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Molecular oxygen dependent steps in fatty acid oxidation by cyclooxygenase-1

Journal

BIOCHEMISTRY
Volume 46, Issue 13, Pages 3975-3989

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/bi602502j

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The mechanism by which cyclooxygenase-1 (COX-1), a heme- and tyrosyl radical-containing enzyme, catalyzes the regio- and stereospecific oxygenation of polyunsaturated fatty acids to prostaglandin or hydroperoxide products has not been understood. Steady-state kinetic studies conducted with the native substrate arachidonic acid and the slower substrate linoleic acid are described here. Second-order rate constants, k(cat)/K-M for fatty acid and O-2, are found to depend upon the concentration of the other cosubstrate. Competitive oxygen kinetic isotope effects (O-18 KIEs) k(cat)/K-M(O-16,16(2))/k(cat)/K-M(O-18,16(2)) reveal that a peroxyl radical is formed in or before the first kinetically irreversible step. Together, the results indicate that the oxygenase reaction occurs by a sequential mechanism which most likely involves reversible abstraction of a hydrogen atom from the fatty acid prior to the trapping of the delocalized substrate radical by O-2. The identity of the first kinetically irreversible step, subsequent to forming the peroxyl radical, is also discussed in the context of the magnitude of the oxygen kinetic isotope effects as well as the behavior of k(cat)/K-M(O-2) in response to changing solvent pH, pD, and viscosity.

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