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Updated: Jan 31, 2026

Production, Crystallization, and Structure Determination of the IKK-binding Domain of NEMO
Published on: December 28, 2019
The redefined DNA-binding domain of human xeroderma pigmentosum complementation group A: production, crystallization
Fu Ming Lian1, Xiangwei Yang2, Wancai Yang1
1Key Laboratory of Precision Oncology of Shandong Higher Education, Institute of Precision Medicine, Jining Medical University, Jining, Shandong 272067, People's Republic of China.
Abstract:
Human xeroderma pigmentosum complementation group A (XPA) is a scaffold protein that plays significant roles in DNA-damage verification and in recruiting downstream endonucleases to facilitate the repair of DNA lesions in nucleotide-excision repair. XPA98-219 (residues 98-219) has been identified as a DNA-binding domain and has been extensively studied in the last two decades. However, the most recent studies have redefined the DNA-binding domain as XPA98-239 (residues 98-239); it exerts a remarkably higher DNA-binding affinity than XPA98-219 and has a binding affinity that is quite similar to that of the full-length protein. Here, the production, crystallization and structure solution of human XPA98-239 are described. Crystals were obtained using a precipitant composed of 1.8 M ammonium citrate tribasic pH 7.0. Native X-ray diffraction data and zinc single-wavelength anomalous diffraction (SAD) data were collected to 1.93 and 2.06 Å resolution, respectively. The crystals belonged to space group P3, with unit-cell parameters a = 67.1, b = 67.1, c = 35.6 Å, γ = 120.0°. Crystal-content analysis showed the presence of one molecule in the asymmetric unit, corresponding to a Matthews coefficient of 2.65 Å3 Da-1 and a solvent content of 53.6%. The initial phases were solved and the structure model was automatically built by zinc SAD using the AutoSol program. The initial structure model covered 119 of 142 residues in the asymmetric unit, with an Rwork of 22.15% and an Rfree of 25.82%. Compared with a previously obtained truncated solution NMR structure of XPA (residues 98-210), a 19-residue C-terminal extension (residues 211-229, corresponding to 10 of the 20 extra C-terminal residues in the redefined domain for enhanced DNA binding) was contained in this initial model. Refinement of the atomic coordinates of XPA is ongoing.
Insights
Researchers determined the crystal structure of human XPA98-239, a key DNA-binding domain involved in DNA repair. This structure reveals a C-terminal extension crucial for enhanced DNA binding affinity in nucleotide-excision repair.
Area of Science:
- Molecular Biology
- Structural Biology
- Biochemistry
Background:
- Human xeroderma pigmentosum complementation group A (XPA) is a scaffold protein vital for DNA damage verification and repair.
- The DNA-binding domain of XPA has been redefined from XPA98-219 to XPA98-239, exhibiting significantly higher DNA-binding affinity.
Purpose of the Study:
- To produce, crystallize, and solve the structure of the human XPA98-239 protein domain.
- To elucidate the structural basis for the enhanced DNA-binding affinity of the redefined XPA domain.
Main Methods:
- X-ray diffraction and zinc single-wavelength anomalous diffraction (SAD) data collection.
- Crystallization using 1.8 M ammonium citrate tribasic pH 7.0.
- Structure solution and initial model building using AutoSol with zinc SAD data.
Main Results:
- Crystals of XPA98-239 belonged to space group P3 with specific unit-cell parameters.
- The initial structure model, solved to 1.93 Å resolution, included a 19-residue C-terminal extension (residues 211-229).
- This extension corresponds to a portion of the residues responsible for the enhanced DNA binding in the redefined domain.
Conclusions:
- The crystal structure of XPA98-239 provides insights into the molecular mechanisms of DNA repair.
- The C-terminal extension in XPA98-239 is critical for its increased DNA-binding affinity.
- Further refinement of the atomic coordinates is ongoing to provide a complete structural understanding.
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