Lesion Sensing during Initial Binding by Yeast XPC/Rad4: Toward Predicting Resistance to Nucleotide Excision Repair

Hong Mu, Yingkai Zhang1, Nicholas E Geacintov

  • 1NYU-ECNU Center for Computational Chemistry at New York University Shanghai , Shanghai 200062 , China.

Insights

Researchers developed computational strategies to identify hazardous DNA lesions resistant to nucleotide excision repair (NER). Key binding features of the xeroderma pigmentosum C protein complex (XPC) were identified, crucial for predicting repair outcomes.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Computational Biology

Background:

  • Nucleotide excision repair (NER) removes DNA damage from environmental sources.
  • The efficiency of NER varies significantly across different DNA lesions, with the underlying reasons poorly understood.
  • Accurate prediction of repair-resistant lesions is crucial for assessing their hazardous potential.

Purpose of the Study:

  • To develop computational strategies for predicting DNA lesions resistant to NER.
  • To identify key structural descriptors of lesion-DNA interactions that dictate NER efficiency.
  • To understand the initial binding mechanism of the xeroderma pigmentosum C protein complex (XPC) to DNA lesions.

Main Methods:

  • Molecular dynamics simulations were used to study the binding of Rad4 (yeast XPC ortholog) to 10 different lesion-containing DNA duplexes.
  • Structural descriptors characterizing the initial binding of Rad4 to DNA lesions were identified.
  • The relationship between these binding features and the relative NER efficiencies of the lesions was analyzed.

Main Results:

  • Repair-resistant lesions lack key Rad4 binding features: minimal DNA unwinding, limited β-hairpin domain 2 interaction with the minor groove, and no base conformational capture.
  • NER-susceptible lesions exhibit these features to varying degrees, correlating with their repair efficiencies.
  • Molecular insights into how lesion structure in DNA influences Rad4 binding and subsequent repair were gained.

Conclusions:

  • Computational strategies for identifying NER-resistant lesions can be developed based on molecular understanding of the XPC recognition mechanism.
  • Specific structural and dynamic features of the Rad4-lesion interaction are critical determinants of NER pathway engagement.
  • This work provides a foundation for predicting the genotoxicity of environmental DNA damage.

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