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Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
Analysis of DNA binding by human factor xeroderma pigmentosum complementation group A (XPA) provides insight into its
Norie Sugitani1,2, Markus W Voehler1,2, Michelle S Roh1
1From the Departments of Chemistry and.
Abstract:
Xeroderma pigmentosum (XP) complementation group A (XPA) is an essential scaffolding protein in the multiprotein nucleotide excision repair (NER) machinery. The interaction of XPA with DNA is a core function of this protein; a number of mutations in the DNA-binding domain (DBD) are associated with XP disease. Although structures of the central globular domain of human XPA and data on binding of DNA substrates have been reported, the structural basis for XPA's DNA-binding activity remains unknown. X-ray crystal structures of the central globular domain of yeast XPA (Rad14) with lesion-containing DNA duplexes have provided valuable insights, but the DNA substrates used for this study do not correspond to the substrates of XPA as it functions within the NER machinery. To better understand the DNA-binding activity of human XPA in NER, we used NMR to investigate the interaction of its DBD with a range of DNA substrates. We found that XPA binds different single-stranded/double-stranded junction DNA substrates with a common surface. Comparisons of our NMR-based mapping of binding residues with the previously reported Rad14-DNA crystal structures revealed similarities and differences in substrate binding between XPA and Rad14. This includes direct evidence for DNA contacts to the residues extending C-terminally from the globular core, which are lacking in the Rad14 construct. Moreover, mutation of the XPA residue corresponding to Phe-262 in Rad14, previously reported as being critical for DNA binding, had only a moderate effect on the DNA-binding activity of XPA. The DNA-binding properties of several disease-associated mutations in the DBD were investigated. These results suggest that for XPA mutants exhibiting altered DNA-binding properties, a correlation exists between the extent of reduction in DNA-binding affinity and the severity of symptoms in XP patients.
Insights
Xeroderma pigmentosum complementation group A (XPA) protein binds DNA junctions via a common surface. Disease-associated mutations affecting DNA binding correlate with XP symptom severity, offering insights into DNA repair mechanisms.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Xeroderma pigmentosum complementation group A (XPA) is crucial for nucleotide excision repair (NER).
- Understanding XPA's DNA-binding mechanism is vital for XP disease research.
- Previous structural studies on yeast Rad14 provided limited insight into human XPA's DNA interactions.
Purpose of the Study:
- To elucidate the structural basis of human XPA's DNA-binding activity within the NER pathway.
- To investigate the interaction of XPA's DNA-binding domain (DBD) with various DNA substrates using NMR.
- To compare DNA binding between human XPA and yeast Rad14.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy was employed to map XPA's DNA-binding interface.
- A range of single-stranded/double-stranded junction DNA substrates were used.
- Disease-associated mutations in the XPA DBD were analyzed for their impact on DNA binding.
Main Results:
- XPA utilizes a common surface to bind diverse single-stranded/double-stranded junction DNA substrates.
- NMR mapping revealed distinct DNA contacts compared to yeast Rad14, including C-terminal residues.
- Mutating a key residue (Phe-262 homolog) had a moderate effect on XPA DNA binding.
- Reduced DNA-binding affinity in XPA mutants correlated with XP symptom severity.
Conclusions:
- Human XPA employs a unique DNA-binding strategy involving its DBD and C-terminal regions.
- The study provides direct structural insights into XPA's role in DNA repair.
- Altered DNA binding in XPA mutants offers a molecular explanation for varying XP disease severity.
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