Mechanisms of interstrand DNA crosslink repair and human disorders

Satoru Hashimoto1, Hirofumi Anai2, Katsuhiro Hanada2

  • 1Department of Clinical Pharmacology and Therapeutics, Faculty of Medicine, Oita University, 1-1 Idaigaoka, Hasama-machi, Yufu, Oita 879-5593 Japan.

Insights

Interstrand DNA crosslinks (ICLs) pose repair challenges, involving pathways like nucleotide excision repair (NER) and homologous recombination (HR). Recent discoveries include UHRF1 as an ICL sensor and nucleases for initial ICL unhooking.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • Interstrand DNA crosslinks (ICLs) covalently link DNA strands, impeding replication and transcription.
  • ICL repair is complex, involving multiple pathways like nucleotide excision repair (NER), translesion DNA synthesis (TLS), and homologous recombination (HR).
  • Defects in ICL repair are linked to hereditary disorders, including progeria syndromes and Fanconi anemia (FA).

Purpose of the Study:

  • To review recent advancements in understanding ICL-associated disorders.
  • To summarize the intricate mechanisms of ICL repair.
  • To highlight recent findings on ICL recognition and the initial incision step.

Main Methods:

  • Literature review of recent studies on ICL repair.
  • Analysis of identified factors and pathways involved in ICL processing.
  • Focus on nucleases responsible for the first incision (unhooking) of ICLs.

Main Results:

  • Over 30 factors involved in ICL repair have been identified.
  • UHRF1 has been recently identified as a sensor for ICLs.
  • Several nucleases crucial for the initial unhooking of ICLs have been characterized.

Conclusions:

  • ICL repair requires sophisticated coordination of multiple factors, especially during the S phase.
  • Understanding ICL repair is critical for deciphering the etiology of associated genetic disorders.
  • Further research into the initial incision step is key to a comprehensive understanding of ICL repair.

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