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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Targeting mutant p53 in cancer: a long road to precision therapy
Fiamma Mantovani1,2, Dawid Walerych1, Giannino Del Sal1,2
1Laboratorio Nazionale CIB (LNCIB), Trieste, Italy.
Abstract:
The TP53 tumor suppressor is the most frequently mutated gene in human cancers. In recent years, a blooming of research efforts based on both cell lines and mouse models have highlighted how deeply mutant p53 proteins affect fundamental cellular pathways with cancer-promoting outcomes. Neomorphic mutant p53 activities spread over multiple levels, impinging on chromatin structure, transcriptional regulation and microRNA maturation, shaping the proteome and the cell's metabolic pathways, and also exerting cytoplasmic functions and displaying cell-extrinsic effects. These tumorigenic activities are inextricably linked with the blend of highly corrupted processes that characterize the tumor context. Recent studies indicate that successful strategies to extract core aspects of mutant p53 oncogenic potential and to identify unique tumor dependencies entail the superimposition of large-scale analyses performed in multiple experimental systems, together with a mindful use of animal models. This will hopefully soon lead to the long-awaited inclusion of mutant p53 as an actionable target of clinical antitumor therapies.
Insights
Mutant p53 proteins drive cancer by disrupting cellular pathways. Targeting these mutant forms offers a promising new avenue for cancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The TP53 gene is the most frequently mutated tumor suppressor in human cancers.
- Mutant p53 proteins exhibit neomorphic activities that promote tumorigenesis through various cellular mechanisms.
Purpose of the Study:
- To elucidate the multifaceted roles of mutant p53 proteins in cancer development.
- To explore strategies for targeting mutant p53 as a therapeutic strategy.
Main Methods:
- Utilized cell line and mouse models to study mutant p53 functions.
- Employed large-scale analyses across multiple experimental systems.
- Integrated findings with insights from animal models.
Main Results:
- Mutant p53 impacts chromatin structure, transcriptional regulation, and microRNA maturation.
- Mutant p53 influences proteome, metabolic pathways, cytoplasmic functions, and cell-extrinsic effects.
- These oncogenic activities are intertwined with the tumor microenvironment.
Conclusions:
- Understanding mutant p53's oncogenic potential requires integrated analyses across diverse systems.
- Targeting mutant p53 holds promise for future clinical antitumor therapies.
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