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Updated: Dec 25, 2025

Author Spotlight: Quantitative Detection of DNA Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
Excision repair of topoisomerase DNA-protein crosslinks (TOP-DPC)
Yilun Sun1, Sourav Saha1, Wenjie Wang1
1Developmental Therapeutics Branch and Laboratory of Molecular Pharmacology, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, MD, United States.
Abstract:
Topoisomerases are essential enzymes solving DNA topological problems such as supercoils, knots and catenanes that arise from replication, transcription, chromatin remodeling and other nucleic acid metabolic processes. They are also the targets of widely used anticancer drugs (e.g. topotecan, irinotecan, enhertu, etoposide, doxorubicin, mitoxantrone) and fluoroquinolone antibiotics (e.g. ciprofloxacin and levofloxacin). Topoisomerases manipulate DNA topology by cleaving one DNA strand (TOP1 and TOP3 enzymes) or both in concert (TOP2 enzymes) through the formation of transient enzyme-DNA cleavage complexes (TOPcc) with phosphotyrosyl linkages between DNA ends and the catalytic tyrosyl residue of the enzymes. Failure in the self-resealing of TOPcc results in persistent TOPcc (which we refer it to as topoisomerase DNA-protein crosslinks (TOP-DPC)) that threaten genome integrity and lead to cancers and neurodegenerative diseases. The cell prevents the accumulation of topoisomerase-mediated DNA damage by excising TOP-DPC and ligating the associated breaks using multiple pathways conserved in eukaryotes. Tyrosyl-DNA phosphodiesterases (TDP1 and TDP2) cleave the tyrosyl-DNA bonds whereas structure-specific endonucleases such as Mre11 and XPF (Rad1) incise the DNA phosphodiester backbone to remove the TOP-DPC along with the adjacent DNA segment. The proteasome and metalloproteases of the WSS1/Spartan family typify proteolytic repair pathways that debulk TOP-DPC to make the peptide-DNA bonds accessible to the TDPs and endonucleases. The purpose of this review is to summarize our current understanding of how the cell excises TOP-DPC and why, when and where the cell recruits one specific mechanism for repairing topoisomerase-mediated DNA damage, acquiring resistance to therapeutic topoisomerase inhibitors and avoiding genomic instability, cancers and neurodegenerative diseases.
Insights
Topoisomerases resolve DNA tangles but can form toxic DNA-protein crosslinks (TOP-DPC). Cells use diverse repair pathways involving TDPs, endonucleases, and proteasomes to remove TOP-DPC, preventing genome instability and disease.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Topoisomerases are crucial enzymes that manage DNA topology during essential cellular processes.
- Dysfunctional topoisomerases and their resulting DNA-protein crosslinks (TOP-DPC) are implicated in cancer and neurodegenerative diseases.
- Topoisomerase inhibitors are vital anticancer and antibiotic therapeutics.
Purpose of the Study:
- To review cellular mechanisms for excising topoisomerase DNA-protein crosslinks (TOP-DPC).
- To elucidate the recruitment strategies for specific TOP-DPC repair pathways.
- To understand how cells maintain genomic stability and drug resistance.
Main Methods:
- This review synthesizes current research on DNA repair pathways.
- It examines the roles of tyrosyl-DNA phosphodiesterases (TDP1, TDP2), endonucleases (Mre11, XPF), and proteasomes.
- The review discusses the regulation and coordination of these repair mechanisms.
Main Results:
- Cells employ multiple conserved pathways to remove TOP-DPC, including enzymatic cleavage and proteolytic degradation.
- Specific repair mechanisms are recruited based on context, ensuring efficient damage resolution.
- Successful TOP-DPC removal is critical for preventing genomic instability and resistance to topoisomerase-targeting therapies.
Conclusions:
- The cell possesses sophisticated, multi-pathway systems to repair topoisomerase-mediated DNA damage.
- Understanding these pathways is key to developing more effective cancer therapies and managing neurodegenerative diseases.
- Coordinated repair ensures genome integrity and cellular survival despite topoisomerase activity.
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