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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Targeting mutant p53 for cancer therapy: direct and indirect strategies
Jiahao Hu1,2, Jiasheng Cao1,2, Win Topatana1,2
1Department of General Surgery, Sir Run-Run Shaw Hospital, Zhejiang University, No. 3 East Qingchun Road, Hangzhou, 310016, China.
Abstract:
TP53 is a critical tumor-suppressor gene that is mutated in more than half of all human cancers. Mutations in TP53 not only impair its antitumor activity, but also confer mutant p53 protein oncogenic properties. The p53-targeted therapy approach began with the identification of compounds capable of restoring/reactivating wild-type p53 functions or eliminating mutant p53. Treatments that directly target mutant p53 are extremely structure and drug-species-dependent. Due to the mutation of wild-type p53, multiple survival pathways that are normally maintained by wild-type p53 are disrupted, necessitating the activation of compensatory genes or pathways to promote cancer cell survival. Additionally, because the oncogenic functions of mutant p53 contribute to cancer proliferation and metastasis, targeting the signaling pathways altered by p53 mutation appears to be an attractive strategy. Synthetic lethality implies that while disruption of either gene alone is permissible among two genes with synthetic lethal interactions, complete disruption of both genes results in cell death. Thus, rather than directly targeting p53, exploiting mutant p53 synthetic lethal genes may provide additional therapeutic benefits. Additionally, research progress on the functions of noncoding RNAs has made it clear that disrupting noncoding RNA networks has a favorable antitumor effect, supporting the hypothesis that targeting noncoding RNAs may have potential synthetic lethal effects in cancers with p53 mutations. The purpose of this review is to discuss treatments for cancers with mutant p53 that focus on directly targeting mutant p53, restoring wild-type functions, and exploiting synthetic lethal interactions with mutant p53. Additionally, the possibility of noncoding RNAs acting as synthetic lethal targets for mutant p53 will be discussed.
Insights
Targeting mutated TP53 (tumor protein 53) in cancer offers new therapeutic avenues. This review explores strategies including direct targeting, restoring wild-type p53, and exploiting synthetic lethality, potentially involving noncoding RNAs.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- TP53 is a crucial tumor suppressor gene, frequently mutated in human cancers.
- Mutations in TP53 lead to loss of tumor suppression and gain of oncogenic functions.
- Cancer cells with TP53 mutations rely on compensatory pathways for survival.
Purpose of the Study:
- To review therapeutic strategies for cancers with TP53 mutations.
- To discuss direct targeting of mutant p53, p53 reactivation, and synthetic lethality.
- To explore noncoding RNAs as potential synthetic lethal targets in TP53-mutated cancers.
Main Methods:
- Literature review of therapeutic approaches for TP53-mutated cancers.
- Analysis of strategies targeting mutant p53 directly.
- Exploration of synthetic lethality and noncoding RNA-based therapies.
Main Results:
- Direct targeting of mutant p53 is drug- and mutation-specific.
- Targeting compensatory pathways altered by p53 mutation is a viable strategy.
- Synthetic lethality offers a promising approach, with noncoding RNAs as potential targets.
Conclusions:
- Therapeutic strategies for TP53-mutated cancers are diverse, including direct targeting, reactivation, and synthetic lethality.
- Exploiting synthetic lethal interactions, particularly with noncoding RNAs, presents a novel therapeutic avenue.
- Further research into noncoding RNA networks could yield effective treatments for TP53-mutated cancers.
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