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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Pharmacological activation of p53 in cancer cells
Mohammad Athar1, Craig A Elmets, Levy Kopelovich
1Department of Dermatology, The University of Alabama at Birmingham, Volker Hall, Room 509, 1530 3rd Avenue South, Birmingham, Alabama 35294-0019, USA. mathar@uab.edu
Abstract:
Tumor suppressor p53 is a transcription factor that regulates a large number of genes and guards against genomic instability. Under multiple cellular stress conditions, p53 functions to block cell cycle progression transiently unless proper DNA repair occurs. Failure of DNA repair mechanisms leads to p53-mediated induction of cell death programs. p53 also induces permanent cell cycle arrest known as cellular senescence. During neoplastic progression, p53 is often mutated and fails to efficiently perform these functions. It has been observed that cancers carrying a wild-type p53 may also have interrupted downstream p53 regulatory signaling leading to disruption in p53 functions. Therefore, strategies to reactivate p53 provide an attractive approach for blocking tumor pathogenesis and its progression. p53 activation may also lead to regression of existing early neoplastic lesions and therefore may be important in developing cancer chemoprevention protocols. A large number of small molecules capable of reactivating p53 have been developed and some are progressing through clinical trials for prospective human applications. However, several questions remain to be answered at this stage. For example, it is not certain if pharmacological activation of p53 will restore all of its multifaceted biological responses, assuming that the targeted cell is not killed following p53 activation. It remains to be demonstrated whether the distinct biological effects regulated by specific post-translationally modified p53 can effectively be restored by refolding mutant p53. Mutant p53 can be classified as a loss-of-function or gain-of-function protein depending on the type of mutation. It is also unclear whether reactivation of mutant p53 has similar consequences in cells carrying gain-of-function and loss-of-function p53 mutants. This review provides a description of various pharmacological approaches tested to activate p53 (both wild-type and mutant) and to assess the effects of activated p53 on neoplastic progression.
Insights
Reactivating the tumor suppressor p53, crucial for preventing genomic instability, offers a promising strategy against cancer. This review explores pharmacological approaches to restore p53 function in various cancer types.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The tumor suppressor p53 is a key regulator of genomic stability, cell cycle arrest, and apoptosis.
- Mutations in p53 are common in cancer, impairing its tumor-suppressive functions.
- Even wild-type p53 can be functionally compromised in cancer through disrupted signaling pathways.
Purpose of the Study:
- To review pharmacological strategies for reactivating both wild-type and mutant p53.
- To assess the impact of p53 reactivation on tumor pathogenesis and progression.
- To explore the potential of p53 activation in cancer chemoprevention and treatment.
Main Methods:
- Review of existing literature on p53 reactivation strategies.
- Analysis of small molecules targeting p53 function.
- Evaluation of clinical trial data for p53-targeting agents.
Main Results:
- Numerous small molecules capable of reactivating p53 have been developed, with some in clinical trials.
- Pharmacological p53 activation shows potential for blocking tumor progression and regressing early neoplastic lesions.
- Challenges remain in fully restoring p53's diverse biological responses and understanding mutant p53 reactivation outcomes.
Conclusions:
- Reactivating p53 is an attractive therapeutic strategy for cancer, offering potential for prevention and treatment.
- Further research is needed to clarify the full biological consequences of pharmacological p53 activation, especially for mutant p53.
- Understanding the differential effects of reactivating loss-of-function versus gain-of-function p53 mutants is critical.
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