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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Investigation of Structural Mechanisms Underlying p53 Dysfunction Caused by 148 Missense Mutations Using AlphaFold3
Kh R Rustamov1, J I Razzokov2,3, A Y Baev1,4
1Laboratory of Experimental Biophysics, Center for Advanced Technologies, Tashkent 100174, Uzbekistan.
Abstract:
Tumor protein p53 (TP53) is a crucial regulator of genomic integrity, frequently mutated in more than half of all human cancers. These mutations predominantly target the DNA-binding domain (DBD), impairing p53's interaction with DNA and its tumor-suppressive functions. To elucidate the structural and functional consequences of p53 mutations, we investigated 148 missense variants located within its DNA-binding interface using cutting-edge computational approaches. We employed AlphaFold3 (AF3) to predict p53-DNA complex structures, integrating these predictions with molecular dynamics (MD) and force-guided pulling simulations to assess mutation-induced changes in structural stability and DNA-binding properties. Moreover, we compared the results of our study with experimental in vitro enrichment scores (RFS) and Combined Annotation Dependent Depletion (CADD). We identified a moderate negative correlation between plDDT and the pathogenicity of mutant variants, suggesting that mutations causing more significant alterations in the protein tertiary structure have a greater negative impact on cellular function. Moreover, we identified two possible structural mechanisms through which mutations can impair the p53 functionality. Specifically, some mutations, such as R248P and N239S, reduce the binding affinity of the p53-DNA complex, whereas others, such as C238Y and P278R, enhance affinity but compromise the structural stability of the complex. Furthermore, we uncovered mutations with potential rescuing effects, such as E285A and M243T, which preserved structural stability and enhanced the DNA-binding ability. Our findings provide a comprehensive framework for understanding the molecular mechanisms underlying p53 mutations and their role in cancer pathogenesis. This study highlights the value of integrative computational approaches in investigating protein-nucleic acid interactions, providing critical insights that can guide the development of therapeutic strategies targeting p53 mutations.
Insights
Tumor protein p53 (TP53) mutations impact cancer by altering its DNA binding. Computational methods reveal how specific TP53 variants affect stability and function, offering insights for cancer therapy.
Area of Science:
- Molecular Biology
- Computational Biology
- Genomics
Background:
- Tumor protein p53 (TP53) is a critical tumor suppressor frequently mutated in human cancers.
- Mutations often occur in the DNA-binding domain (DBD), disrupting genomic integrity and tumor suppression.
- Understanding these mutations' structural and functional effects is vital for cancer research.
Purpose of the Study:
- To investigate the structural and functional consequences of 148 missense TP53 variants in the DNA-binding interface.
- To elucidate the molecular mechanisms by which TP53 mutations impair its tumor-suppressive functions.
- To provide a computational framework for analyzing TP53-DNA interactions and mutation impact.
Main Methods:
- Utilized AlphaFold3 (AF3) for predicting TP53-DNA complex structures.
- Integrated molecular dynamics (MD) and force-guided pulling simulations to assess stability and DNA-binding.
- Correlated computational findings with experimental data (RFS, CADD) and plDDT scores.
Main Results:
- Identified a negative correlation between plDDT and mutant variant pathogenicity, indicating structural disruption impacts function.
- Discovered two mechanisms of impairment: reduced binding affinity (e.g., R248P, N239S) and enhanced affinity with compromised stability (e.g., C238Y, P278R).
- Uncovered potential rescuing mutations (e.g., E285A, M243T) that maintain stability and enhance DNA binding.
Conclusions:
- Computational approaches provide a comprehensive understanding of TP53 mutation mechanisms in cancer.
- Findings offer critical insights into protein-nucleic acid interactions and mutation pathogenicity.
- This work can guide the development of targeted therapeutic strategies for TP53-mutated cancers.
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