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Reaction Mechanism and Substrate Specificity of Iso-orotate Decarboxylase: A Combined Theoretical and Experimental Study

The C-C bond cleavage catalyzed by metal-dependent iso-orotate decarboxylase (IDCase) from the thymidine salvage pathway is of interest for the elucidation of a (hypothetical) DNA demethylation pathway. IDCase appears also as a promising candidate for the synthetic regioselective carboxylation of N-...

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Autores principales: Sheng, Xiang, Plasch, Katharina, Payer, Stefan E., Ertl, Claudia, Hofer, Gerhard, Keller, Walter, Braeuer, Simone, Goessler, Walter, Glueck, Silvia M., Himo, Fahmi, Faber, Kurt
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6305744/
https://www.ncbi.nlm.nih.gov/pubmed/30619817
http://dx.doi.org/10.3389/fchem.2018.00608
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author Sheng, Xiang
Plasch, Katharina
Payer, Stefan E.
Ertl, Claudia
Hofer, Gerhard
Keller, Walter
Braeuer, Simone
Goessler, Walter
Glueck, Silvia M.
Himo, Fahmi
Faber, Kurt
author_facet Sheng, Xiang
Plasch, Katharina
Payer, Stefan E.
Ertl, Claudia
Hofer, Gerhard
Keller, Walter
Braeuer, Simone
Goessler, Walter
Glueck, Silvia M.
Himo, Fahmi
Faber, Kurt
author_sort Sheng, Xiang
collection PubMed
description The C-C bond cleavage catalyzed by metal-dependent iso-orotate decarboxylase (IDCase) from the thymidine salvage pathway is of interest for the elucidation of a (hypothetical) DNA demethylation pathway. IDCase appears also as a promising candidate for the synthetic regioselective carboxylation of N-heteroaromatics. Herein, we report a joint experimental-theoretical study to gain insights into the metal identity, reaction mechanism, and substrate specificity of IDCase. In contrast to previous assumptions, the enzyme is demonstrated by ICPMS/MS measurements to contain a catalytically relevant Mn(2+) rather than Zn(2+). Quantum chemical calculations revealed that decarboxylation of the natural substrate (5-carboxyuracil) proceeds via a (reverse) electrophilic aromatic substitution with formation of CO(2). The occurrence of previously proposed tetrahedral carboxylate intermediates with concomitant formation of [Formula: see text] could be ruled out on the basis of prohibitively high energy barriers. In contrast to related o-benzoic acid decarboxylases, such as γ-resorcylate decarboxylase and 5-carboxyvanillate decarboxylase, which exhibit a relaxed substrate tolerance for phenolic acids, IDCase shows high substrate fidelity. Structural and energy comparisons suggest that this is caused by a unique hydrogen bonding of the heterocyclic natural substrate (5-carboxyuracil) to the surrounding residues. Analysis of calculated energies also shows that the reverse carboxylation of uracil is impeded by a strongly disfavored uphill reaction.
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spelling pubmed-63057442019-01-07 Reaction Mechanism and Substrate Specificity of Iso-orotate Decarboxylase: A Combined Theoretical and Experimental Study Sheng, Xiang Plasch, Katharina Payer, Stefan E. Ertl, Claudia Hofer, Gerhard Keller, Walter Braeuer, Simone Goessler, Walter Glueck, Silvia M. Himo, Fahmi Faber, Kurt Front Chem Chemistry The C-C bond cleavage catalyzed by metal-dependent iso-orotate decarboxylase (IDCase) from the thymidine salvage pathway is of interest for the elucidation of a (hypothetical) DNA demethylation pathway. IDCase appears also as a promising candidate for the synthetic regioselective carboxylation of N-heteroaromatics. Herein, we report a joint experimental-theoretical study to gain insights into the metal identity, reaction mechanism, and substrate specificity of IDCase. In contrast to previous assumptions, the enzyme is demonstrated by ICPMS/MS measurements to contain a catalytically relevant Mn(2+) rather than Zn(2+). Quantum chemical calculations revealed that decarboxylation of the natural substrate (5-carboxyuracil) proceeds via a (reverse) electrophilic aromatic substitution with formation of CO(2). The occurrence of previously proposed tetrahedral carboxylate intermediates with concomitant formation of [Formula: see text] could be ruled out on the basis of prohibitively high energy barriers. In contrast to related o-benzoic acid decarboxylases, such as γ-resorcylate decarboxylase and 5-carboxyvanillate decarboxylase, which exhibit a relaxed substrate tolerance for phenolic acids, IDCase shows high substrate fidelity. Structural and energy comparisons suggest that this is caused by a unique hydrogen bonding of the heterocyclic natural substrate (5-carboxyuracil) to the surrounding residues. Analysis of calculated energies also shows that the reverse carboxylation of uracil is impeded by a strongly disfavored uphill reaction. Frontiers Media S.A. 2018-12-19 /pmc/articles/PMC6305744/ /pubmed/30619817 http://dx.doi.org/10.3389/fchem.2018.00608 Text en Copyright © 2018 Sheng, Plasch, Payer, Ertl, Hofer, Keller, Braeuer, Goessler, Glueck, Himo and Faber. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Sheng, Xiang
Plasch, Katharina
Payer, Stefan E.
Ertl, Claudia
Hofer, Gerhard
Keller, Walter
Braeuer, Simone
Goessler, Walter
Glueck, Silvia M.
Himo, Fahmi
Faber, Kurt
Reaction Mechanism and Substrate Specificity of Iso-orotate Decarboxylase: A Combined Theoretical and Experimental Study
title Reaction Mechanism and Substrate Specificity of Iso-orotate Decarboxylase: A Combined Theoretical and Experimental Study
title_full Reaction Mechanism and Substrate Specificity of Iso-orotate Decarboxylase: A Combined Theoretical and Experimental Study
title_fullStr Reaction Mechanism and Substrate Specificity of Iso-orotate Decarboxylase: A Combined Theoretical and Experimental Study
title_full_unstemmed Reaction Mechanism and Substrate Specificity of Iso-orotate Decarboxylase: A Combined Theoretical and Experimental Study
title_short Reaction Mechanism and Substrate Specificity of Iso-orotate Decarboxylase: A Combined Theoretical and Experimental Study
title_sort reaction mechanism and substrate specificity of iso-orotate decarboxylase: a combined theoretical and experimental study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6305744/
https://www.ncbi.nlm.nih.gov/pubmed/30619817
http://dx.doi.org/10.3389/fchem.2018.00608
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