Salmonella enterica BcfH Is a Trimeric Thioredoxin-Like Bifunctional Enzyme with Both Thiol Oxidase and Disulfide Isomerase Activities

Subedi, Pramod, Paxman, Jason J., Wang, Geqing, Hor, Lilian, , , Whitten, Andrew E., Panjikar, Santosh, Santos-Martin, Carlos F., Martin, Jennifer L., , & Heras, Begoña (2021) Salmonella enterica BcfH Is a Trimeric Thioredoxin-Like Bifunctional Enzyme with Both Thiol Oxidase and Disulfide Isomerase Activities. Antioxidants and Redox Signaling, 35(1), pp. 21-39.

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Description

Aims: Thioredoxin (TRX)-fold proteins are ubiquitous in nature. This redox scaffold has evolved to enable a variety of functions, including redox regulation, protein folding, and oxidative stress defense. In bacteria, the TRX-like disulfide bond (Dsb) family mediates the oxidative folding of multiple proteins required for fitness and pathogenic potential. Conventionally, Dsb proteins have specific redox functions with monomeric and dimeric Dsbs exclusively catalyzing thiol oxidation and disulfide isomerization, respectively. This contrasts with the eukaryotic disulfide forming machinery where the modular TRX protein disulfide isomerase (PDI) mediates thiol oxidation and disulfide reshuffling. In this study, we identified and structurally and biochemically characterized a novel Dsb-like protein from Salmonella enterica termed bovine colonization factor protein H (BcfH) and defined its role in virulence. Results: In the conserved bovine colonization factor (bcf) fimbrial operon, the Dsb-like enzyme BcfH forms a trimeric structure, exceptionally uncommon among the large and evolutionary conserved TRX superfamily. This protein also displays very unusual catalytic redox centers, including an unwound α-helix holding the redox active site and a trans-proline instead of the conserved cis-proline active site loop. Remarkably, BcfH displays both thiol oxidase and disulfide isomerase activities contributing to Salmonella fimbrial biogenesis. Innovation and Conclusion: Typically, oligomerization of bacterial Dsb proteins modulates their redox function, with monomeric and dimeric Dsbs mediating thiol oxidation and disulfide isomerization, respectively. This study demonstrates a further structural and functional malleability in the TRX-fold protein family. BcfH trimeric architecture and unconventional catalytic sites permit multiple redox functions emulating in bacteria the eukaryotic PDI dual oxidoreductase activity.

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ID Code: 212596
Item Type: Contribution to Journal (Journal Article)
Refereed: Yes
ORCID iD:
Hong, Yaoqinorcid.org/0000-0002-4408-2648
Totsika, Makrinaorcid.org/0000-0003-2468-0293
Additional Information: Funding Information: This work was supported by the Australian Research Council (ARC) project grants (DP 190101613, DP180102987, and DP150102287), an ARC Future Fellowship (FT130100580), ARC DECRA (DE130101169), the National Health and Medical Research Council (NHMRC) Project Grants (GRT1144046, GRT1143638), and a Vera and Clive Ramaciotti Foundations Health Investment Grant (2017HIG0119). M.T. was supported by a Vice-Chancellor’s Research Fellowship from the Queensland University of Technology.
Measurements or Duration: 19 pages
Additional URLs:
Keywords: bacterial infection, biofilm, colonization, disulfide catalysis, Dsb proteins, redox homeostasis, thioredoxin
DOI: 10.1089/ars.2020.8218
ISSN: 1523-0864
Pure ID: 96730617
Divisions: Current > Research Centres > Centre for Immunology and Infection Control
Current > QUT Faculties and Divisions > Faculty of Health
Current > Schools > School of Biomedical Sciences
Funding Information: This work was supported by the Australian Research Council (ARC) project grants (DP 190101613, DP180102987, and DP150102287), an ARC Future Fellowship (FT130100580), ARC DECRA (DE130101169), the National Health and Medical Research Council (NHMRC) Project Grants (GRT1144046, GRT1143638), and a Vera and Clive Ramaciotti Foundations Health Investment Grant (2017HIG0119). M.T. was supported by a Vice-Chancellor’s Research Fellowship from the Queensland University of Technology.
Funding:
Copyright Owner: 2021 Mary Ann Liebert, Inc.
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Deposited On: 17 Aug 2021 15:08
Last Modified: 02 Jul 2026 00:37