Peptides that inhibit MDM2 and attenuate MDM2-p53 interactions, thus activating p53, are currently being pursued as anticancer drug leads for tumors harboring wild type p53. The thermodynamic determinants of peptide-MDM2 interactions have been extensively studied. However, a detailed understanding of the dynamics that underlie these interactions is largely missing. In this study, we explore the kinetics of the binding of a set of peptides using Brownian dynamics simulations. We systematically investigate the effect of peptide C-terminal substitutions (Ser, Ala, Asn, Pro) of a Q16ETFSDLWKLLP27 p53-based peptide and a M1PRFMDYWEGLN12 12/1 phage-derived peptide on their interaction dynamics with MDM2. The substitutions modulate peptide residence times around the MDM2 protein. In particular, the highest affinity peptide, Q16ETFSDLWKLLS27, has the longest residence time (t ∼ 25 μs) around MDM2, suggesting its potentially important contribution to binding affinity. The binding of the p53-based peptides appears to be kinetically driven while that of the phage-derived series appears to be thermodynamically driven. The phage-derived peptides were found to adopt distinctly different modes of interaction with the MDM2 protein compared to their p53-based counterparts. The p53-based peptides approach the N-terminal region of the MDM2 protein with the peptide C-terminal end oriented toward the protein, while the M1PRFMDYWEGLN12-based peptides adopt the reverse orientation. To probe the determinants of this switch in orientation, a designed mutant of the phage-derived peptide, R3E (M1PEFMDYWEGLN12), was simulated and found to adopt the orientation adopted by the p53-based peptides and also to result in almost a 5-fold increase in the peptide residence time (∼120 μs) relative to the p53-based peptides. On this basis, we suggest that the R3E mutant phage-derived peptide has a higher affinity for MDM2 than the p53-based peptides and would therefore, competitively inhibit MDM2-p53. The study, therefore, provides a novel computational framework for kinetics-based lead optimization for anticancer drug development strategies.
Insights
Researchers used Brownian dynamics simulations to study peptide-MDM2 interactions for cancer drug development. A modified phage peptide showed significantly longer binding times, suggesting enhanced potential for inhibiting MDM2-p53 interactions.
Area of Science:
- Computational biophysics and drug discovery.
- Molecular dynamics simulations of protein-peptide interactions.
Background:
- Peptides inhibiting MDM2-p53 interactions are investigated as anticancer agents.
- Understanding peptide-MDM2 binding dynamics is crucial but largely unexplored.
- Thermodynamic aspects of peptide-MDM2 interactions are well-studied.
Purpose of the Study:
- To explore the kinetics of peptide binding to MDM2 using simulations.
- To investigate the impact of C-terminal peptide substitutions on interaction dynamics.
- To compare binding mechanisms of p53-based and phage-derived peptides.
Main Methods:
- Brownian dynamics simulations were employed to analyze peptide-MDM2 interactions.
- Systematic investigation of C-terminal substitutions in p53-based and phage-derived peptides.
- Analysis of peptide residence times and binding orientations.
Main Results:
- Peptide substitutions modulated residence times; highest affinity peptide showed longest residence time (~25 μs).
- p53-based peptides exhibited kinetically driven binding, while phage-derived peptides showed thermodynamically driven binding.
- A designed R3E mutant of a phage-derived peptide demonstrated a ~5-fold increase in residence time (~120 μs) and altered binding orientation.
Conclusions:
- The R3E mutant phage-derived peptide exhibits higher affinity for MDM2, suggesting potential for competitive inhibition of MDM2-p53.
- Binding kinetics and orientation are critical determinants of peptide-MDM2 interactions.
- A novel computational framework for kinetics-based lead optimization in anticancer drug development is proposed.
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