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4F07

Structure of the Styrene Monooxygenase Flavin Reductase (SMOB) from Pseudomonas putida S12

Summary for 4F07
Entry DOI10.2210/pdb4f07/pdb
DescriptorStyrene monooxygenase component 2, FLAVIN-ADENINE DINUCLEOTIDE, NITRATE ION, ... (5 entities in total)
Functional Keywordsnadh-dependentflavin reductase, smoa, oxidoreductase
Biological sourcePseudomonas
Total number of polymer chains12
Total formula weight257061.90
Authors
Sazinsky, M.H.,Morrison, E.,Kantz, A.,Gassner, G. (deposition date: 2012-05-03, release date: 2013-05-08, Last modification date: 2023-09-13)
Primary citationMorrison, E.,Kantz, A.,Gassner, G.T.,Sazinsky, M.H.
Structure and Mechanism of Styrene Monooxygenase Reductase: New Insight into the FAD-Transfer Reaction.
Biochemistry, 52:6063-6075, 2013
Cited by
PubMed Abstract: The two-component flavoprotein styrene monooxygenase (SMO) from Pseudomonas putida S12 catalyzes the NADH- and FAD-dependent epoxidation of styrene to styrene oxide. In this study, we investigate the mechanism of flavin reduction and transfer from the reductase (SMOB) to the epoxidase (NSMOA) component and report our findings in light of the 2.2 Å crystal structure of SMOB. Upon rapidly mixing with NADH, SMOB forms an NADH → FADox charge-transfer intermediate and catalyzes a hydride-transfer reaction from NADH to FAD, with a rate constant of 49.1 ± 1.4 s(-1), in a step that is coupled to the rapid dissociation of NAD(+). Electrochemical and equilibrium-binding studies indicate that NSMOA binds FADhq ∼13-times more tightly than SMOB, which supports a vectoral transfer of FADhq from the reductase to the epoxidase. After binding to NSMOA, FADhq rapidly reacts with molecular oxygen to form a stable C(4a)-hydroperoxide intermediate. The half-life of apoSMOB generated in the FAD-transfer reaction is increased ∼21-fold, supporting a protein-protein interaction between apoSMOB and the peroxide intermediate of NSMOA. The mechanisms of FAD dissociation and transport from SMOB to NSMOA were probed by monitoring the competitive reduction of cytochrome c in the presence and absence of pyridine nucleotides. On the basis of these studies, we propose a model in which reduced FAD binds to SMOB in equilibrium between an unreactive, sequestered state (S state) and more reactive, transfer state (T state). The dissociation of NAD(+) after the hydride-transfer reaction transiently populates the T state, promoting the transfer of FADhq to NSMOA. The binding of pyridine nucleotides to SMOB-FADhq shifts the FADhq-binding equilibrium from the T state to the S state. Additionally, the 2.2 Å crystal structure of SMOB-FADox reported in this work is discussed in light of the pyridine nucleotide-gated flavin-transfer and electron-transfer reactions.
PubMed: 23909369
DOI: 10.1021/bi400763h
PDB entries with the same primary citation
Experimental method
X-RAY DIFFRACTION (2.3 Å)
Structure validation

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数据于2024-11-13公开中

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