Pyridoxine 5′-phosphate oxidase
Pyridoxine 5′-phosphate oxidase is an enzyme, encoded by the PNPO gene, that catalyzes several reactions in the vitamin B6 metabolism pathway. Pyridoxine 5′-phosphate oxidase catalyzes the final, rate-limiting step in vitamin B6 metabolism, the biosynthesis of pyridoxal 5′-phosphate, the biologically active form of vitamin B6 which acts as an essential cofactor. Pyridoxine 5′-phosphate oxidase is a member of the enzyme class oxidases, or more specifically, oxidoreductases. These enzymes catalyze a simultaneous oxidation-reduction reaction. The substrate oxidase enzymes is hydroxylated by one oxygen atom of molecular oxygen.
Concurrently, the other oxygen atom is reduced to water. Even though molecular oxygen is the electron acceptor in these enzymes' reactions, they are unique because oxygen does not appear in the oxidized product.
The active form of vitamin B6, pyridoxal 5'-phosphate, is critical for normal cellular function. Some cancer cells have notable differences in vitamin B6 metabolism compared to their normal counterparts. The rate-limiting enzyme in vitamin B6 synthesis is pyridoxine-5'-phosphate oxidase.
Structure
Pyridoxine 5′-phosphate oxidase is a homodimer, or a molecule consisting of two identical polypeptide subunits. It is hypothesized that the two monomers are held together by disulfide bonds. There are also salt-bridge interactions between the two monomers. Each subunit tightly binds one molecule of pyridoxal 5′-phosphate. Both alpha-helices and beta-sheets are present in the protein motif, which is best described as a split-barrel structure. This structure is due, in part, to the disulfide bonds present in the secondary protein structure of this enzyme. Multiple thiol groups indicate the presence of disulfide bonds in the structure of the molecule. This enzyme requires the presence of a cofactor, FMN.Cofactors are ions or coenzymes necessary for enzyme activity. The FMN is located in a deep cleft, and held in place by extensive hydrogen-bond interactions with the protein. In this particular case, the FMN helps the enzyme to bind the substrates. In the absence of pyridoxal 5′-phosphate, the active site of the enzyme is in an “open” conformation. Once substrate binds and is converted to PLP, the active site of the enzyme is in a partially “closed” conformation. Specific amino acid residues can form hydrogen bonds with the PLP, thus forming a lid that physically covers the active site, giving rise to the “closed” conformation.
Pathway
Pyridoxine 5′-phosphate oxidase is the enzyme that catalyzes the rate-limited step of the B6 metabolism pathway. Vitamin B6, which is also known as pyridoxine, is a crucial nutrient for the human body, as it is responsible for more bodily functions than any other vitamin. Vitamin B6 is a coenzyme in the metabolism of carbohydrates, fats and proteins. This means that the enzymes which break these entities down for use in the body cannot function unless Vitamin B6 is present to induce a conformational change in the enzyme, thus activating it. Vitamin B6 also plays a role in the synthesis of hormones, red blood cells, neurotransmitters and enzymes. A person who is deficient in Vitamin B6 could suffer from insomnia, as well as suffer damage to the central nervous system.Reactions
Pyridoxine 5′-phosphate oxidase catalyzes several reactions; the two most important are the deamination of pyridoxamine 5′-phosphate and the dehydrogenation of pyridoxine 5-phosphate, both of which are key intermediates in the metabolism of B6. Pyridoxine 5′-phosphate oxidase's EC number is 1.4.3.5.Pyridoxine 5′-phosphate oxidase also plays a role in nitrogen metabolism, converting amines to aldehydes and NH3 by the reaction: