C4a-Hydroperoxyflavin Formation in <i>N</i>‑Hydroxylating Flavin Monooxygenases Is Mediated by the 2′-OH
of the Nicotinamide Ribose of NADP<sup>+</sup>
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Abstract
Flavin-dependent
monooxygenases must stabilize a C4a-hydroperoxyflavin
intermediate to hydroxylate their respective substrates. Formation
and decay of the C4a-hydroperoxyflavin were monitored under rapid
reaction kinetic conditions in SidA, an <i>N</i>-hydroxylating
monooxygenase involved in siderophore biosynthesis. Solvent kinetic
isotope effect studies of flavin oxidation indicate that both hydrogen
peroxide elimination and water elimination occur via abstraction of
hydrogen from the N5 of the flavin. Kinetic isotope effect and density
functional theory results are consistent with the transfer of a proton
from the 2′-OH of the nicotinamide ribose of nicotinamide adenine
dinucleotide phosphate (NADP<sup>+</sup>) to the C4a-peroxyflavin
to form the C4a-hydroperoxyflavin. This represents a novel role for
NADP<sup>+</sup> in the reaction of flavin-dependent enzymes