Glutaredoxins Rapidly Reduce Glutathione Hydroper‐ and Polysulfides

ABSTRACT Hydropersulfides have gained attention as excellent biochemical nucleophiles and membrane‐protective radical scavengers. They form perthiyl radicals, which terminate radical chain reactions through self‐recombination, yielding polysulfides. It is currently unknown exactly how polysulfides are subsequently reduced. Using stopped–flow kinetic measurements in combination with mass spectrometry, we show that the model class I glutaredoxin from Plasmodium falciparum (PfGrx) rapidly reduces the polysulfides glutathione trisulfide (GS 3 G) and tetrasulfide (GS 4 G), yielding glutathionylated PfGrx and the corresponding glutathione hydropersulfide (GSSH) and hydrotrisulfide (GS 3 H). The second‐order rate constants of these reductions ≥10 7 M −1 s −1 are even slightly higher than for glutathione disulfide (GSSG). In contrast, PfGrx was inactive or only moderately active toward cystine or cysteine trisulfide. GSSH and GS 3 H are further reduced by PfGrx with second‐order rate constants on the order of 10 6− 10 7 M −1 s −1 , yielding glutathionylated PfGrx and hydrogen sulfide (H 2 S) or hydrogen disulfide (H 2 S 2 ), respectively. Thus, glutaredoxins specifically recognize the glutathione moiety of glutathione (hydro)per/polysulfides. Since reduced glutathione (GSH) rapidly reduces glutathionylated glutaredoxins, glutathione (hydro)per/polysulfides are efficiently converted to GSSG and H 2 S or the corresponding hydrogen polysulfides. As a consequence, the steady‐state concentration of glutathione (hydro)per/polysulfides should be tightly controlled in subcellular compartments containing active glutaredoxins and high GSH concentrations.

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Journal
Angewandte Chemie International Edition
Published
2026-09-21
DOI
https://doi.org/10.1002/anie.1222129
Primary Topic
Redox biology and oxidative stress
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article
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article

Glutaredoxins Rapidly Reduce Glutathione Hydroper‐ and Polysulfides

Uladzimir Barayeu, Seiryo Ogata, Takaaki Akaike, Marcel Deponte et al.
Angewandte Chemie International Edition
Redox biology and oxidative stress
article

Glutaredoxins Rapidly Reduce Glutathione Hydroper‐ and Polysulfides

Uladzimir Barayeu, Seiryo Ogata, Takaaki Akaike, Marcel Deponte, Philipp Reinert, Laura Leiskau, Sernur Sena Yildiz
article en

Abstract

ABSTRACT Hydropersulfides have gained attention as excellent biochemical nucleophiles and membrane‐protective radical scavengers. They form perthiyl radicals, which terminate radical chain reactions through self‐recombination, yielding polysulfides. It is currently unknown exactly how polysulfides are subsequently reduced. Using stopped–flow kinetic measurements in combination with mass spectrometry, we show that the model class I glutaredoxin from Plasmodium falciparum (PfGrx) rapidly reduces the polysulfides glutathione trisulfide (GS 3 G) and tetrasulfide (GS 4 G), yielding glutathionylated PfGrx and the corresponding glutathione hydropersulfide (GSSH) and hydrotrisulfide (GS 3 H). The second‐order rate constants of these reductions ≥10 7 M −1 s −1 are even slightly higher than for glutathione disulfide (GSSG). In contrast, PfGrx was inactive or only moderately active toward cystine or cysteine trisulfide. GSSH and GS 3 H are further reduced by PfGrx with second‐order rate constants on the order of 10 6− 10 7 M −1 s −1 , yielding glutathionylated PfGrx and hydrogen sulfide (H 2 S) or hydrogen disulfide (H 2 S 2 ), respectively. Thus, glutaredoxins specifically recognize the glutathione moiety of glutathione (hydro)per/polysulfides. Since reduced glutathione (GSH) rapidly reduces glutathionylated glutaredoxins, glutathione (hydro)per/polysulfides are efficiently converted to GSSG and H 2 S or the corresponding hydrogen polysulfides. As a consequence, the steady‐state concentration of glutathione (hydro)per/polysulfides should be tightly controlled in subcellular compartments containing active glutaredoxins and high GSH concentrations.

Angewandte Chemie International Edition
University of Kaiserslautern (DE), Tohoku University (JP), Photonik-Zentrum Kaiserslautern (DE), Max Planck Institute for Polymer Research (DE), University of Applied Sciences Kaiserslautern (DE)
Openalex Percentile: Top 18%
Redox biology and oxidative stress
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