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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
When the guardian sleeps: Reactivation of the p53 pathway in cancer
Olaf Merkel1, Ninon Taylor2, Nicole Prutsch1
1Department of Clinical Pathology, Medical University Vienna, Waehringer Guertel 18-20, 1090 Vienna, Austria.
Abstract:
The p53 tumor suppressor is inactivated in most cancers, thus suggesting that loss of p53 is a prerequisite for tumor growth. Therefore, its reintroduction through different means bears great clinical potential. After a brief introduction to current knowledge of p53 and its regulation by the ubiquitin-ligases MDM2/MDMX and post-translational modifications, we will discuss small molecules that are able to reactivate specific, frequently observed mutant forms of p53 and their applicability for clinical purposes. Many malignancies display amplification of MDM genes encoding negative regulators of p53 and therefore much effort to date has concentrated on the development of molecules that inhibit MDM2, the most advanced of which are being tested in clinical trials for sarcoma, glioblastoma, bladder cancer and lung adenocarcinoma. These will be discussed as will recent findings of MDMX inhibitors: these are of special importance as it has been shown that cancers that become resistant to MDM2 inhibitors often amplify MDM4. Finally, we will also touch on gene therapy and vaccination approaches; the former of which aims to replace mutated TP53 and the latter whose goal is to activate the body's immune system toward mutant p53 expressing cells. Besides the obvious importance of MDM2 and MDMX expression for regulation of p53, other regulatory factors should not be underestimated and are also described. Despite the beauty of the concept, the past years have shown that many obstacles have to be overcome to bring p53 reactivation to the clinic on a broad scale, and it is likely that in most cases it will be part of a combined therapeutic approach. However, improving current p53 targeted molecules and finding the best therapy partners will clearly impact the future of cancer therapy.
Insights
Reactivating the p53 tumor suppressor holds great clinical potential for cancer therapy. Small molecules targeting MDM2/MDMX and gene therapy approaches are being developed to restore p53 function in various cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The p53 tumor suppressor is frequently inactivated in cancers, making its restoration a promising therapeutic strategy.
- p53 function is tightly regulated by ubiquitin-ligases MDM2 and MDMX, which are often overexpressed in malignancies.
- Restoring wild-type p53 function or targeting mutant forms are key goals in cancer treatment.
Purpose of the Study:
- To review current strategies for reactivating p53 in cancer.
- To discuss the development and clinical applicability of small molecules targeting p53 regulators.
- To explore gene therapy and vaccination approaches for p53 restoration.
Main Methods:
- Review of literature on p53, MDM2, MDMX, and related therapeutic strategies.
- Analysis of small molecule inhibitors targeting MDM2 and MDMX.
- Discussion of gene therapy and cancer vaccine approaches for p53 reactivation.
Main Results:
- Small molecules inhibiting MDM2 are in clinical trials for various cancers like sarcoma and glioblastoma.
- MDMX inhibitors are crucial as cancers can develop resistance to MDM2 inhibitors by amplifying MDM4.
- Gene therapy and vaccination strategies aim to replace mutated TP53 or stimulate immune responses against p53-expressing cancer cells.
Conclusions:
- Reactivating p53 is a viable strategy, with small molecule inhibitors and gene-based therapies showing promise.
- Overcoming obstacles in p53 reactivation is essential for broad clinical application.
- Combined therapeutic approaches involving p53 reactivation are likely to impact future cancer treatment.
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