Transient Kinetic Analysis of Hydrogen Sulfide Oxidation Catalyzed by Human Sulfide Quinone Oxidoreductase. 2015

Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
From the Department of Biological Chemistry, University of Michigan Medical School, Ann Arbor, Michigan 48109-0600.

The first step in the mitochondrial sulfide oxidation pathway is catalyzed by sulfide quinone oxidoreductase (SQR), which belongs to the family of flavoprotein disulfide oxidoreductases. During the catalytic cycle, the flavin cofactor is intermittently reduced by sulfide and oxidized by ubiquinone, linking H2S oxidation to the electron transfer chain and to energy metabolism. Human SQR can use multiple thiophilic acceptors, including sulfide, sulfite, and glutathione, to form as products, hydrodisulfide, thiosulfate, and glutathione persulfide, respectively. In this study, we have used transient kinetics to examine the mechanism of the flavin reductive half-reaction and have determined the redox potential of the bound flavin to be -123 ± 7 mV. We observe formation of an unusually intense charge-transfer (CT) complex when the enzyme is exposed to sulfide and unexpectedly, when it is exposed to sulfite. In the canonical reaction, sulfide serves as the sulfur donor and sulfite serves as the acceptor, forming thiosulfate. We show that thiosulfate is also formed when sulfide is added to the sulfite-induced CT intermediate, representing a new mechanism for thiosulfate formation. The CT complex is formed at a kinetically competent rate by reaction with sulfide but not with sulfite. Our study indicates that sulfide addition to the active site disulfide is preferred under normal turnover conditions. However, under pathological conditions when sulfite concentrations are high, sulfite could compete with sulfide for addition to the active site disulfide, leading to attenuation of SQR activity and to an alternate route for thiosulfate formation.

UI MeSH Term Description Entries
D007700 Kinetics The rate dynamics in chemical or physical systems.
D008958 Models, Molecular Models used experimentally or theoretically to study molecular shape, electronic properties, or interactions; includes analogous molecules, computer-generated graphics, and mechanical structures. Molecular Models,Model, Molecular,Molecular Model
D011808 Quinone Reductases NAD(P)H:(quinone acceptor) oxidoreductases. A family that includes three enzymes which are distinguished by their sensitivity to various inhibitors. EC 1.6.99.2 (NAD(P)H DEHYDROGENASE (QUINONE);) is a flavoprotein which reduces various quinones in the presence of NADH or NADPH and is inhibited by dicoumarol. EC 1.6.99.5 (NADH dehydrogenase (quinone)) requires NADH, is inhibited by AMP and 2,4-dinitrophenol but not by dicoumarol or folic acid derivatives. EC 1.6.99.6 (NADPH dehydrogenase (quinone)) requires NADPH and is inhibited by dicoumarol and folic acid derivatives but not by 2,4-dinitrophenol. Menaquinone Reductases,Reductases, Menaquinone,Reductases, Quinone
D004579 Electron Transport The process by which ELECTRONS are transported from a reduced substrate to molecular OXYGEN. (From Bennington, Saunders Dictionary and Encyclopedia of Laboratory Medicine and Technology, 1984, p270) Respiratory Chain,Chain, Respiratory,Chains, Respiratory,Respiratory Chains,Transport, Electron
D005182 Flavin-Adenine Dinucleotide A condensation product of riboflavin and adenosine diphosphate. The coenzyme of various aerobic dehydrogenases, e.g., D-amino acid oxidase and L-amino acid oxidase. (Lehninger, Principles of Biochemistry, 1982, p972) FAD,Flavitan,Dinucleotide, Flavin-Adenine,Flavin Adenine Dinucleotide
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D006862 Hydrogen Sulfide A flammable, poisonous gas with a characteristic odor of rotten eggs. It is used in the manufacture of chemicals, in metallurgy, and as an analytical reagent. (From Merck Index, 11th ed) Hydrogen Sulfide (H2(Sx)),Hydrogen Sulfide (H2S2),Hydrogen Sulfide (H2S3),Sulfide, Hydrogen
D013447 Sulfites Inorganic salts of sulfurous acid. Sulfite,Sulfites, Inorganic,Inorganic Sulfites
D055162 Biocatalysis The facilitation of biochemical reactions with the aid of naturally occurring catalysts such as ENZYMES.
D055503 Protein Multimerization The assembly of the QUATERNARY PROTEIN STRUCTURE of multimeric proteins (MULTIPROTEIN COMPLEXES) from their composite PROTEIN SUBUNITS. Protein Dimerization,Protein Heteromultimerizaton,Protein Multimer Assembly,Protein Trimerization,Assembly, Protein Multimer,Dimerization, Protein,Heteromultimerizaton, Protein,Heteromultimerizatons, Protein,Multimer Assembly, Protein,Multimerization, Protein,Trimerization, Protein

Related Publications

Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
March 2021, Chembiochem : a European journal of chemical biology,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
July 2017, The Journal of biological chemistry,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
April 2016, Biochemistry and cell biology = Biochimie et biologie cellulaire,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
January 1999, Journal of bioscience and bioengineering,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
March 2016, The Journal of biological chemistry,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
January 2015, Methods in enzymology,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
May 1994, Biochimica et biophysica acta,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
January 2022, The Journal of biological chemistry,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
September 2014, Nitric oxide : biology and chemistry,
Tatiana V Mishanina, and Pramod K Yadav, and David P Ballou, and Ruma Banerjee
November 2019, Cell chemical biology,
Copied contents to your clipboard!