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H<sub>2</sub>S Is a Potential Universal Reducing Agent for Prx6-Type Peroxiredoxins.


ABSTRACT: The absence of a universal reducing agent distinguishes the Prx6-type subfamily of peroxiredoxins from the structurally similar Prx1-type subfamily. A likely explanation for the lack of reactivity of Prx6-type enzymes with common reducing agents is that a histidyl residue at the bottom of the active-site pocket traps the oxidized enzyme in an inaccessible fully-folded protein conformation. Here, we analyzed the reduction of oxidized PfPrx6 from Plasmodium falciparum and human PrxVI by the hydrosulfide ion, HS-, as the smallest possible sulfur-containing universal electron donor. We show that HS- rapidly reacts with oxidized wild-type PfPrx6 or human PrxVI (but not the histidyl mutants PfPrx6H39Y or hPrxVIH39Y) with a second-order rate constant of > 108 m‒1s‒1 at pH 7.4. The obtained protein-hydropersulfide species is neither reduced by thioredoxin nor glutaredoxin and glutathione, but further reacts with an excess of HS- with a second-order rate constant around 104 m‒1s‒1, yielding the reduced enzyme. In summary, we identified HS- as a highly reactive, potential universal electron donor for Prx6-type enzymes. This study marks the starting point for the characterization of the complex reduction pathway of Prx6-type enzymes with implications for H2S detoxification and redox signaling as well as iron-sulfur and persulfide metabolism.

SUBMITTER: Lang L 

PROVIDER: S-EPMC12697902 | biostudies-literature | 2025 Dec

REPOSITORIES: biostudies-literature

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H&lt;sub&gt;2&lt;/sub&gt;S Is a Potential Universal Reducing Agent for Prx6-Type Peroxiredoxins.

Lang Lukas L   Leiskau Laura L   Bambach Lea L   Deponte Marcel M  

Advanced science (Weinheim, Baden-Wurttemberg, Germany) 20251001 46


The absence of a universal reducing agent distinguishes the Prx6-type subfamily of peroxiredoxins from the structurally similar Prx1-type subfamily. A likely explanation for the lack of reactivity of Prx6-type enzymes with common reducing agents is that a histidyl residue at the bottom of the active-site pocket traps the oxidized enzyme in an inaccessible fully-folded protein conformation. Here, we analyzed the reduction of oxidized PfPrx6 from Plasmodium falciparum and human PrxVI by the hydros  ...[more]

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