The DNA damage-sensing NER repair factor XPC-RAD23B does not recognize bulky DNA lesions with a missing nucleotide

Katie M Feher1, Alexander Kolbanovskiy1, Alexander Durandin1

  • 1Chemistry Department, New York University, 100 Washington East, New York, NY, 10003-5180, USA.

DNA Repair
|October 9, 2020
PubMed

Insights

The DNA repair factor XPC-RAD23B (XPC) fails to bind DNA lesions when the complementary base is deleted. This lesion avoidance is due to the DNA structure, preventing XPC binding and Nucleotide Excision Repair.

Area of Science:

  • Molecular Biology
  • DNA Repair Mechanisms
  • Biochemistry

Background:

  • Nucleotide Excision Repair (NER) removes diverse DNA lesions.
  • XPC-RAD23B (XPC) is crucial for sensing DNA damage.
  • Benzo[a]pyrene diol epoxide (B[a]P) lesions form G*:C duplexes.

Purpose of the Study:

  • Investigate XPC binding to DNA lesions with a deleted complementary base.
  • Determine accurate XPC dissociation constants (KD).
  • Elucidate the mechanism behind XPC lesion avoidance.

Main Methods:

  • Utilized 50-mer DNA duplexes containing G*:Del lesions.
  • Employed excess unmodified DNA as a competitor to determine KD.
  • Compared XPC binding affinities for lesion-containing vs. unmodified duplexes.

Main Results:

  • XPC binding was completely abrogated in G*:Del duplexes.
  • XPC dissociation constants (KD) were 2.5-3.6 times greater for G*:Del than for G:Del or G:C duplexes.
  • Lesion avoidance is linked to stabilization of G*:Del duplexes by B[a]P intercalation.

Conclusions:

  • The intercalated B[a]P ring system stabilizes G*:Del duplexes.
  • This stabilization prevents necessary DNA distortions for XPC β-hairpin binding.
  • Explains the observed loss of XPC binding and NER resistance in G*:Del duplexes.

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