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Clinical Overview of MDM2/X-Targeted Therapies
Andrew Burgess1, Kee Ming Chia2, Sue Haupt3
1The Kinghorn Cancer Centre, Garvan Institute of Medical Research, Sydney, NSW, Australia; Faculty of Medicine, St. Vincent's Clinical School, UNSW Australia, Sydney, NSW, Australia.
Abstract:
MDM2 and MDMX are the primary negative regulators of p53, which under normal conditions maintain low intracellular levels of p53 by targeting it to the proteasome for rapid degradation and inhibiting its transcriptional activity. Both MDM2 and MDMX function as powerful oncogenes and are commonly over-expressed in some cancers, including sarcoma (~20%) and breast cancer (~15%). In contrast to tumors that are p53 mutant, whereby the current therapeutic strategy restores the normal active conformation of p53, MDM2 and MDMX represent logical therapeutic targets in cancer for increasing wild-type (WT) p53 expression and activities. Recent preclinical studies suggest that there may also be situations that MDM2/X inhibitors could be used in p53 mutant tumors. Since the discovery of nutlin-3a, the first in a class of small molecule MDM2 inhibitors that binds to the hydrophobic cleft in the N-terminus of MDM2, preventing its association with p53, there is now an extensive list of related compounds. In addition, a new class of stapled peptides that can target both MDM2 and MDMX have also been developed. Importantly, preclinical modeling, which has demonstrated effective in vitro and in vivo killing of WT p53 cancer cells, has now been translated into early clinical trials allowing better assessment of their biological effects and toxicities in patients. In this overview, we will review the current MDM2- and MDMX-targeted therapies in development, focusing particularly on compounds that have entered into early phase clinical trials. We will highlight the challenges pertaining to predictive biomarkers for and toxicities associated with these compounds, as well as identify potential combinatorial strategies to enhance its anti-cancer efficacy.
Insights
MDM2 and MDMX inhibitors target cancer by increasing wild-type p53. These therapies are advancing into clinical trials, with ongoing research into biomarkers and combination strategies for enhanced efficacy.
Area of Science:
- Oncology
- Molecular Biology
- Drug Development
Background:
- MDM2 and MDMX are key negative regulators of the tumor suppressor p53.
- Overexpression of MDM2/MDMX is common in cancers like sarcoma and breast cancer, promoting oncogenesis.
- Targeting MDM2/MDMX offers a strategy to restore wild-type p53 function in cancer cells.
Purpose of the Study:
- To review current MDM2- and MDMX-targeted therapies in cancer treatment.
- To focus on compounds that have progressed into early-phase clinical trials.
- To highlight challenges and potential strategies for these novel cancer therapies.
Main Methods:
- Review of preclinical and clinical studies on MDM2/MDMX inhibitors.
- Analysis of small molecule inhibitors (e.g., nutlin-3a) and stapled peptides.
- Examination of early clinical trial data for efficacy, biomarkers, and toxicities.
Main Results:
- Small molecule inhibitors and stapled peptides targeting MDM2/MDMX show promise in preclinical models.
- Effective killing of wild-type p53 cancer cells observed in vitro and in vivo.
- Early clinical trials are underway to assess the biological effects and toxicities in patients.
Conclusions:
- MDM2/MDMX inhibitors represent a promising therapeutic avenue for wild-type p53 cancers.
- Challenges include identifying predictive biomarkers and managing toxicities.
- Combinatorial strategies may enhance the anti-cancer efficacy of these targeted therapies.
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