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Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
The relationships between XPC binding to conformationally diverse DNA adducts and their excision by the human NER
Yuan-Cho Lee1, Yuqin Cai2, Hong Mu2
1Chemistry Department, New York University, Silver Complex, 100 Washington Square East, New York, NY 10012, USA.
Abstract:
The first eukaryotic NER factor that recognizes NER substrates is the heterodimeric XPC-RAD23B protein. The currently accepted hypothesis is that this protein recognizes the distortions/destabilization caused by DNA lesions rather than the lesions themselves. The resulting XPC-RAD23B-DNA complexes serve as scaffolds for the recruitment of subsequent NER factors that lead to the excision of the oligonucleotide sequences containing the lesions. Based on several well-known examples of DNA lesions like the UV radiation-induced CPD and 6-4 photodimers, as well as cisplatin-derived intrastrand cross-linked lesions, it is generally believed that the differences in excision activities in human cell extracts is correlated with the binding affinities of XPC-RAD23B to these DNA lesions. However, using electrophoretic mobility shift assays, we have found that XPC-RAD23B binding affinities of certain bulky lesions derived from metabolically activated polycyclic aromatic hydrocarbon compounds such as benzo[a]pyrene and dibenzo[a,l]pyrene, are not directly, or necessarily correlated with NER excision activities observed in cell-free extracts. These findings point to features of XPC-RAD23B-bulky DNA adduct complexes that may involve the formation of NER-productive or unproductive forms of binding that depend on the structural and stereochemical properties of the DNA adducts studied. The pronounced differences in NER cleavage efficiencies observed in cell-free extracts may be due to differences in the successful recruitment of subsequent NER factors by the XPC-RAD23B-DNA adduct complexes, and/or in the verification step. These phenomena appear to depend on the structural and conformational properties of the class of bulky DNA adducts studied.
Insights
The XPC-RAD23B protein initiates DNA repair by recognizing damaged DNA. However, its binding affinity to certain bulky DNA adducts doesn't always predict repair efficiency, suggesting complex interactions in nucleotide excision repair (NER).
Area of Science:
- Molecular Biology
- DNA Repair Mechanisms
- Biochemistry
Background:
- The XPC-RAD23B complex is the primary eukaryotic factor recognizing DNA damage for nucleotide excision repair (NER).
- It is hypothesized to bind DNA distortions rather than specific lesions, recruiting other factors for lesion removal.
- Previous studies linked XPC-RAD23B binding affinity to excision activity for common lesions like UV-induced dimers and cisplatin adducts.
Purpose of the Study:
- To investigate the relationship between XPC-RAD23B binding affinities and NER excision activities for bulky DNA adducts from polycyclic aromatic hydrocarbons (PAHs).
- To determine if binding affinity directly correlates with repair efficiency for these complex lesions.
Main Methods:
- Electrophoretic mobility shift assays (EMSAs) were used to measure XPC-RAD23B binding affinities to various DNA adducts.
- Cell-free extracts were employed to assess NER excision activities for the same DNA adducts.
Main Results:
- XPC-RAD23B binding affinities for bulky PAH-derived DNA adducts did not consistently correlate with observed NER excision activities.
- This suggests that factors beyond simple binding affinity influence NER efficiency for these adducts.
Conclusions:
- The structural and stereochemical properties of bulky DNA adducts influence the formation of NER-productive or unproductive XPC-RAD23B-DNA complexes.
- Differences in NER cleavage efficiency may stem from variations in the recruitment of downstream NER factors or verification steps, dependent on adduct conformation.
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