Conversion of a catalytic into a structural disulfide bond by circular permutation

Citation
J. Hennecke et R. Glockshuber, Conversion of a catalytic into a structural disulfide bond by circular permutation, BIOCHEM, 37(50), 1998, pp. 17590-17597
Citations number
65
Categorie Soggetti
Biochemistry & Biophysics
Journal title
BIOCHEMISTRY
ISSN journal
00062960 → ACNP
Volume
37
Issue
50
Year of publication
1998
Pages
17590 - 17597
Database
ISI
SICI code
0006-2960(199812)37:50<17590:COACIA>2.0.ZU;2-Y
Abstract
The thiol-disulfide oxidoreductase DsbA from Escherichia coil is the strong est oxidant of the enzyme family and required for disulfide bond formation in the bacterial periplasm. The catalytic domain of this 189-residue protei n has a thioredoxin-like fold and contains a catalytic disulfide bridge tha t is located within the sequence Cys30-Pro31-His32-Cys33 at the N-terminus of an cr-helix. The Cys30-Cys33 disulfide bond destabilizes DsbA by about 1 6 kJ/mol at pH 7.0, which appears to be caused by the extremely low pK(a) v alue of similar to 3.4 of the nucleophilic Cys30 thiol. Here we report the characterization of a circularly permuted variant of DsbA, termed H32-P31, in which the natural termini are connected by a Gly(3)-Thr-Gly linker and t he new termini are located between the active-site cysteines (first residue His32, last residue Pro31). The disulfide bond in the variant thus connect s the second with the penultimate residue. H32-P31 adopts a wild-type-like structure and folds reversibly and cooperatively in both redox forms. Howev er, the permuted variant is catalytically inactive as dithiol oxidase in vi vo and in vitro. Both cysteine thiols have pK(a) values > 8; the variant is 500-fold more reducing than the wild type and more stable in its oxidized form. Thus, the Cys30-Cys33 disulfide in the variant H32-P31 has adopted pr operties of a structural disulfide bond.