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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Mechanistic insight into the destabilization of p53TD tetramer by cancer-related R337H mutation: a molecular dynamics
Yawei Yu1, Xuewei Dong1, Yiming Tang1
1Department of physics, State Key Laboratory of Surface Physics, and Key Laboratory for Computational Physical Sciences (Ministry of Education), Fudan University, Shanghai 200438, People's Republic of China. ghwei@fudan.edu.cn.
Abstract:
The p53 protein is a tumor suppressor crucial for cell cycle and genome integrity. In a very large proportion of human cancers, p53 is frequently inactivated by mutations located in its DNA-binding domain (DBD). Some experimental studies reported that the inherited R337H mutation located in the p53 tetramerization domain (p53TD) can also result in destabilization of the p53 protein, and consequently lead to an organism prone to cancer setup. However, the underlying R337H mutation-induced structural destabilization mechanism is not well understood. Herein, we investigate the structural stability and dynamic property of the wild type p53TD tetramer and its cancer-related R337H mutant by performing multiple microsecond molecular dynamics simulations. It is found that R337H mutation destroys the R337-D352 hydrogen bonds, weakens the F341-F341 π-π stacking interaction and the hydrophobic interaction between aliphatic hydrocarbons of R337 and M340, leading to more solvent exposure of all the hydrophobic cores, and thus disrupting the structural integrity of the tetramer. Importantly, our simulations show for the first time that R337H mutation results in unfolding of the α-helix starting from the N-terminal region (residues 335RER(H)FEM340). Consistently, community network analyses reveal that R337H mutation reduces dynamical correlation and global connectivity of p53TD tetramer, which destabilizes the structure of the p53TD tetramer. This study provides the atomistic mechanism of R337H mutation-induced destabilization of p53TD tetramer, which might be helpful for in-depth understanding of the p53 loss-of-function mechanism.
Insights
The R337H mutation destabilizes the p53 tetramerization domain (p53TD) by disrupting key interactions and causing helix unfolding. This molecular insight aids understanding of p53 protein dysfunction in cancer development.
Area of Science:
- Molecular Biology
- Structural Biology
- Cancer Research
Background:
- The p53 protein is a vital tumor suppressor regulating cell cycle and genome stability.
- Mutations in p53, particularly in the DNA-binding domain (DBD), are common in human cancers.
- The R337H mutation in the p53 tetramerization domain (p53TD) is linked to cancer predisposition but its mechanism is unclear.
Purpose of the Study:
- To investigate the structural stability and dynamics of the wild-type p53TD tetramer versus the R337H mutant.
- To elucidate the atomistic mechanism behind the R337H mutation-induced destabilization of the p53TD tetramer.
Main Methods:
- Utilized microsecond molecular dynamics simulations.
- Performed community network analyses to assess dynamical correlations and global connectivity.
Main Results:
- The R337H mutation disrupts hydrogen bonds (R337-D352) and weakens π-π stacking (F341-F341) and hydrophobic interactions.
- Mutation leads to increased solvent exposure of hydrophobic cores, compromising tetramer structural integrity.
- Observed N-terminal α-helix unfolding initiated by the R337H mutation.
- Reduced dynamical correlation and global connectivity in the R337H mutant p53TD tetramer.
Conclusions:
- The R337H mutation destabilizes the p53TD tetramer through specific molecular interactions and structural changes.
- This study provides a detailed atomistic mechanism for p53TD destabilization by the R337H mutation.
- Findings contribute to a deeper understanding of p53 loss-of-function in cancer.
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