Literature DB >> 27119435

Mechanism of the Novel Prenylated Flavin-Containing Enzyme Ferulic Acid Decarboxylase Probed by Isotope Effects and Linear Free-Energy Relationships.

Kyle L Ferguson1, Nattapol Arunrattanamook1, E Neil G Marsh1.   

Abstract

Ferulic acid decarboxylase from Saccharomyces cerevisiae catalyzes the decarboxylation of phenylacrylic acid to form styrene using a newly described prenylated flavin mononucleotide cofactor. A mechanism has been proposed, involving an unprecedented 1,3-dipolar cyclo-addition of the prenylated flavin with the α═β bond of the substrate that serves to activate the substrate toward decarboxylation. We measured a combination of secondary deuterium kinetic isotope effects (KIEs) at the α- and β-positions of phenylacrylic acid together with solvent deuterium KIEs. The solvent KIE is 3.3 on Vmax/KM but is close to unity on Vmax, indicating that proton transfer to the product occurs before the rate-determining step. The secondary KIEs are normal at both the α- and β-positions but vary in magnitude depending on whether the reaction is performed in H2O or D2O. In D2O, the enzyme catalyzed the exchange of deuterium into styrene; this reaction was dependent on the presence of bicarbonate. This observation implies that CO2 release must occur after protonation of the product. Further information was obtained from a linear free-energy analysis of the reaction through the use of a range of para- and meta-substituted phenylacrylic acids. Log(kcat/KM) for the reaction correlated well with the Hammett σ(-) parameter with ρ = -0.39 ± 0.03; r(2) = 0.93. The negative ρ value and secondary isotope effects are consistent with the rate-determining step being the formation of styrene from the prenylated flavin-product adduct through a cyclo-elimination reaction.

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Year:  2016        PMID: 27119435     DOI: 10.1021/acs.biochem.6b00170

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  11 in total

1.  Oxidative Maturation and Structural Characterization of Prenylated FMN Binding by UbiD, a Decarboxylase Involved in Bacterial Ubiquinone Biosynthesis.

Authors:  Stephen A Marshall; Karl Fisher; Aisling Ní Cheallaigh; Mark D White; Karl A P Payne; D A Parker; Stephen E J Rigby; David Leys
Journal:  J Biol Chem       Date:  2017-01-05       Impact factor: 5.157

2.  The role of conserved residues in Fdc decarboxylase in prenylated flavin mononucleotide oxidative maturation, cofactor isomerization, and catalysis.

Authors:  Samuel S Bailey; Karl A P Payne; Karl Fisher; Stephen A Marshall; Matthew J Cliff; Reynard Spiess; David A Parker; Stephen E J Rigby; David Leys
Journal:  J Biol Chem       Date:  2017-12-19       Impact factor: 5.157

3.  Exploring the substrate scope of ferulic acid decarboxylase (FDC1) from Saccharomyces cerevisiae.

Authors:  Emma Zsófia Aletta Nagy; Csaba Levente Nagy; Alina Filip; Katalin Nagy; Emese Gál; Róbert Tőtős; László Poppe; Csaba Paizs; László Csaba Bencze
Journal:  Sci Rep       Date:  2019-01-24       Impact factor: 4.379

4.  Crystal structures of non-oxidative decarboxylases reveal a new mechanism of action with a catalytic dyad and structural twists.

Authors:  Matthias Zeug; Nebojsa Markovic; Cristina V Iancu; Joanna Tripp; Mislav Oreb; Jun-Yong Choe
Journal:  Sci Rep       Date:  2021-02-04       Impact factor: 4.379

5.  Direct 1,3-butadiene biosynthesis in Escherichia coli via a tailored ferulic acid decarboxylase mutant.

Authors:  Yutaro Mori; Shuhei Noda; Tomokazu Shirai; Akihiko Kondo
Journal:  Nat Commun       Date:  2021-04-13       Impact factor: 14.919

6.  Toolbox for the structure-guided evolution of ferulic acid decarboxylase (FDC).

Authors:  Horia Duță; Alina Filip; Levente Csaba Nagy; Emma Zsófia Aletta Nagy; Róbert Tőtős; László Csaba Bencze
Journal:  Sci Rep       Date:  2022-03-01       Impact factor: 4.379

7.  Regioselective para-Carboxylation of Catechols with a Prenylated Flavin Dependent Decarboxylase.

Authors:  Stefan E Payer; Stephen A Marshall; Natalie Bärland; Xiang Sheng; Tamara Reiter; Andela Dordic; Georg Steinkellner; Christiane Wuensch; Susann Kaltwasser; Karl Fisher; Stephen E J Rigby; Peter Macheroux; Janet Vonck; Karl Gruber; Kurt Faber; Fahmi Himo; David Leys; Tea Pavkov-Keller; Silvia M Glueck
Journal:  Angew Chem Int Ed Engl       Date:  2017-10-02       Impact factor: 15.336

8.  Terminal Alkenes from Acrylic Acid Derivatives via Non-Oxidative Enzymatic Decarboxylation by Ferulic Acid Decarboxylases.

Authors:  Godwin A Aleku; Christoph Prause; Ruth T Bradshaw-Allen; Katharina Plasch; Silvia M Glueck; Samuel S Bailey; Karl A P Payne; David A Parker; Kurt Faber; David Leys
Journal:  ChemCatChem       Date:  2018-07-17       Impact factor: 5.686

9.  Enzymatic Carboxylation of 2-Furoic Acid Yields 2,5-Furandicarboxylic Acid (FDCA).

Authors:  Karl A P Payne; Stephen A Marshall; Karl Fisher; Matthew J Cliff; Diego M Cannas; Cunyu Yan; Derren J Heyes; David A Parker; Igor Larrosa; David Leys
Journal:  ACS Catal       Date:  2019-02-15       Impact factor: 13.084

Review 10.  N5 Is the New C4a: Biochemical Functionalization of Reduced Flavins at the N5 Position.

Authors:  Brett A Beaupre; Graham R Moran
Journal:  Front Mol Biosci       Date:  2020-10-30
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