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Updated: Mar 26, 2026

Single Molecule Analysis of Laser Localized Psoralen Adducts
Published on: April 20, 2017
A clickable psoralen to directly quantify DNA interstrand crosslinking and repair
Benjamin J Evison1, Marcelo L Actis1, Naoaki Fujii1
1Department of Chemical Biology and Therapeutics, St Jude Children's Research Hospital, 262 Danny Thomas Place, Memphis, TN 38105, USA.
Abstract:
DNA interstrand crosslinks (ICLs) represent physical obstacles to advancing replication forks and transcription complexes. A range of ICL-inducing agents have successfully been incorporated into cancer therapeutics. While studies have adopted UVA-activated psoralens as model ICL-inducing agents for investigating ICL repair, direct detection of the lesion has often been tempered by tagging the psoralen scaffold with a relatively large reporter group that may perturb the biological activity of the parent psoralen. Here a minimally-modified psoralen probe was prepared featuring a small alkyne handle suitable for click chemistry. The psoralen probe, designated 8-propargyloxypsoralen (8-POP), can be activated by UVA in vitro to generate ICLs that are susceptible to post-labeling with an azide-tagged fluorescent reporter via a copper-catalyzed reaction. A modified alkaline comet assay demonstrated that UVA-activated 8-POP proficiently generated ICLs in cells. Cellular 8-POP-DNA lesions were amenable to click-mediated ligation to fluorescent reporters in situ, which permitted their detection and quantitation by fluorescence microscopy and flow cytometry. Small molecule DNA repair inhibitors to 8-POP-treated cells attenuated the removal of 8-POP-DNA lesions, validating 8-POP as an appropriate probe for investigating cellular ICL repair. The post-labeling strategy applied in this study is inexpensive, rapid and highly modular in nature with the potential for multiple applications in DNA repair studies.
Insights
Researchers developed 8-propargyloxypsoralen (8-POP), a novel probe for detecting DNA interstrand crosslinks (ICLs). This method allows for precise visualization and study of ICL repair mechanisms in cells.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- DNA interstrand crosslinks (ICLs) are critical DNA lesions that impede DNA replication and transcription.
- ICL-inducing agents are utilized in cancer therapeutics, necessitating effective methods for studying ICL formation and repair.
- Existing methods for detecting psoralen-induced ICLs often use large reporter groups that can interfere with biological activity.
Purpose of the Study:
- To develop a minimally-modified psoralen probe for efficient and accurate detection of DNA interstrand crosslinks (ICLs).
- To establish a click chemistry-based post-labeling strategy for visualizing and quantifying ICLs in cellular environments.
- To validate the utility of the new probe and method in studying cellular ICL repair pathways.
Main Methods:
- Synthesis of 8-propargyloxypsoralen (8-POP), a psoralen probe with a small alkyne handle.
- UVA activation of 8-POP in vitro and in cells to generate ICLs.
- Copper-catalyzed click chemistry for post-labeling of 8-POP-DNA lesions with azide-tagged fluorescent reporters.
- Modified alkaline comet assay, fluorescence microscopy, and flow cytometry for lesion detection and quantitation.
- Treatment with DNA repair inhibitors to assess lesion removal rates.
Main Results:
- UVA-activated 8-POP successfully generated ICLs in cellular systems.
- Click-mediated ligation enabled in situ detection and quantitation of 8-POP-DNA lesions using fluorescent reporters.
- The removal of 8-POP-DNA lesions was significantly reduced in the presence of DNA repair inhibitors, confirming 8-POP's suitability for repair studies.
- The post-labeling strategy proved to be inexpensive, rapid, and modular.
Conclusions:
- 8-propargyloxypsoralen (8-POP) serves as an effective probe for generating and detecting DNA interstrand crosslinks (ICLs) in cells.
- The click chemistry-based post-labeling approach provides a versatile and sensitive method for studying ICLs and DNA repair.
- This methodology offers a valuable tool for advancing research in DNA repair and the development of ICL-targeting therapeutics.
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