Anna Barile, Angela Tramonti, Martino Luigi di Salvo, Isabel Nogués, Caterina Nardella, Francesco Malatesta, Roberto Contestabile
Journal: The Journal of biological chemistry 2020;294(43):15593-15603
PMID: 31484724
In , the synthesis of pyridoxal 5'-phosphate (PLP), the catalytically active form of vitamin B, takes place through the so-called deoxyxylulose 5-phosphate-dependent pathway, whose last step is pyridoxine 5'-phosphate (PNP) oxidation to PLP, catalyzed by the FMN-dependent enzyme PNP oxidase (PNPOx). This enzyme plays a pivotal role in controlling intracellular homeostasis and bioavailability of PLP. PNPOx has been proposed to undergo product inhibition resulting from PLP binding at the active site. PLP has also been reported to bind tightly at a secondary site, apparently without causing PNPOx inhibition. The possible location of this secondary site has been indicated by crystallographic studies as two symmetric surface pockets present on the PNPOx homodimer, but this site has never been verified by other experimental means. Here, we demonstrate, through kinetic measurements, that PLP inhibition is actually of a mixed-type nature and results from binding of this vitamer at an allosteric site. This interpretation was confirmed by the characterization of a mutated PNPOx form, in which substrate binding at the active site is heavily hampered but PLP binding is preserved. Structural and functional connections between the active site and the allosteric site were indicated by equilibrium binding experiments, which revealed different PLP-binding stoichiometries with WT and mutant PNPOx forms. These observations open up new horizons on the mechanisms that regulate PNPOx, which may have commonalities with the mechanisms regulating human PNPOx, whose crucial role in vitamin B metabolism and epilepsy is well-known.
© 2019 Barile et al.
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