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Updated: Jul 31, 2025

Bio-layer Interferometry for Measuring Kinetics of Protein-protein Interactions and Allosteric Ligand Effects
Published on: February 18, 2014
An autoinhibited state of 53BP1 revealed by small molecule antagonists and protein engineering
Abstract:
The recruitment of 53BP1 to chromatin, mediated by its recognition of histone H4 dimethylated at lysine 20 (H4K20me2), is important for DNA double-strand break repair. Using a series of small molecule antagonists, we demonstrate a conformational equilibrium between an open and a pre-existing lowly populated closed state of 53BP1 in which the H4K20me2 binding surface is buried at the interface between two interacting 53BP1 molecules. In cells, these antagonists inhibit the chromatin recruitment of wild type 53BP1, but do not affect 53BP1 variants unable to access the closed conformation despite preservation of the H4K20me2 binding site. Thus, this inhibition operates by shifting the conformational equilibrium toward the closed state. Our work therefore identifies an auto-associated form of 53BP1 - autoinhibited for chromatin binding - that can be stabilized by small molecule ligands encapsulated between two 53BP1 protomers. Such ligands are valuable research tools to study the function of 53BP1 and have the potential to facilitate the development of new drugs for cancer therapy.
Insights
Small molecules stabilize a closed, inactive form of 53BP1 (a protein crucial for DNA repair), inhibiting its chromatin binding. This discovery offers new tools for DNA repair research and potential cancer therapies.
Area of Science:
- Molecular Biology
- Biochemistry
- Cell Biology
Background:
- 53BP1 protein is essential for DNA double-strand break repair.
- 53BP1 recruitment to chromatin depends on recognizing histone H4K20me2 modifications.
Conclusions:
- 53BP1 exists in an auto-associated, closed conformation that is autoinhibited for chromatin binding.
- Small molecule ligands can stabilize this closed state, providing research tools.
- These findings have implications for developing novel cancer therapeutics targeting DNA repair pathways.
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