4X6G image
Deposition Date 2014-12-08
Release Date 2015-04-29
Last Version Date 2024-03-20
Entry Detail
PDB ID:
4X6G
Title:
Full-length OxyR C199D from pseudomonas aeruginosa
Biological Source:
Source Organism:
Host Organism:
Method Details:
Experimental Method:
Resolution:
2.00 Å
R-Value Free:
0.23
R-Value Work:
0.18
R-Value Observed:
0.18
Space Group:
P 1 21 1
Macromolecular Entities
Structures with similar UniProt ID
Protein Blast
Polymer Type:polypeptide(L)
Molecule:OxyR
Gene (Uniprot):oxyR
Mutagens:C199D
Chain IDs:A, B, C, D, E, F, G, H
Chain Length:316
Number of Molecules:8
Biological Source:Pseudomonas aeruginosa PAO1
Primary Citation
Structural details of the OxyR peroxide-sensing mechanism
Proc.Natl.Acad.Sci.USA 112 6443 6448 (2015)
PMID: 25931525 DOI: 10.1073/pnas.1424495112

Abstact

OxyR, a bacterial peroxide sensor, is a LysR-type transcriptional regulator (LTTR) that regulates the transcription of defense genes in response to a low level of cellular H2O2. Consisting of an N-terminal DNA-binding domain (DBD) and a C-terminal regulatory domain (RD), OxyR senses H2O2 with conserved cysteine residues in the RD. However, the precise mechanism of OxyR is not yet known due to the absence of the full-length (FL) protein structure. Here we determined the crystal structures of the FL protein and RD of Pseudomonas aeruginosa OxyR and its C199D mutant proteins. The FL crystal structures revealed that OxyR has a tetrameric arrangement assembled via two distinct dimerization interfaces. The C199D mutant structures suggested that new interactions that are mediated by cysteine hydroxylation induce a large conformational change, facilitating intramolecular disulfide-bond formation. More importantly, a bound H2O2 molecule was found near the Cys199 site, suggesting the H2O2-driven oxidation mechanism of OxyR. Combined with the crystal structures, a modeling study suggested that a large movement of the DBD is triggered by structural changes in the regulatory domains upon oxidation. Taken together, these findings provide novel concepts for answering key questions regarding OxyR in the H2O2-sensing and oxidation-dependent regulation of antioxidant genes.

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