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Toward In Situ Dynamics of DNA-Bound Full-Length p53 Tetramer
Özlem Demir1, Emilia P Barros1, Rommie E Amaro2
1Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, San Diego, California 92093, United States.
Abstract:
p53 is the most important tumor suppressor in humans as well as the most frequently mutated gene found in human cancers, with ∼50% of all human tumors bearing p53 missense mutations that leave p53 inactive. Restoring p53 activity has been shown to lead to tumor regression even in advanced tumors in mouse models and thus is among the most attractive potential strategies for novel cancer therapy. Full-length p53 (fl-p53) consists of 393 residues and multiple domains, some of which are folded while others are disordered. Using the crystal structures of folded domains and integrative molecular modeling techniques for disordered domains, we generated the first wild-type (WT) fl-p53 tetramer model bound to DNA. When solvated, the system size was ∼500 K atoms, challenging extensive sampling. Using the Anton2 supercomputer for microsecond timescale simulations in explicit solvent and the rigorous Markov state model (MSM) framework, we elucidated the conformational landscape of wild-type p53 as well as two of the p53 hotspot cancer mutants, Y220C and G245S, in a physiological DNA-bound, full-length tetramer context. In the simulated timescale, DNA-bound fl-p53 tetramer bent DNA and formed a compact complex with interactions between the N-terminal and DNA-binding domains (DBDs) and C-terminal domains (CTDs) with DNA. The WT fl-p53 tetramer also sampled a unique quaternary DBD organization that is not accessed by the cancer mutants. The free energy landscapes indicated differential dynamics for the inner and outer p53 DBDs due to the dimer-dimer interface. The dynamics of the druggable L1/S3 pocket was also closely monitored. Ultimately, MSMs identified an underexplored loop 6 (L6) cryptic pocket and captured the effect of p53 tetramerization and cancer mutations.
Insights
Restoring tumor suppressor p53 (also known as TP53) activity is a promising cancer therapy strategy. This study models the full-length p53 tetramer, revealing its DNA interactions and dynamics, and identifying new potential drug targets.
Area of Science:
- Molecular Biology
- Structural Biology
- Computational Biology
Background:
- p53 is a critical human tumor suppressor, frequently mutated in cancer.
- Restoring p53 function is a key goal for novel cancer therapies.
- Understanding full-length p53 (fl-p53) structure and dynamics is essential for therapeutic development.
Purpose of the Study:
- To generate the first model of the wild-type (WT) full-length p53 tetramer bound to DNA.
- To elucidate the conformational landscape of WT p53 and cancer mutants using molecular dynamics.
- To identify potential therapeutic targets by analyzing p53 dynamics and interactions.
Main Methods:
- Integrative molecular modeling combining crystal structures and computational techniques.
- Microsecond timescale molecular dynamics simulations on the Anton2 supercomputer.
- Markov state model (MSM) framework for analyzing conformational dynamics.
Main Results:
- A detailed model of the DNA-bound fl-p53 tetramer was generated, revealing DNA bending and compact complex formation.
- WT fl-p53 exhibited a unique quaternary DNA-binding domain (DBD) organization not seen in mutants.
- Differential dynamics were observed between inner and outer DBDs, and a cryptic pocket in loop 6 (L6) was identified.
Conclusions:
- The study provides unprecedented insights into the structural dynamics of DNA-bound fl-p53.
- Cancer mutations (Y220C, G245S) alter p53 tetramer organization and dynamics.
- The identified L6 cryptic pocket represents a potential new target for p53-based cancer therapies.
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