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Landry, A. P.

Publications and source records attributed to Landry, A. P..

2 recordsLinked to original sources

A redox cycle with complex II promotes sulfide quinone oxidoreductase dependent H2S oxidation

The dueling roles of H2S as an endogenously synthesized respiratory substrate and as a toxin, raise questions as to how it is cleared when the electron transport chain is inhibited. Sulfide quinone oxidoreductase (SQOR) is a mitochondrial inner membrane flavoprotein that catalyzes the first step in the H2S oxidation pathway and uses coenzyme Q (CoQ) as an electron acceptor. However, complex IV poisoning by H2S inhibits complex III-dependent recycling of CoQH2, which is needed to sustain H2S oxidation. We have discovered that under these conditions, reversal of complex II activity using fumarate as an electron acceptor, establishes a new redox cycle with SQOR. The purine nucleotide cycle and the malate aspartate shuttle are sources of fumarate in H2S treated cells, which accumulate succinate. Complex II knockdown decreases the efficiency of H2S clearance and increases recovery time to the basal respiration rate in H2S treated cells. In contrast, attenuation of complex I, which is a major competitor for the mitochondrial CoQ pool, has the opposite effects. Targeted knockout of complex II in murine intestinal epithelial cells that are routinely exposed to microbiota derived H2S, decreases serum, urine, and fecal thiosulfate, a product of H2S oxidation. Our study identifies a metabolic reprogramming response to H2S that furnishes fumarate as an alternate electron acceptor and supports H2S oxidation independent of complex IV activity. Complex II-linked redox cycling of SQOR has important implications for gut H2S metabolism as colonocytes are routinely exposed to high concentrations of this gas derived from the microbiota. One Sentence SummaryReversal of complex II sustains and prioritizes H2S oxidation when respiration is poisoned.

biochemistry

Dismantling and rebuilding the trisulfide cofactor demonstrates its essential role in human sulfide quinone oxidoreductase

Sulfide quinone oxidoreductase (SQR) catalyzes the first step in sulfide clearance, coupling H2S oxidation to coenzyme Q reduction. Recent structures of human SQR revealed a sulfur atom bridging the SQR active site cysteines in a trisulfide configuration. Here, we assessed the importance of this cofactor using kinetic, crystallographic and computational modeling approaches. Cyanolysis of SQR proceeds via formation of an intense charge transfer complex that subsequently decays to eliminate thiocyanate. Cyanolysis leads to reversible loss of SQR activity, which is restored in the presence of sulfide. We captured a crystallographic intermediate in SQR that provides clues as to how the oxidized state of the cysteines is preserved. Computational modeling and MD simulations revealed an ~105-fold rate enhancement for nucleophilic addition of sulfide into the trisulfide versus a disulfide cofactor. The cysteine trisulfide in SQR is thus critical for activity and provides a significant catalytic advantage over a cysteine disulfide.

biochemistry