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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Effect of Y220C mutation on p53 and its rescue mechanism: a computer chemistry approach
Shah Md Abdur Rauf1, Akira Endou, Hiromitsu Takaba
1Graduate School of Engineering, Tohoku University, 6-6-11-1302 Aoba, Aramaki, Aoba-ku, Sendai, 980-8579, Japan. rauf_94@yahoo.com
Abstract:
Mutation causes inactivation of 'p53' tumor suppressor protein in almost fifty percent of cancers in humans. Outside the DNA-binding surface of p53, Y220C is the most common cancerous mutation. Previous studies have shown that a surface cavity is created by this mutation which destabilizes p53. PhiKan083, a carbazole derivative capable of binding with that cavity, and slows down its thermal denaturation rate. We investigated, theoretically, on mechanisms of structural stability loss due to Y220C mutation and mechanisms of stability restoration by PhiKan083 at the atomic level. From this study it is found that in Tp53C, Tyr220 has five electrostatic interactions with residues Val 147, Prol51, Pro153 and Pro223 located on S3/S4 loop and S7/S8 loop. The S7/S8 loop is stabilized by these electrostatic interactions. Due to the Y220C mutation all these electrostatic interactions are lost. As a result the structural fluctuation occurs at S7/S8 loop, and the loop is displaced from its original position after 6 ns MD simulation. When PhiKan083 is present (inserted) at the mutation site it provides five electrostatic interactions with Pro155, Glu221 and Thr230, and two hydrogen bonds with Leu145 and Asp228, respectively. These interactions provided by Pkikan083 stabilized the S7/S8 loop, and as a result it couldn't be displaced. Our results showed that due to Y220C mutation p53 became destabilized through structural fluctuations surrounding the mutation site. When PhiKan083 is present at the Y220C mutation site (in 2vuk), it provides electrostatic and hydrogen bonding interactions among residue-220, its neighboring residues and PhiKan08. These interactions give additional stability to Y220C mutant p53, thus Y220C mutant p53 doesn't destabilize.
Insights
The Y220C mutation destabilizes the p53 tumor suppressor protein by disrupting electrostatic interactions. The drug PhiKan083 restores stability by forming new interactions at the mutation site.
Area of Science:
- Biochemistry
- Structural Biology
- Computational Biology
Background:
- The p53 tumor suppressor protein is inactivated by mutations in approximately 50% of human cancers.
- The Y220C mutation is a common cancer-associated mutation occurring outside the DNA-binding surface.
- This mutation creates a surface cavity, leading to p53 destabilization.
Purpose of the Study:
- To investigate the atomic-level mechanisms of p53 structural instability caused by the Y220C mutation.
- To elucidate how the carbazole derivative PhiKan083 restores structural stability to the Y220C mutant p53.
Main Methods:
- Molecular Dynamics (MD) simulations were used to analyze structural changes.
- Analysis of electrostatic interactions and hydrogen bonding was performed.
- The binding of PhiKan083 to the Y220C mutation site was modeled.
Main Results:
- The Y220C mutation results in the loss of five electrostatic interactions stabilizing the S7/S8 loop.
- This loss leads to structural fluctuations and displacement of the S7/S8 loop.
- PhiKan083 binding restores stability by forming five electrostatic interactions and two hydrogen bonds with nearby residues, preventing loop displacement.
Conclusions:
- The Y220C mutation destabilizes p53 through structural fluctuations around the mutation site.
- PhiKan083 effectively stabilizes the Y220C mutant p53 by forming crucial interactions, preventing destabilization.
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