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Updated: Jun 15, 2025

Author Spotlight: Quantitative Detection of DNA Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
From the TOP: Formation, recognition and resolution of topoisomerase DNA protein crosslinks
Jessica L Wojtaszek1, R Scott Williams1
1Genome Integrity and Structural Biology Laboratory, National Institute of Environmental Health Sciences, US National Institutes of Health, Department of Health and Human Services, Research Triangle Park, NC 27709, United States.
Abstract:
Since the report of "DNA untwisting" activity in 1972, ∼50 years of research has revealed seven topoisomerases in humans (TOP1, TOP1mt, TOP2α, TOP2β, TOP3α, TOP3β and Spo11). These conserved regulators of DNA topology catalyze controlled breakage to the DNA backbone to relieve the torsional stress that accumulates during essential DNA transactions including DNA replication, transcription, and DNA repair. Each topoisomerase-catalyzed reaction involves the formation of a topoisomerase cleavage complex (TOPcc), a covalent protein-DNA reaction intermediate formed between the DNA phosphodiester backbone and a topoisomerase catalytic tyrosine residue. A variety of perturbations to topoisomerase reaction cycles can trigger failure of the enzyme to re-ligate the broken DNA strand(s), thereby generating topoisomerase DNA-protein crosslinks (TOP-DPC). TOP-DPCs pose unique threats to genomic integrity. These complex lesions are comprised of structurally diverse protein components covalently linked to genomic DNA, which are bulky DNA adducts that can directly impact progression of the transcription and DNA replication apparatus. A variety of genome maintenance pathways have evolved to recognize and resolve TOP-DPCs. Eukaryotic cells harbor tyrosyl DNA phosphodiesterases (TDPs) that directly reverse 3'-phosphotyrosyl (TDP1) and 5'-phoshotyrosyl (TDP2) protein-DNA linkages. The broad specificity Mre11-Rad50-Nbs1 and APE2 nucleases are also critical for mitigating topoisomerase-generated DNA damage. These DNA-protein crosslink metabolizing enzymes are further enabled by proteolytic degradation, with the proteasome, Spartan, GCNA, Ddi2, and FAM111A proteases implicated thus far. Strategies to target, unfold, and degrade the protein component of TOP-DPCs have evolved as well. Here we survey mechanisms for addressing Topoisomerase 1 (TOP1) and Topoisomerase 2 (TOP2) DPCs, highlighting systems for which molecular structure information has illuminated function of these critical DNA damage response pathways.
Insights
Topoisomerase DNA-protein crosslinks (TOP-DPCs) threaten genomic integrity. This review surveys cellular mechanisms, including enzymes and proteases, that resolve these complex DNA lesions, focusing on Topoisomerase 1 (TOP1) and Topoisomerase 2 (TOP2) DPCs.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Topoisomerases regulate DNA topology crucial for replication, transcription, and repair.
- Topoisomerase cleavage complexes (TOPccs) are transient intermediates that can form persistent DNA-protein crosslinks (TOP-DPCs).
- TOP-DPCs are bulky DNA adducts that impede DNA transactions and pose threats to genomic integrity.
Purpose of the Study:
- To survey cellular mechanisms for resolving Topoisomerase 1 (TOP1) and Topoisomerase 2 (TOP2) DNA-protein crosslinks (TOP-DPCs).
- To highlight how molecular structures inform the function of DNA damage response pathways involved in TOP-DPC resolution.
Main Methods:
- Review of existing literature on topoisomerases and DNA repair pathways.
- Analysis of molecular structures of protein-DNA complexes involved in TOP-DPC resolution.
- Survey of genome maintenance pathways, including nucleases and proteases, that process TOP-DPCs.
Main Results:
- Eukaryotic cells employ tyrosyl DNA phosphodiesterases (TDP1, TDP2) and nucleases (Mre11-Rad50-Nbs1, APE2) to reverse TOP-DPCs.
- Proteolytic degradation by proteasomes and specific proteases (Spartan, GCNA, Ddi2, FAM111A) is essential for TOP-DPC repair.
- Structural insights reveal functional mechanisms of key enzymes in TOP-DPC processing.
Conclusions:
- A diverse array of enzymes and proteases are involved in recognizing and resolving TOP-DPCs.
- Understanding the molecular basis of TOP-DPC resolution is critical for comprehending genome maintenance.
- Targeting TOP-DPCs represents a potential therapeutic strategy, underscoring the importance of these repair pathways.
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