Structural analysis of three His32 mutants of DsbA: Support for an electrostatic role of His32 in DsbA stability

被引:76
作者
Guddat, LW
Bardwell, JCA
Glockshuber, R
HuberWunderlich, M
Zander, T
Martin, JL
机构
[1] UNIV QUEENSLAND,CTR DRUG DESIGN & DEV,BRISBANE,QLD 4072,AUSTRALIA
[2] UNIV MICHIGAN,DEPT BIOL,ANN ARBOR,MI 48109
[3] ETH HONGGERBERG,INST MOL BIOL & BIOPHYS,CH-8093 ZURICH,SWITZERLAND
关键词
DsbA; mutagenesis; oxidoreductase; protein crystallography; protein stability; thioredoxin fold;
D O I
10.1002/pro.5560060910
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
DsbA, a 21-kDa protein from Escherichia coli, is a potent oxidizing disulfide catalyst required for disulfide bond formation in secreted proteins. The active site of DsbA is similar to that of mammalian protein disulfide isomerases, and includes a reversible disulfide bond formed from cysteines separated by two residues (Cys3O-Pro31-His32-Cys33). Unlike most protein disulfides, the active-site disulfide of DsbA is highly reactive and the oxidized form of DsbA is much less stable than the reduced form at physiological pH. His32, one of the two residues between the active-site cysteines, is critical to the oxidizing power of DsbA and to the relative instability of the protein in the oxidized form. Mutation of this single residue to tyrosine, serine, or leucine results in a significant increase in stability (of similar to 5-7 kcal/mol) of the oxidized His32 variants relative to the oxidized wild-type protein. Despite the dramatic changes in stability, the structures of all three oxidized DsbA His32 Variants are very similar to the wild-type oxidized structure, including conservation of solvent atoms near the active-site residue, Cys3O. These results show that the His32 residue does not exert a conformational effect on the structure of DsbA. The destabilizing effect of His32 on oxidized DsbA is therefore most likely electrostatic in nature.
引用
收藏
页码:1893 / 1900
页数:8
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