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Self-S-sulfonation in a bacterial persulfide dioxygenase mediates thiol persulfide detoxification

Campecino, J. O.; Costa, S. S.; Walsh, B. J. C.; Trinidad, J. C.; Kannoujia, J.; Poor, A. T.; Van Stappen, C. M.; Gonzalez-Gutierrez, G.; Archer, M.; Brito, J. A.; Giedroc, D. P.

2026-02-21 biochemistry
10.64898/2026.02.20.707092 bioRxiv
Show abstract

A ubiquitous class of non-heme Fe(II) enzymes, the persulfide dioxygenases (PDOs), provide protection against hydrogen sulfide (H2S) poisoning. The PDO in humans is a single-domain enzyme, while bacterial PDOs, such as CstB of Staphylococcus aureus, are often fused to a sulfurtransferase (rhodanese) module. Canonical PDOs cleave the S-S bond of glutathione persulfide (GSSH) to produce GSH and sulfite (SO32-). In contrast, CstB, via an unknown mechanism, converts two RSSH to thiosulfate (S2O32-) without the release of sulfite. Six crystallographic structures of S. aureus CstB reveal that a Cys-Gly sequence (C201-G202) in a CstB-unique dynamic loop functions as a glutathione mimic, occupying one face of the hemifacial octahedral Fe(II) coordination site. We establish that CstB self-S-sulfonates C201 in a thiol persulfide, Fe(II) and O2-dependent manner, which is then shuttled to a persulfidated C408 in the rhodanese domain {approx}27 [A] away via electrostatic steering to generate thiosulfate as the sole oxidation product. Both C201A and C408A CstBs are inactive in O2-consumption. Self-S-sulfonation ensures rapid clearance of diverse reactive sulfur species under conditions where these species accumulate, permitting S. aureus to harness their cytoprotective effects while avoiding cellular toxicity.

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