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Structure and Ligand Binding Properties of the Epoxidase Component of Styrene Monooxygenase.

Authors :
Ukaegbu, Uchechi E.
Kantz, Auric
Beaton, Michelle
Gassner, George T.
Rosenweig, Amy C.
Source :
Biochemistry. 3/2/2010, Vol. 49 Issue 8, p1678-1688. 11p.
Publication Year :
2010

Abstract

Styrene monooxygenase (SMO) is a two-component flavoprotein monooxygenase that transforms styrene to styrene oxide in the first step of the styrene catabolic and detoxification pathway of Pseudontonas putida S12. The crystal structure of the N-terminally histidine-tagged epoxidase component of this system, NSMOA, determined to 2.3 Å resolution, indicates the enzyme exists as a homodimer in which each monomer forms two distinct domains. The overall architecture is most similar to that of p-hydroxybenzoate hydroxylase (PHBH), although there are some significant differences in secondary structure. Structural comparisons suggest that a large cavity open to the surface forms the FAD binding site. At the base of this pocket is another cavity that likely represents the styrene binding site. Flavin binding and redox equilibria are tightly coupled such that reduced FAD binds apo NSMOA ∼8000 limes more tightly than the oxidized coenzyme. Equilibrium fluorescence and isothermal titration calorimetry data using benzene as a substrate analogue indicate that the oxidized flavin and substrate analogue binding equilibria of NSMOA are linked such that the binding affinity of each is increased by 60-fold when the enzyme is saturated with Ihe other. A much weaker ∼2-fold positive cooperative interaction is observed for the linked binding equilibria of benzene and reduced FAD. The low affinity of the substrate analogue for the reduced FAD complex of NSMOA is consistent with it preferred restction order in which flavin reduction and reaction with oxygen precede the binding of styrene, identifying the apoenzyme structure as the key catalytic resting state of NSMOA poised to bind reduced FAD and initiate the oxygen reaction. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00062960
Volume :
49
Issue :
8
Database :
Academic Search Index
Journal :
Biochemistry
Publication Type :
Academic Journal
Accession number :
48645328
Full Text :
https://doi.org/10.1021/bi901693u