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Mechanism and selectivity of the dinuclear iron benzoyl-coenzyme A epoxidase BoxB

Benzoyl-CoA epoxidase is a dinuclear iron enzyme that catalyzes the epoxidation reaction of the aromatic ring of benzoyl-CoA with chemo-, regio- and stereo-selectivity. It has been suggested that this enzyme may also catalyze the deoxygenation reaction of epoxide, suggesting a unique bifunctionality...

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Autores principales: Liao, Rong-Zhen, Siegbahn, Per E. M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5489048/
https://www.ncbi.nlm.nih.gov/pubmed/28706665
http://dx.doi.org/10.1039/c5sc00313j
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author Liao, Rong-Zhen
Siegbahn, Per E. M.
author_facet Liao, Rong-Zhen
Siegbahn, Per E. M.
author_sort Liao, Rong-Zhen
collection PubMed
description Benzoyl-CoA epoxidase is a dinuclear iron enzyme that catalyzes the epoxidation reaction of the aromatic ring of benzoyl-CoA with chemo-, regio- and stereo-selectivity. It has been suggested that this enzyme may also catalyze the deoxygenation reaction of epoxide, suggesting a unique bifunctionality among the diiron enzymes. We report a density functional theory study of this enzyme aimed at elucidating its mechanism and the various selectivities. The epoxidation is suggested to start with the binding of the O(2) molecule to the diferrous center to generate a diferric peroxide complex, followed by concerted O–O bond cleavage and epoxide formation. Two different pathways have been located, leading to (2S,3R)-epoxy and (2R,3S)-epoxy products, with barriers of 17.6 and 20.4 kcal mol(–1), respectively. The barrier difference is 2.8 kcal mol(–1), corresponding to a diastereomeric excess of about 99 : 1. Further isomerization from epoxide to phenol is found to have quite a high barrier, which cannot compete with the product release step. After product release into solution, fast epoxide–oxepin isomerization and racemization can take place easily, leading to a racemic mixture of (2S,3R) and (2R,3S) products. The deoxygenation of epoxide to regenerate benzoyl-CoA by a diferrous form of the enzyme proceeds via a stepwise mechanism. The C2–O bond cleavage happens first, coupled with one electron transfer from one iron center to the substrate, to form a radical intermediate, which is followed by the second C3–O bond cleavage. The first step is rate-limiting with a barrier of only 10.8 kcal mol(–1). Further experimental studies are encouraged to verify our results.
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spelling pubmed-54890482017-07-13 Mechanism and selectivity of the dinuclear iron benzoyl-coenzyme A epoxidase BoxB Liao, Rong-Zhen Siegbahn, Per E. M. Chem Sci Chemistry Benzoyl-CoA epoxidase is a dinuclear iron enzyme that catalyzes the epoxidation reaction of the aromatic ring of benzoyl-CoA with chemo-, regio- and stereo-selectivity. It has been suggested that this enzyme may also catalyze the deoxygenation reaction of epoxide, suggesting a unique bifunctionality among the diiron enzymes. We report a density functional theory study of this enzyme aimed at elucidating its mechanism and the various selectivities. The epoxidation is suggested to start with the binding of the O(2) molecule to the diferrous center to generate a diferric peroxide complex, followed by concerted O–O bond cleavage and epoxide formation. Two different pathways have been located, leading to (2S,3R)-epoxy and (2R,3S)-epoxy products, with barriers of 17.6 and 20.4 kcal mol(–1), respectively. The barrier difference is 2.8 kcal mol(–1), corresponding to a diastereomeric excess of about 99 : 1. Further isomerization from epoxide to phenol is found to have quite a high barrier, which cannot compete with the product release step. After product release into solution, fast epoxide–oxepin isomerization and racemization can take place easily, leading to a racemic mixture of (2S,3R) and (2R,3S) products. The deoxygenation of epoxide to regenerate benzoyl-CoA by a diferrous form of the enzyme proceeds via a stepwise mechanism. The C2–O bond cleavage happens first, coupled with one electron transfer from one iron center to the substrate, to form a radical intermediate, which is followed by the second C3–O bond cleavage. The first step is rate-limiting with a barrier of only 10.8 kcal mol(–1). Further experimental studies are encouraged to verify our results. Royal Society of Chemistry 2015-05-01 2015-03-02 /pmc/articles/PMC5489048/ /pubmed/28706665 http://dx.doi.org/10.1039/c5sc00313j Text en This journal is © The Royal Society of Chemistry 2015 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Liao, Rong-Zhen
Siegbahn, Per E. M.
Mechanism and selectivity of the dinuclear iron benzoyl-coenzyme A epoxidase BoxB
title Mechanism and selectivity of the dinuclear iron benzoyl-coenzyme A epoxidase BoxB
title_full Mechanism and selectivity of the dinuclear iron benzoyl-coenzyme A epoxidase BoxB
title_fullStr Mechanism and selectivity of the dinuclear iron benzoyl-coenzyme A epoxidase BoxB
title_full_unstemmed Mechanism and selectivity of the dinuclear iron benzoyl-coenzyme A epoxidase BoxB
title_short Mechanism and selectivity of the dinuclear iron benzoyl-coenzyme A epoxidase BoxB
title_sort mechanism and selectivity of the dinuclear iron benzoyl-coenzyme a epoxidase boxb
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5489048/
https://www.ncbi.nlm.nih.gov/pubmed/28706665
http://dx.doi.org/10.1039/c5sc00313j
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