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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Characterizing p53 structural insights of variants in vertebrates that interfere its regulatory interaction with Mdm2
Umesh Kalathiya1, Natalia Marek-Trzonkowska1, Monikaben Padariya1
1International Centre for Cancer Vaccine Science, University of Gdansk, Ul. Kładki 24, 80-822, Gdansk, Poland.
Abstract:
The tumor suppressor p53, transcriptionally regulates several target genes, and in the absence of cellular stress its basal protein levels are tightly regulated by Mdm2 (Murine double minute 2). Species with functional p53 are less prone to cancer, and in mammals this oncogene has a multifunctional role towards cancer tolerance. Herein, we examined naturally evolving p53 protein across vertebrates with its negative regulator, along with exploring their structural properties. Several mammalian species contain conserved p53 amphipathic α-helical BOX-I, DNA-binding domain (DBD), and basic domains, whereas Loxodonta africana (elephant) exhibits the lowest sequence similarities. Vertebrates with notable insertion in the DBD or disordered BOX-I regions gained a unique structural orientation, that can potentiate to escape Mdm2 negative regulation. Comprehending molecular details, we constructed an Mdm2 pharmacophore model that can interact with a specific set of p53 isoforms. To explore potential use of BOX-I derived linear motifs as peptidomimetic molecules targeting Mdm2 we assessed their binding affinity, as well as the effect of temperature over the p53-Mdm2 complex. Conformational changes adopted by p53 variants identify crucial residues within the FxxxW/GxxL motif. These residues face the Mdm2 pocket and may enhance binding affinity, even under thermal change. Mdm2 was found mutated heavily in carcinoma, and its variant can have a significant role when associating with p53. Our findings demonstrate a natural living model, to utterly contribute to the mechanistic understanding of the role of p53 in its activation, giving insight on structural properties aiming to target these biomarkers in cancer therapeutics.
Insights
The tumor suppressor p53 and its regulator Mdm2 evolve across vertebrates, revealing structural changes that may allow p53 to evade Mdm2 regulation, offering new cancer therapeutic targets.
Area of Science:
- Evolutionary biology
- Molecular oncology
- Structural biology
Background:
- The tumor suppressor p53 is crucial for cancer tolerance, with its levels tightly regulated by Mdm2.
- Understanding p53-Mdm2 interactions is key to developing cancer therapeutics.
Purpose of the Study:
- To examine the evolutionary and structural properties of p53 and Mdm2 across vertebrates.
- To identify structural variations that influence p53 regulation by Mdm2.
- To explore potential therapeutic strategies targeting the p53-Mdm2 interaction.
Main Methods:
- Comparative sequence analysis of p53 and Mdm2 across vertebrate species.
- Structural analysis of conserved and variable regions (BOX-I, DNA-binding domain).
- Pharmacophore modeling of Mdm2 and assessment of binding affinities for p53 variants.
Main Results:
- Conserved domains (BOX-I, DBD) in p53 across mammals, with notable variations in Loxodonta Africana.
- Specific insertions or disordered regions in p53 can lead to structural changes that may evade Mdm2 regulation.
- A pharmacophore model for Mdm2 was developed, identifying key residues in p53 (FxxxW/GxxL motif) that influence binding affinity, even under thermal stress.
Conclusions:
- Naturally occurring structural variations in p53 can modulate its interaction with Mdm2, providing insights into cancer tolerance.
- The identified p53 motifs and Mdm2 pharmacophore offer potential targets for developing novel cancer therapeutics.
- Understanding these evolutionary adaptations is vital for advancing mechanistic insights into p53 activation and cancer treatment.
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