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Updated: Aug 22, 2025

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Chemical Tools for the Study of DNA Repair
1Department of Chemistry, Stanford University, 369 North-South Axis, Stauffer I, Stanford, California 94305, United States.
Abstract:
DNA repair enzymes continuously provide surveillance throughout our cells, protecting the enclosed DNA from the damage that is constantly arising from oxidation, alkylating species, and radiation. Members of this enzyme class are intimately linked to pathways controlling cancer and inflammation and are promising targets for diagnostics and future therapies. Their study is benefiting widely from the development of new tools and methods aimed at measuring their activities. Here, we provide an Account of our laboratory's work on developing chemical tools to study DNA repair processes in vitro, as well as in cells and tissues, and what we have learned by applying them.We first outline early work probing how DNA repair enzymes recognize specific forms of damage by use of chemical analogs of the damage with altered shapes and H-bonding abilities. One outcome of this was the development of an unnatural DNA base that is incorporated selectively by polymerase enzymes opposite sites of missing bases (abasic sites) in DNA, a very common form of damage.We then describe strategies for design of fluorescent probes targeted to base excision repair (BER) enzymes; these were built from small synthetic DNAs incorporating fluorescent moieties to engender light-up signals as the enzymatic reaction proceeds. Examples of targets for these DNA probes include UDG, SMUG1, Fpg, OGG1, MutYH, ALKBH2, ALKBH3, MTH1, and NTH1. Several such strategies were successful and were applied both in vitro and in cellular settings; moreover, some were used to discover small-molecule modulators of specific repair enzymes. One of these is the compound SU0268, a potent OGG1 inhibitor that is under investigation in animal models for inhibiting hyperinflammatory responses.To investigate cellular nucleotide sanitation pathways, we designed a series of "two-headed" nucleotides containing a damaged DNA nucleotide at one end and ATP at the other; these were applied to studying the three human sanitation enzymes MTH1, dUTPase, and dITPase, some of which are therapeutic targets. The MTH1 probe (ARGO) was used in collaboration with oncologists to measure the enzyme in tumors as a disease marker and also to develop the first small-molecule activators of the enzyme.We proceed to discuss the development of a "universal" probe of base excision repair processes (UBER), which reacts covalently with abasic site intermediates of base excision repair. UBER probes light up in real time as the reaction occurs, enabling the observation of base excision repair as it occurs in live cells and tissues. UBER probes can also be used in efficient and simple methods for fluorescent labeling of DNA. Finally, we suggest interesting directions for the future of this field in biomedicine and human health.
Insights
Researchers developed novel chemical tools to study DNA repair enzymes and their role in disease. These tools enable real-time monitoring of DNA repair processes and have led to the discovery of potential therapeutic agents.
Area of Science:
- Biochemistry
- Molecular Biology
- Chemical Biology
Background:
- DNA repair enzymes protect cellular DNA from damage caused by oxidation, alkylation, and radiation.
- These enzymes are crucial in cancer and inflammation pathways, making them targets for diagnostics and therapies.
- Advancements in tools and methods are vital for studying DNA repair enzyme activity.
Purpose of the Study:
- To develop and apply chemical tools for studying DNA repair processes in vitro, in cells, and in tissues.
- To gain insights into DNA damage recognition by repair enzymes.
- To discover small-molecule modulators and disease markers related to DNA repair pathways.
Main Methods:
- Synthesis of chemical analogs of DNA damage to probe enzyme recognition.
- Design of fluorescent probes incorporating synthetic DNA and fluorescent moieties for base excision repair (BER) enzyme activity.
- Development of "two-headed" nucleotides to study cellular nucleotide sanitation enzymes.
- Creation of a universal probe of base excision repair (UBER) for real-time monitoring.
Main Results:
- Developed an unnatural DNA base incorporated opposite abasic sites.
- Created successful fluorescent probes for various BER enzymes (UDG, SMUG1, Fpg, OGG1, MutYH, ALKBH2, ALKBH3, MTH1, NTH1).
- Discovered OGG1 inhibitor SU0268 for hyperinflammatory responses and MTH1 probe (ARGO) as a disease marker and for activator discovery.
- Demonstrated UBER probes for real-time observation of BER in live cells and DNA labeling.
Conclusions:
- Novel chemical tools provide powerful means to study DNA repair mechanisms and enzyme activities.
- These tools facilitate the discovery of therapeutic agents and disease biomarkers.
- Further development of these chemical probes holds significant promise for biomedicine and human health.
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