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Updated: Nov 29, 2025

Using Caenorhabditis elegans to Screen for Tissue-Specific Chaperone Interactions
Published on: June 7, 2020
Identification of a druggable protein-protein interaction site between mutant p53 and its stabilizing chaperone
Xin Tong1, Dandan Xu2, Rama K Mishra3
1Department of Pathology, Northwestern University Feinberg School of Medicine, Chicago, Illinois, USA; Robert H. Lurie Comprehensive Cancer Center, Northwestern University Feinberg School of Medicine, Chicago, Illinois, USA.
Abstract:
The TP53 gene is the most frequently mutated gene in human cancers, and the majority of TP53 mutations are missense mutations. As a result, these mutant p53 (mutp53) either directly lose wildtype p53 (wtp53) tumor suppressor function or exhibit a dominant negative effect over wtp53. In addition, some mutp53 have acquired new oncogenic function (gain of function). Therefore, targeting mutp53 for its degradation may serve as a promising strategy for cancer prevention and therapy. Based on our previous finding that farnesylated DNAJA1 is a crucial chaperone in maintaining mutp53 stabilization, and by using an in silico approach, we built 3D homology models of human DNAJA1 and mutp53R175H proteins, identified the interacting pocket in the DNAJA1-mutp53R175H complex, and found one critical druggable small molecule binding site in the DNAJA1 glycine/phenylalanine-rich region. We confirmed that the interacting pocket in the DNAJA1-mutp53R175H complex was crucial for stabilizing mutp53R175H using a site-directed mutagenesis approach. We further screened a drug-like library to identify a promising small molecule hit (GY1-22) against the interacting pocket in the DNAJA1-mutp53R175H complex. The GY1-22 compound displayed an effective activity against the DNAJA1-mutp53R175H complex. Treatment with GY1-22 significantly reduced mutp53 protein levels, enhanced Waf1p21 expression, suppressed cyclin D1 expression, and inhibited mutp53-driven pancreatic cancer growth both in vitro and in vivo. Together, our results indicate that the interacting pocket in the DNAJA1-mutp53R175H complex is critical for mutp53's stability and oncogenic function, and DNAJA1 is a robust therapeutic target for developing the efficient small molecule inhibitors against oncogenic mutp53.
Insights
Targeting mutant p53 (mutp53) protein degradation is a promising cancer therapy. Researchers identified a druggable site in DNAJA1 that stabilizes mutp53, leading to a small molecule inhibitor (GY1-22) that reduces cancer growth.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- TP53 is frequently mutated in human cancers, with mutant p53 (mutp53) proteins often promoting tumor growth.
- Targeting mutp53 for degradation is a potential therapeutic strategy.
- DNAJA1 acts as a chaperone, stabilizing mutp53.
Purpose of the Study:
- To identify and characterize a druggable binding site in the DNAJA1-mutp53 complex.
- To develop small molecule inhibitors targeting this interaction for cancer therapy.
Main Methods:
- In silico modeling to build 3D homology models of DNAJA1 and mutp53R175H.
- Site-directed mutagenesis to confirm the critical interacting pocket.
- Drug-like library screening to identify small molecule inhibitors.
- In vitro and in vivo experiments to assess compound efficacy.
Main Results:
- A critical druggable binding site was identified in the DNAJA1-mutp53R175H complex.
- A small molecule, GY1-22, was identified that binds to this site.
- GY1-22 treatment reduced mutp53 levels, suppressed oncogenic markers (e.g., cyclin D1), and inhibited tumor growth.
- Enhanced Waf1p21 expression was observed post-treatment.
Conclusions:
- The DNAJA1-mutp53 interaction site is crucial for mutp53 stability and oncogenic function.
- DNAJA1 is a viable therapeutic target for developing inhibitors against oncogenic mutp53.
- GY1-22 shows potential as an anti-cancer agent targeting mutp53.
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