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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.
Afiliação
  • Sheng X; Department of Organic Chemistry, Arrhenius Laboratory, Stockholm University, Stockholm, Sweden.
  • Plasch K; Institute of Chemistry, Organic & Bioorganic Chemistry, University of Graz, Graz, Austria.
  • Payer SE; Institute of Chemistry, Organic & Bioorganic Chemistry, University of Graz, Graz, Austria.
  • Ertl C; Institute of Chemistry, Organic & Bioorganic Chemistry, University of Graz, Graz, Austria.
  • Hofer G; Institute of Molecular Biosciences, University of Graz, Graz, Austria.
  • Keller W; Institute of Molecular Biosciences, University of Graz, Graz, Austria.
  • Braeuer S; Institute of Chemistry, Analytical Chemistry, University of Graz, Graz, Austria.
  • Goessler W; Institute of Chemistry, Analytical Chemistry, University of Graz, Graz, Austria.
  • Glueck SM; Institute of Chemistry, Organic & Bioorganic Chemistry, University of Graz, Graz, Austria.
  • Himo F; Austrian Centre of Industrial Biotechnology (ACIB GmbH), Graz, Austria.
  • Faber K; Department of Organic Chemistry, Arrhenius Laboratory, Stockholm University, Stockholm, Sweden.
Front Chem ; 6: 608, 2018.
Article em En | MEDLINE | ID: mdl-30619817
ABSTRACT
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 Mn2+ rather than Zn2+. Quantum chemical calculations revealed that decarboxylation of the natural substrate (5-carboxyuracil) proceeds via a (reverse) electrophilic aromatic substitution with formation of CO2. The occurrence of previously proposed tetrahedral carboxylate intermediates with concomitant formation of HCO 3 - 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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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Front Chem Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Front Chem Ano de publicação: 2018 Tipo de documento: Article