Related Experiment Video
Updated: Jun 25, 2026

Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
Fanconi anemia proteins, DNA interstrand crosslink repair pathways, and cancer therapy
1Department of Pediatrics, Division of Experimental Hematology and Cancer Biology, Cincinnati Children's Research Foundation, University of Cincinnati College of Medicine, Cincinnati, OH 45229, USA. Paul.Andreassen@cchmc.org
Abstract:
DNA interstrand crosslinkers, a chemically diverse group of compounds which also induce alkylation of bases and DNA intrastrand crosslinks, are extensively utilized for cancer therapy. Understanding the cellular response to DNA damage induced by these agents is critical for more effective utilization of these compounds and for the identification of novel therapeutic targets. Importantly, the repair of DNA interstrand crosslinks (ICLs) involves many distinct DNA repair pathways, including nucleotide excision repair, translesion synthesis (TLS), and homologous recombination (HR). Additionally, proteins implicated in the pathophysiology of the multigenic disease Fanconi anemia (FA) have a role in the repair of ICLs that is not well understood. Cells from FA patients are hypersensitive to agents that induce ICLs, therefore FA proteins are potentially novel therapeutic targets. Here we will review current research directed at identifying FA genes and understanding the function of FA proteins in DNA damage responses. We will also examine interactions of FA proteins with other repair proteins and pathways, including signaling networks, which are potentially involved in ICL repair. Potential approaches to the modulation of FA protein function to enhance therapeutic outcome will be discussed. Also, mutation of many genes that encode proteins involved in ICL repair, including FA genes, increases susceptibility to cancer. A better understanding of these pathways is therefore critical for the design of individualized therapies tailored to the genetic profile of a particular malignancy. For this purpose, we will also review evidence for the association of mutation of FA genes with cancer in non-FA patients.
Insights
DNA interstrand crosslinkers are vital cancer therapies. Understanding their repair pathways, including Fanconi anemia (FA) proteins, is key to improving cancer treatment and identifying new therapeutic targets.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA interstrand crosslinkers (ICLs) are used in cancer therapy but induce complex DNA damage.
- Cellular response and repair mechanisms for ICLs are critical for effective treatment and target identification.
- Fanconi anemia (FA) proteins are involved in ICL repair, and their dysfunction leads to hypersensitivity to ICL-inducing agents.
Purpose of the Study:
- To review current research on identifying FA genes and understanding FA protein function in DNA damage responses.
- To examine the interactions of FA proteins with other DNA repair pathways and signaling networks.
- To discuss potential strategies for modulating FA protein function to enhance therapeutic outcomes.
Main Methods:
- Literature review of current research on DNA interstrand crosslink repair.
- Analysis of the role of Fanconi anemia proteins in DNA damage response pathways.
- Examination of gene mutations associated with ICL repair and cancer susceptibility.
Main Results:
- FA proteins play a crucial, yet not fully understood, role in the repair of DNA interstrand crosslinks.
- Interactions between FA proteins and other repair pathways are integral to the DNA damage response.
- Mutations in ICL repair genes, including FA genes, are linked to increased cancer susceptibility.
Conclusions:
- Understanding FA protein function and ICL repair pathways is essential for developing novel cancer therapies.
- Targeting FA proteins offers potential for enhancing the efficacy of ICL-inducing chemotherapy.
- Identifying genetic profiles related to ICL repair can inform individualized cancer treatment strategies.
Related Concept Videos
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Long-patch Base Excision Repair
Nucleotide Excision Repair
Cells are regularly exposed to mutagens—factors in the environment that can damage DNA and generate mutations. UV radiation is one of the most common mutagens and is estimated to introduce a significant number of changes in DNA. These include bends or kinks in the structure, which can block DNA replication or transcription. If these errors are not fixed, the damage can cause mutations, which in turn can result in cancer or disease depending on which sequences are...
Fixing Double-strand Breaks
Fixing Double-strand Breaks

