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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Multi-Omic Analysis of Two Common P53 Mutations: Proteins Regulated by Mutated P53 as Potential Targets for
Jayakumar Vadakekolathu1, David J Boocock2, Kirti Pandey3,4
1John van Geest Cancer Research Centre, Nottingham Trent University, Nottingham NG11 8NS, UK.
Abstract:
The p53 protein is mutated in more than 50% of human cancers. Mutated p53 proteins not only lose their normal function but often acquire novel oncogenic functions, a phenomenon termed mutant p53 gain-of-function. Mutant p53 has been shown to affect the transcription of a range of genes, as well as protein-protein interactions with transcription factors and other effectors; however, no one has intensively investigated and identified these proteins, or their MHC presented epitopes, from the viewpoint of their ability to act as targets for immunotherapeutic interventions. We investigated the molecular changes that occurred after the TP53 null osteosarcoma cells, SaOS-2, were transfected with one of two conformational p53-mutants, either R175H or R273H. We then examined the phenotypic and functional changes using macroscopic observations, proliferation, gene expression and proteomics alongside immunopeptidome profiling of peptide antigen presentation in the context of major histocompatibility complex (MHC) class I molecules. We identified several candidate proteins in both TP53 mutant cell lines with differential expression when compared to the TP53 null vector control, SaOS-V. Quantitative SWATH proteomics combined with immune-peptidome analysis of the class-I eluted peptides identified several epitopes presented on pMHC and in silico analysis shortlisted which antigens were expressed in a range of cancerous but not adjacent healthy tissues. Out of all the candidates, KLC1 and TOP2A showed high levels of expression in every tumor type examined. From these proteins, three A2 and four pan HLA-A epitopes were identified in both R175H and R273H from TOP2A. We have now provided a short list of future immunotherapy targets for the treatment of cancers harboring mutated TP53.
Insights
Mutated p53 proteins drive cancer by gaining new functions. This study identified novel protein targets and epitopes from mutant p53 cancer cells for developing new immunotherapies against TP53-mutated cancers.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Mutations in the p53 protein occur in over 50% of human cancers.
- Mutant p53 proteins can gain oncogenic functions beyond losing their tumor-suppressive roles.
- Identifying targets for immunotherapy in p53-mutated cancers remains a critical challenge.
Purpose of the Study:
- To investigate molecular changes and identify potential immunotherapeutic targets in cancer cells with specific p53 mutations.
- To analyze protein expression, presentation of epitopes on MHC class I, and their cancer-specific expression.
Main Methods:
- Transfection of TP53-null osteosarcoma cells (SaOS-2) with p53 mutants (R175H, R273H).
- Phenotypic and functional analysis including proliferation and gene expression.
- Quantitative SWATH proteomics and immunopeptidome profiling of MHC class I presented peptides.
- In silico analysis for cancer-specific antigen expression.
Main Results:
- Identified differentially expressed proteins in TP53 mutant cell lines compared to controls.
- Discovered several epitopes presented on MHC class I molecules from mutant p53 proteins.
- TOP2A and KLC1 showed high expression across various tumor types.
- Identified specific HLA-A epitopes from TOP2A in both p53 mutant cell lines.
Conclusions:
- Provided a list of candidate proteins and epitopes for novel immunotherapies targeting TP53-mutated cancers.
- TOP2A presents multiple epitopes suitable for targeting cancers with mutated p53.
- This research paves the way for developing targeted immunotherapeutic strategies for a significant subset of human cancers.
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