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Updated: Mar 26, 2026

Author Spotlight: Streamlining Protein Target Prediction and Validation via Molecular Docking and CETSA
Published on: February 23, 2024
Monitoring Ligand-Induced Protein Ordering in Drug Discovery
Christy R Grace1, David Ban1, Jaeki Min2
1Department of Structural Biology, St. Jude Children's Research Hospital, 262 Danny Thomas Place, Memphis, TN 38105, USA.
Abstract:
While the gene for p53 is mutated in many human cancers causing loss of function, many others maintain a wild-type gene but exhibit reduced p53 tumor suppressor activity through overexpression of the negative regulators, Mdm2 and/or MdmX. For the latter mechanism of loss of function, the activity of endogenous p53 can be restored through inhibition of Mdm2 or MdmX with small molecules. We previously reported a series of compounds based upon the Nutlin-3 chemical scaffold that bind to both MdmX and Mdm2 [Vara, B. A. et al. (2014) Organocatalytic, diastereo- and enantioselective synthesis of nonsymmetric cis-stilbene diamines: A platform for the preparation of single-enantiomer cis-imidazolines for protein-protein inhibition. J. Org. Chem. 79, 6913-6938]. Here we present the first solution structures based on data from NMR spectroscopy for MdmX in complex with four of these compounds and compare them with the MdmX:p53 complex. A p53-derived peptide binds with high affinity (Kd value of 150nM) and causes the formation of an extensive network of hydrogen bonds within MdmX; this constitutes the induction of order within MdmX through ligand binding. In contrast, the compounds bind more weakly (Kd values from 600nM to 12μM) and induce an incomplete hydrogen bond network within MdmX. Despite relatively weak binding, the four compounds activated p53 and induced p21(Cip1) expression in retinoblastoma cell lines that overexpress MdmX, suggesting that they specifically target MdmX and/or Mdm2. Our results document structure-activity relationships for lead-like small molecules targeting MdmX and suggest a strategy for their further optimization in the future by using NMR spectroscopy to monitor small-molecule-induced protein order as manifested through hydrogen bond formation.
Insights
Researchers developed small molecules to restore tumor suppressor p53 activity by inhibiting Mdm2 and MdmX. NMR structures reveal how these compounds bind MdmX, guiding future drug optimization for cancer therapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Medicinal Chemistry
Background:
- Many cancers retain wild-type p53 but have reduced activity due to Mdm2/MdmX overexpression.
- Inhibiting Mdm2 or MdmX with small molecules can restore endogenous p53 tumor suppressor function.
Purpose of the Study:
- To determine the solution structures of MdmX in complex with small molecule inhibitors.
- To compare the binding of small molecules to MdmX with the binding of p53 peptide.
- To establish structure-activity relationships for small molecules targeting MdmX.
Main Methods:
- NMR spectroscopy to determine solution structures of MdmX-compound complexes.
- Affinity measurements (Kd values) for MdmX:p53 peptide and MdmX:small molecule interactions.
- Cell-based assays to assess p53 activation and p21(Cip1) expression.
Main Results:
- NMR structures reveal MdmX:p53 peptide binding induces extensive hydrogen bonding and protein order.
- Small molecules bind MdmX with weaker affinity and induce incomplete hydrogen bond networks.
- Despite weaker binding, compounds activated p53 and induced p21(Cip1) in MdmX-overexpressing cells.
Conclusions:
- Small molecules targeting MdmX/Mdm2 can restore p53 tumor suppressor activity.
- NMR-guided analysis of protein order provides insights into structure-activity relationships.
- Further optimization of MdmX inhibitors is feasible for cancer treatment.
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