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Updated: Jun 23, 2025

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Working title: Molecular involvement of p53-MDM2 interactome in gastrointestinal cancers
Poornachandra Yedla1,2, Pranav Bhamidipati1,3, Riyaz Syed1
1Division of Applied Biology, CSIR-IICT (Indian Institute of Chemical Technology), Ministry of Science and Technology (GOI), Hyderabad, Telangana, India.
Abstract:
The interaction between murine double minute 2 (MDM2) and p53, marked by transcriptional induction and feedback inhibition, orchestrates a functional loop dictating cellular fate. The functional loop comprising p53-MDM2 axis is made up of an interactome consisting of approximately 81 proteins, which are spatio-temporally regulated and involved in DNA repair mechanisms. Biochemical and genetic alterations of the interactome result in dysregulation of the p53-mdm2 axis that leads to gastrointestinal (GI) cancers. A large subset of interactome is well known and it consists of proteins that either stabilize p53 or MDM2 and proteins that target the p53-MDM2 complex for ubiquitin-mediated destruction. Upstream signaling events brought about by growth factors and chemical messengers invoke a wide variety of posttranslational modifications in p53-MDM2 axis. Biochemical changes in the transactivation domain of p53 impact the energy landscape, induce conformational switching, alter interaction potential and could change solubility of p53 to redefine its co-localization, translocation and activity. A diverse set of chemical compounds mimic physiological effectors and simulate biochemical modifications of the p53-MDM2 interactome. p53-MDM2 interactome plays a crucial role in DNA damage and repair process. Genetic aberrations in the interactome, have resulted in cancers of GI tract (pancreas, liver, colorectal, gastric, biliary, and esophageal). We present in this article a review of the overall changes in the p53-MDM2 interactors and the effectors that form an epicenter for the development of next-generation molecules for understanding and targeting GI cancers.
Insights
The p53-MDM2 axis, crucial for cellular fate and DNA repair, becomes dysregulated in gastrointestinal cancers due to interactome alterations. Targeting this axis offers potential for new cancer therapies.
Area of Science:
- Molecular Biology
- Cancer Biology
- Genetics
Background:
- The p53-MDM2 axis forms a critical regulatory loop controlling cellular fate and DNA repair.
- This axis involves an interactome of approximately 81 proteins, spatio-temporally regulated and essential for DNA repair mechanisms.
Purpose of the Study:
- To review alterations in the p53-MDM2 interactome and their role in gastrointestinal (GI) cancer development.
- To highlight the potential of targeting the p53-MDM2 axis for next-generation GI cancer therapies.
Main Methods:
- Review of existing literature on the p53-MDM2 axis and its interactome.
- Analysis of biochemical and genetic alterations affecting the p53-MDM2 pathway.
- Examination of upstream signaling and posttranslational modifications impacting the p53-MDM2 axis.
Main Results:
- Dysregulation of the p53-MDM2 axis due to interactome alterations is linked to GI cancers (pancreas, liver, colorectal, gastric, biliary, esophageal).
- The p53-MDM2 interactome is vital for DNA damage and repair processes.
- Chemical compounds can mimic physiological effectors to modify the p53-MDM2 interactome.
Conclusions:
- The p53-MDM2 interactome is a central player in GI cancer pathogenesis.
- Understanding these alterations is key to developing novel therapeutic strategies targeting the p53-MDM2 axis for GI cancers.
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