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Updated: May 24, 2025

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Harnessing p53 for targeted cancer therapy: new advances and future directions
Zdenek Andrysik1,2,3, Joaquin M Espinosa2,3
1Department of Biology, Faculty of Medicine, Masaryk University, Brno, Czech Republic.
Abstract:
The transcription factor p53 is the most frequently impaired tumor suppressor in human cancers. In response to various stress stimuli, p53 activates transcription of genes that mediate its tumor-suppressive functions. Distinctive characteristics of p53 outlined here enable a well-defined program of genes involved in cell cycle arrest, apoptosis, senescence, differentiation, metabolism, autophagy, DNA repair, anti-viral response, and anti-metastatic functions, as well as facilitating autoregulation within the p53 network. This versatile, anti-cancer network governed chiefly by a single protein represents an immense opportunity for targeted cancer treatment, since about half of human tumors retain unmutated p53. During the last two decades, numerous compounds have been developed to block the interaction of p53 with the main negative regulator MDM2. However, small molecule inhibitors of MDM2 only induce a therapeutically desirable apoptotic response in a limited number of cancer types. Moreover, clinical trials of the MDM2 inhibitors as monotherapies have not met expectations and have revealed hematological toxicity as a characteristic adverse effect across this drug class. Currently, combination treatments are the leading strategy for enhancing efficacy and reducing adverse effects of MDM2 inhibitors. This review summarizes efforts to identify and test therapeutics that work synergistically with MDM2 inhibitors. Two main types of drugs have emerged among compounds used in the following combination treatments: first, modulators of the p53-regulated transcriptome (including chromatin modifiers), translatome, and proteome, and second, drugs targeting the downstream pathways such as apoptosis, cell cycle arrest, DNA repair, metabolic stress response, immune response, ferroptosis, and growth factor signaling. Here, we review the current literature in this field, while also highlighting overarching principles that could guide target selection in future combination treatments.
Insights
The tumor suppressor p53 network offers cancer treatment opportunities. Combination therapies targeting MDM2 inhibitors show promise for enhancing efficacy and reducing toxicity in cancer treatment strategies.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The p53 tumor suppressor is frequently impaired in human cancers, playing a critical role in regulating cell cycle arrest, apoptosis, and DNA repair.
- Targeting the p53-MDM2 interaction with small molecule inhibitors has shown limited success as monotherapies due to toxicity and efficacy issues.
- Approximately half of human tumors retain unmutated p53, presenting a significant opportunity for targeted cancer therapies.
Purpose of the Study:
- To review current literature on combination therapies involving MDM2 inhibitors for cancer treatment.
- To identify and evaluate therapeutics that synergize with MDM2 inhibitors.
- To highlight principles for selecting targets in future combination treatments.
Main Methods:
- Literature review of preclinical and clinical studies on MDM2 inhibitors in combination therapy.
- Analysis of drug classes and downstream pathways targeted in combination treatments.
- Synthesis of findings to guide future therapeutic strategies.
Main Results:
- MDM2 inhibitors alone have limited efficacy and cause hematological toxicity.
- Combination treatments are the leading strategy to improve MDM2 inhibitor efficacy and reduce adverse effects.
- Two main classes of synergistic drugs have emerged: transcriptome/translatome/proteome modulators and downstream pathway inhibitors.
Conclusions:
- Combination therapies are essential for maximizing the therapeutic potential of MDM2 inhibitors.
- Targeting p53-regulated pathways and downstream effectors offers a promising avenue for novel cancer treatments.
- Further research into synergistic drug combinations is crucial for developing effective and safe cancer therapies.
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