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Updated: Jun 22, 2026

Iterative Optimization of DNA Duplexes for Crystallization of SeqA-DNA Complexes
Published on: November 1, 2012
Crystal structure of the human rad9-hus1-rad1 clamp
1National Creative Research Center for Structural Biology and Department of Life Science, Pohang University of Science and Technology, Hyo-ja dong, Pohang, KyungBook, South Korea.
Insights
The Rad9-Hus1-Rad1 (9-1-1) complex, crucial for DNA damage response, forms a ring structure with unique features enabling damaged DNA binding and base excision repair. Rad9
Area of Science:
- Molecular Biology
- Structural Biology
- Biochemistry
Background:
- The Rad9-Hus1-Rad1 (9-1-1) complex is essential for DNA damage response, activating checkpoints and recruiting repair enzymes.
- Understanding the 9-1-1 complex's structure is key to elucidating its function in DNA repair pathways.
Purpose of the Study:
- To determine the crystal structure of the human Rad9-Hus1-Rad1 complex.
- To investigate the structural basis for the 9-1-1 complex's role in DNA damage response and repair.
Main Methods:
- X-ray crystallography was used to determine the structure of the human Rad9 (residues 1-272)-Hus1-Rad1 complex at 2.5 A resolution.
- Comparative structural analysis with proliferating cell nuclear antigen (PCNA) was performed.
Main Results:
- The human 9-1-1 complex forms a closed ring structure with significant similarity to PCNA but with distinct local structural variations.
- These variations include unique inter-subunit interfaces and electrostatic potentials, suggesting specialized DNA binding capabilities.
- The C-terminal tail of Rad9 was identified as a regulatory element in the complex's DNA binding.
Conclusions:
- The determined structure provides insights into how the 9-1-1 complex binds damaged DNA and acts as a platform for base excision repair.
- The findings highlight the structural adaptations of the 9-1-1 complex for its specific roles in DNA damage checkpoint control and repair.
Abstract:
Three evolutionarily conserved proteins, Rad9, Hus1, and Rad1, form a heterotrimeric 9-1-1 complex that plays critical roles in cellular responses to DNA damage by activating checkpoints and by recruiting DNA repair enzymes to DNA lesions. We have determined the crystal structure of the human Rad9 (residues 1-272)-Hus1-Rad1 complex at 2.5 A resolution. The 9(1-272)-1-1 complex forms a closed ring, with each subunit having a similar structure. Despite its high level of similarity to proliferating cell nucleus antigen in terms of overall structure, the 9(1-272)-1-1 complex exhibits notable differences in local structures, including interdomain connecting loops, H2 and H3 helices, and loops in the vicinity of the helices of each subunit. These local structural variations provide several unique features to the 9-1-1 heterotrimeric complex-including structures of intermolecular interfaces and the inner surface around the central hole, and different electrostatic potentials at and near the interdomain connecting loops of each 9-1-1 subunit-compared to the proliferating cell nucleus antigen trimer. We propose that these structural features allow the 9-1-1 complex to bind to a damaged DNA during checkpoint control and to serve as a platform for base excision repair. We also show that the 9(1-272)-1-1 complex, but not the full-length 9-1-1 complex, forms a stable complex with the 5' recessed DNA, suggesting that the C-terminal tail of Rad9 is involved in the regulation of the 9-1-1 complex in DNA binding.
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