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Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
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.
Abstract:
Nucleotide excision repair (NER) excises a variety of environmentally derived DNA lesions. However, NER efficiencies for structurally different DNA lesions can vary by orders of magnitude; yet the origin of this variance is poorly understood. Our goal is to develop computational strategies that predict and identify the most hazardous, repair-resistant lesions from the plethora of such adducts. In the present work, we are focusing on lesion recognition by the xeroderma pigmentosum C protein complex (XPC), the first and required step for the subsequent assembly of factors needed to produce successful NER. We have performed molecular dynamics simulations to characterize the initial binding of Rad4, the yeast orthologue of human XPC, to a library of 10 different lesion-containing DNA duplexes derived from environmental carcinogens. These vary in lesion chemical structures and conformations in duplex DNA and exhibit a wide range of relative NER efficiencies from repair resistant to highly susceptible. We have determined a promising set of structural descriptors that characterize initial binding of Rad4 to lesions that are resistant to NER. Key initial binding requirements for successful recognition are absent in the repair-resistant cases: There is little or no duplex unwinding, very limited interaction between the β-hairpin domain 2 of Rad4 and the minor groove of the lesion-containing duplex, and no conformational capture of a base on the lesion partner strand. By contrast, these key binding features are present to different degrees in NER susceptible lesions and correlate to their relative NER efficiencies. Furthermore, we have gained molecular understanding of Rad4 initial binding as determined by the lesion structures in duplex DNA and how the initial binding relates to the repair efficiencies. The development of a computational strategy for identifying NER-resistant lesions is grounded in this molecular understanding of the lesion recognition mechanism.
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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