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Tricarballylate catabolism in Salmonella enterica. The TcuB protein uses 4Fe-4S clusters and heme to transfer electrons from FADH2 in the tricarballylate dehydrogenase (TcuA) enzyme to electron acceptors in the cell membrane.
- Source :
-
Biochemistry [Biochemistry] 2007 Aug 07; Vol. 46 (31), pp. 9107-15. Date of Electronic Publication: 2007 Jul 14. - Publication Year :
- 2007
-
Abstract
- Tricarballylate, a citrate analogue, is considered the causative agent of grass tetany, a ruminant disease characterized by acute magnesium deficiency. Although the normal rumen flora cannot catabolize tricarballylate, the Gram-negative enterobacterium Salmonella enterica can. An operon dedicated to tricarballylate utilization (tcuABC) present in this organism encodes all functions required for tricarballylate catabolism. Tricarballylate is converted to the cis-aconitate in a single oxidative step catalyzed by the FAD-dependent tricarballylate dehydrogenase (TcuA) enzyme. We hypothesized that the uncharacterized TcuB protein was required to reoxidize the flavin cofactor in vivo. Here, we report the initial biochemical characterization of TcuB. TcuB is associated with the cell membrane and contains two 4Fe-4S clusters and heme. Site-directed mutagenesis of cysteinyl residues putatively required as ligands of the 4Fe-4S clusters completely inactivated TcuB function. TcuB greatly increased the Vmax of the TcuA reaction from 69 +/- 2 to 8200 +/- 470 nmol min-1 mg-1; the Km of TcuA for tricarballylate was unaffected. Inhibition of TcuB activity by an inhibitor of ubiquinone oxidation, 2,5-dibromo-3-methyl-6-isoproylbenzoquinone (DBMIB), implicated the quinone pool as the ultimate acceptor of electrons from FADH2. We propose a model for the electron flow from FADH2, to the 4Fe-4S clusters, to the heme, and finally to the quinone pool.
- Subjects :
- Aconitic Acid chemistry
Aconitic Acid metabolism
Amino Acid Substitution
Bacterial Proteins chemistry
Bacterial Proteins genetics
Catalysis
Dithionite chemistry
Dithionite metabolism
Electrochemistry
Electron Spin Resonance Spectroscopy
Heme chemistry
Heme metabolism
Hydrogen-Ion Concentration
Iron-Sulfur Proteins antagonists & inhibitors
Iron-Sulfur Proteins chemistry
Kinetics
Membrane Proteins chemistry
Membrane Proteins metabolism
Models, Biological
Molecular Weight
Oxidation-Reduction
Oxidoreductases chemistry
Oxidoreductases genetics
Recombinant Proteins antagonists & inhibitors
Recombinant Proteins chemistry
Recombinant Proteins metabolism
Salmonella enterica enzymology
Salmonella enterica genetics
Spectrophotometry
Spectrophotometry, Ultraviolet
Sulfur chemistry
Sulfur metabolism
Temperature
Tricarboxylic Acids chemistry
Bacterial Proteins metabolism
Iron-Sulfur Proteins physiology
Oxidoreductases metabolism
Salmonella enterica metabolism
Tricarboxylic Acids metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 0006-2960
- Volume :
- 46
- Issue :
- 31
- Database :
- MEDLINE
- Journal :
- Biochemistry
- Publication Type :
- Academic Journal
- Accession number :
- 17630784
- Full Text :
- https://doi.org/10.1021/bi7006564