Disulfide Bond Oxidoreductase DsbA2 of Legionella pneumophila Exhibits Protein Disulfide Isomerase Activity

Author:

Kpadeh Zegbeh Z.12,Jameson-Lee Max12,Yeh Anthony J.1,Chertihin Olga1,Shumilin Igor A.3,Dey Rafik1,Day Shandra R.1,Hoffman Paul S.12

Affiliation:

1. Department of Medicine, University of Virginia, Charlottesville, Virginia, USA

2. Division of Infectious Diseases and International Health, Department of Microbiology, Immunology and Cancer Biology, University of Virginia, Charlottesville, Virginia, USA

3. Department of Physiology and Biophysics, University of Virginia, Charlottesville, Virginia, USA

Abstract

ABSTRACT The extracytoplasmic assembly of the Dot/Icm type IVb secretion system (T4SS) of Legionella pneumophila is dependent on correct disulfide bond (DSB) formation catalyzed by a novel and essential disulfide bond oxidoreductase DsbA2 and not by DsbA1, a second nonessential DSB oxidoreductase. DsbA2, which is widely distributed in the microbial world, is phylogenetically distinct from the canonical DsbA oxidase and the DsbC protein disulfide isomerase (PDI)/reductase of Escherichia coli . Here we show that the extended N-terminal amino acid sequence of DsbA2 (relative to DsbA proteins) contains a highly conserved 27-amino-acid dimerization domain enabling the protein to form a homodimer. Complementation tests with E. coli mutants established that L. pneumophila dsbA1 , but not the dsbA2 strain, restored motility to a dsbA mutant. In a protein-folding PDI detector assay, the dsbA2 strain, but not the dsbA1 strain, complemented a dsbC mutant of E. coli . Deletion of the dimerization domain sequences from DsbA2 produced the monomer (DsbA2N), which no longer exhibited PDI activity but complemented the E. coli dsbA mutant. PDI activity was demonstrated in vitro for DsbA2 but not DsbA1 in a nitrocefin-based mutant TEM β-lactamase folding assay. In an insulin reduction assay, DsbA2N activity was intermediate between those of DsbA2 and DsbA1. In L. pneumophila , DsbA2 was maintained as a mixture of thiol and disulfide forms, while in E. coli , DsbA2 was present as the reduced thiol. Our studies suggest that DsbA2 is a naturally occurring bifunctional disulfide bond oxidoreductase that may be uniquely suited to the majority of intracellular bacterial pathogens expressing T4SSs as well as in many slow-growing soil and aquatic bacteria.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

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