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Updated: Jun 30, 2026

Tools to Study the Role of Architectural Protein HMGB1 in the Processing of Helix Distorting, Site-specific DNA Interstrand Crosslinks
Published on: November 10, 2016
Repair of DNA interstrand crosslinks: molecular mechanisms and clinical relevance
P J McHugh1, V J Spanswick, J A Hartley
1Department of Oncology, Royal Free and University College Medical School, London, UK.
Abstract:
Drugs that produce DNA interstrand crosslinks (ICLs), between the two complementary strands of the double helix, have an important role in chemotherapy regimens for cancer. Novel crosslinking agents, and targeting strategies involving DNA crosslinking agents, continue to be developed. The ability of cells to repair DNA ICLs is a critical determinant of sensitivity, and recent dinical studies indicate that DNA repair capacity is strongly implicated in both inherent tumour sensitivity and acquired drug resistance. A detailed understanding of the cellular mechanisms that act to eliminate these critical DNA lesions is clearly important. DNA ICLs present a complex challenge to DNA repair mechanisms because of the involvement of both DNA strands. It is now clear that cells from bacteria and yeast to mammals eliminate interstrand ICLs through the coordinated action of several DNA repair pathways. Recently, a model of ICL repair has been proposed, in which mammalian cells use novel excision repair reactions (requiring the XPF and ERCC1 proteins) to uncouple the crosslink. This is followed by a homologous recombination step to provide the genetic information needed to complete repair. This new knowledge may permit the development of screens for tumour response to crosslinking agents, and should also aid the design of more effective crosslinking agents that evade DNA repair. In addition, the proteins mediating the repair reactions represent potential targets for therapeutic intervention.
Insights
DNA interstrand crosslinks (ICLs) are crucial in cancer chemotherapy. Understanding how cells repair these DNA damages is key to improving cancer treatment and developing new drugs.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA interstrand crosslinks (ICLs) are vital in cancer chemotherapy.
- Cellular DNA repair capacity significantly impacts tumor sensitivity and drug resistance.
- ICLs pose a complex challenge to DNA repair due to their dual-strand nature.
Purpose of the Study:
- To elucidate the cellular mechanisms responsible for eliminating DNA ICLs.
- To understand the role of specific DNA repair pathways in ICL processing.
- To explore the implications of ICL repair knowledge for cancer therapy.
Main Methods:
- Review and synthesis of current research on DNA ICL repair pathways.
- Focus on mammalian cell models and the roles of proteins like XPF and ERCC1.
- Integration of excision repair and homologous recombination in ICL elimination.
Main Results:
- Mammalian cells utilize a coordinated action of multiple DNA repair pathways to eliminate ICLs.
- A proposed model involves excision repair (XPF/ERCC1) to uncouple the crosslink, followed by homologous recombination.
- This repair mechanism ensures the integrity of genetic information.
Conclusions:
- Understanding ICL repair is critical for predicting tumor response to crosslinking agents.
- Knowledge of ICL repair pathways can guide the design of more effective chemotherapy drugs.
- Proteins involved in ICL repair represent potential therapeutic targets for cancer intervention.
Related Concept Videos
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Long-patch Base Excision Repair
Fixing Double-strand Breaks
Homologous Recombination
Overview of DNA Repair
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Fixing Double-strand Breaks

