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Steady-state, Pre-steady-state, and Single-turnover Kinetic Measurement for DNA Glycosylase Activity
Published on: August 19, 2013
Small Molecule Inhibitors of 8-Oxoguanine DNA Glycosylase-1 (OGG1)
Nathan Donley1, Pawel Jaruga2, Erdem Coskun2
1Oregon Institute of Occupational Health Sciences, Oregon Health & Science University , Portland, Oregon 97239, United States.
Abstract:
The DNA base excision repair (BER) pathway, which utilizes DNA glycosylases to initiate repair of specific DNA lesions, is the major pathway for the repair of DNA damage induced by oxidation, alkylation, and deamination. Early results from clinical trials suggest that inhibiting certain enzymes in the BER pathway can be a useful anticancer strategy when combined with certain DNA-damaging agents or tumor-specific genetic deficiencies. Despite this general validation of BER enzymes as drug targets, there are many enzymes that function in the BER pathway that have few, if any, specific inhibitors. There is a growing body of evidence that suggests inhibition of 8-oxoguanine DNA glycosylase-1 (OGG1) could be useful as a monotherapy or in combination therapy to treat certain types of cancer. To identify inhibitors of OGG1, a fluorescence-based screen was developed to analyze OGG1 activity in a high-throughput manner. From a primary screen of ∼50,000 molecules, 13 inhibitors were identified, 12 of which were hydrazides or acyl hydrazones. Five inhibitors with an IC50 value of less than 1 μM were chosen for further experimentation and verified using two additional biochemical assays. None of the five OGG1 inhibitors reduced DNA binding of OGG1 to a 7,8-dihydro-8-oxoguanine (8-oxo-Gua)-containing substrate, but all five inhibited Schiff base formation during OGG1-mediated catalysis. All of these inhibitors displayed a >100-fold selectivity for OGG1 relative to several other DNA glycosylases involved in repair of oxidatively damaged bases. These inhibitors represent the most potent and selective OGG1 inhibitors identified to date.
Insights
Researchers identified potent and selective inhibitors for 8-oxoguanine DNA glycosylase-1 (OGG1), a key enzyme in DNA repair. These novel compounds show promise for cancer therapy, potentially as monotherapy or in combination treatments.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- The DNA base excision repair (BER) pathway is crucial for repairing oxidative, alkylation, and deamination DNA damage.
- Inhibiting BER enzymes is a promising anticancer strategy, but specific inhibitors are lacking for many targets.
- 8-oxoguanine DNA glycosylase-1 (OGG1) is a potential target for cancer monotherapy or combination therapy.
Purpose of the Study:
- To develop a high-throughput screening method to identify inhibitors of OGG1.
- To discover novel, potent, and selective inhibitors of OGG1 for potential cancer therapeutic applications.
Main Methods:
- A fluorescence-based high-throughput screen was employed to assess OGG1 activity.
- Approximately 50,000 molecules were screened, leading to the identification of 13 inhibitors.
- Five lead inhibitors with IC50 < 1 μM were further validated using biochemical assays and selectivity profiling.
Main Results:
- The screen identified 13 OGG1 inhibitors, predominantly hydrazides and acyl hydrazones.
- Five selected inhibitors demonstrated potent activity (IC50 < 1 μM) and inhibited OGG1's catalytic Schiff base formation.
- These inhibitors exhibited >100-fold selectivity for OGG1 over other DNA glycosylases.
Conclusions:
- The identified inhibitors are the most potent and selective OGG1 inhibitors reported to date.
- These compounds represent promising candidates for further development as anticancer agents targeting OGG1.
- The findings support OGG1 as a viable drug target in oncology.
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