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Updated: Dec 12, 2025

Author Spotlight: Characterizing Novel Enzymes from Extremophiles and Common Pathogens to Understand DNA Repair and Replication
Published on: July 5, 2024
An assay for DNA polymerase β lyase inhibitors that engage the catalytic nucleophile for binding
Sasha M Daskalova1, Brian M Eisenhauer2, Mingxuan Gao1
1Biodesign Center for BioEnergetics and School of Molecular Sciences, Arizona State University, Tempe, AZ 85287, United States.
Abstract:
DNA polymerase β (Pol β) repairs cellular DNA damage. When such damage is inflicted upon the DNA in tumor cells treated with DNA targeted antitumor agents, Pol β thus diminishes their efficacy. Accordingly, this enzyme has long been a target for antitumor therapy. Although numerous inhibitors of the lyase activity of the enzyme have been reported, none has yet proven adequate for development as a therapeutic agent. In the present study, we developed a new strategy to identify lyase inhibitors that critically engage the lyase active site primary nucleophile Lys72 as part of the binding interface. This involves a parallel evaluation of the effect of the inhibitors on the wild-type DNA polymerase β (Pol β) and Pol β modified with a lysine analogue at position 72. A model panel of five structurally diverse lyase inhibitors identified in our previous studies (only one of which has been published) with unknown modes of binding were used for testing, and one compound, cis-9,10-epoxyoctadecanoic acid, was found to have the desired characteristics. This finding was further corroborated by in silico docking, demonstrating that the predominant mode of binding of the inhibitor involves an important electrostatic interaction between the oxygen atom of the epoxy group and Nε of the main catalytic nucleophile, Lys72. The strategy, which is designed to identify compounds that engage certain structural elements of the target enzyme, could find broader application for identification of ligands with predetermined sites of binding.
Insights
Researchers identified a new strategy to find DNA polymerase β (Pol β) inhibitors. A compound, cis-9,10-epoxyoctadecanoic acid, effectively targets the enzyme
Area of Science:
- Biochemistry
- Molecular Biology
- Medicinal Chemistry
Background:
- DNA polymerase β (Pol β) plays a crucial role in DNA repair.
- Pol β activity can reduce the effectiveness of DNA-targeted cancer therapies.
- Developing effective Pol β inhibitors is a key goal in antitumor therapy.
Purpose of the Study:
- To develop a novel strategy for identifying DNA polymerase β (Pol β) lyase inhibitors.
- To find inhibitors that specifically interact with the catalytic nucleophile Lys72.
- To validate the binding mode of identified inhibitors using computational methods.
Main Methods:
- A comparative assay using wild-type Pol β and a modified Pol β enzyme (Lys72 analogue).
- Screening a panel of structurally diverse lyase inhibitors.
- In silico molecular docking to predict binding interactions.
Main Results:
- One compound, cis-9,10-epoxyoctadecanoic acid, demonstrated the desired inhibitory characteristics.
- Docking studies confirmed a key electrostatic interaction between the inhibitor and Lys72.
- The developed strategy successfully identified an inhibitor engaging the target active site.
Conclusions:
- A new method for identifying Pol β inhibitors targeting Lys72 has been established.
- Cis-9,10-epoxyoctadecanoic acid shows promise as a Pol β inhibitor.
- This strategy can be broadly applied to discover enzyme inhibitors with specific binding site engagement.
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