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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Multifunctional Compounds for Activation of the p53-Y220C Mutant in Cancer
Jessica J Miller1, Christophe Orvain2, Shireen Jozi1
1Department of Chemistry, Simon Fraser University, 8888 University Drive, Burnaby, Canada.
Abstract:
The p53 protein plays a major role in cancer prevention, and over 50 % of cancer diagnoses can be attributed to p53 malfunction. The common p53 mutation Y220C causes local protein unfolding, aggregation, and can result in a loss of Zn in the DNA-binding domain. Structural analysis has shown that this mutant creates a surface site that can be stabilized using small molecules, and herein a multifunctional approach to restore function to p53-Y220C is reported. A series of compounds has been designed that contain iodinated phenols aimed for interaction and stabilization of the p53-Y220C surface cavity, and Zn-binding fragments for metallochaperone activity. Their Zn-binding affinity was characterized using spectroscopic methods and demonstrate the ability of compounds L4 and L5 to increase intracellular levels of Zn2+ in a p53-Y220C-mutant cell line. The in vitro cytotoxicity of our compounds was initially screened by the National Cancer Institute (NCI-60), followed by testing in three stomach cancer cell lines with varying p53 status', including AGS (WTp53), MKN1 (V143A), and NUGC3 (Y220C). Our most promising ligand, L5, is nearly 3-fold more cytotoxic than cisplatin in a large number of cell lines. The impressive cytotoxicity of L5 is further maintained in a NUGC3 3D spheroid model. L5 also induces Y220C-specific apoptosis in a cleaved caspase-3 assay, reduces levels of unfolded mutant p53, and recovers p53 transcriptional function in the NUGC3 cell line. These results show that these multifunctional scaffolds have the potential to restore wild-type function in mutant p53-Y220C.
Insights
Researchers developed new compounds to stabilize the p53-Y220C protein mutation, restoring its cancer-preventing function. One compound, L5, shows significant cytotoxicity and restores wild-type p53 activity in cancer cells.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- The p53 protein is crucial for cancer prevention, with over 50% of cancer diagnoses linked to its malfunction.
- The p53 Y220C mutation causes protein unfolding, aggregation, and loss of zinc, impairing its function.
Purpose of the Study:
- To design and synthesize multifunctional small molecules to stabilize the p53-Y220C mutant and restore its tumor-suppressive activity.
- To evaluate the efficacy of these compounds in vitro and in cancer cell lines.
Main Methods:
- Design of compounds featuring iodinated phenols for cavity stabilization and zinc-binding fragments for metallochaperone activity.
- Characterization of zinc-binding affinity using spectroscopic methods.
- In vitro cytotoxicity screening (NCI-60) and testing in stomach cancer cell lines (AGS, MKN1, NUGC3).
- Assessment of compound L5 in a 3D spheroid model and evaluation of apoptosis, unfolded p53 levels, and transcriptional activity.
Main Results:
- Compounds L4 and L5 demonstrated the ability to increase intracellular Zn2+ levels in p53-Y220C-mutant cells.
- The most promising ligand, L5, exhibited nearly 3-fold greater cytotoxicity than cisplatin across multiple cell lines.
- L5 showed sustained cytotoxicity in a 3D spheroid model, induced Y220C-specific apoptosis, reduced unfolded p53, and restored p53 transcriptional function.
Conclusions:
- Multifunctional scaffolds targeting the p53-Y220C mutation show significant potential for restoring wild-type p53 function.
- Compound L5 represents a promising therapeutic candidate for cancers harboring the p53 Y220C mutation.
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