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Kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study

Enzymatic decarboxylation of α,β-unsaturated acid through ferulic acid decarboxylase (FDC1) has been of interest because this reaction has been anticipated to be a promising, environmentally friendly industrial process for producing styrene and its derivatives from natural resources. Because the loc...

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Autores principales: Promma, Phorntep, Lao-ngam, Charoensak, Lai, Rung-Yi, Sagarik, Kritsana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9092429/
https://www.ncbi.nlm.nih.gov/pubmed/35558849
http://dx.doi.org/10.1039/d2ra02626k
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author Promma, Phorntep
Lao-ngam, Charoensak
Lai, Rung-Yi
Sagarik, Kritsana
author_facet Promma, Phorntep
Lao-ngam, Charoensak
Lai, Rung-Yi
Sagarik, Kritsana
author_sort Promma, Phorntep
collection PubMed
description Enzymatic decarboxylation of α,β-unsaturated acid through ferulic acid decarboxylase (FDC1) has been of interest because this reaction has been anticipated to be a promising, environmentally friendly industrial process for producing styrene and its derivatives from natural resources. Because the local dielectric constant at the active site is not exactly known, enzymatic decarboxylation to generate β-methylstyrene (β-MeSt) was studied under two extreme conditions (ε = 1 and 78 in the gas phase and aqueous solution, respectively) using the B3LYP/DZP method and transition state theory (TST). The model molecular clusters consisted of an α-methylcinnamate (Cin) substrate, a prenylated flavin mononucleotide (PrFMN) cofactor and all relevant residues of FDC1. Analysis of the equilibrium structures showed that the FDC1 backbone does not play the most important role in the decarboxylation process. The potential energy profiles confirmed that the increase in the polarity of the solvent could lead to significant changes in the energy barriers, especially for the transition states that involve proton transfer. Analysis of the rate constants confirmed the low/no quantum mechanical tunneling effect in the studied temperature range and that inclusion of the fluctuation of the local dielectric environment in the mechanistic model was essential. Because the computed rate constants are not compatible with the time resolution of the stopped-flow spectrophotometric experiment, the direct route for generating β-MeSt after CO(2) elimination (acid catalyst (2)) is unlikely to be utilized, thereby confirming that indirect cycloelimination in a low local dielectric environment is the rate determining step. The thermodynamic results showed that the elementary reactions that involve charge (proton) transfer are affected by solvent polarity, thereby leading to the conclusion that overall, the enzymatic decarboxylation of α,β-unsaturated acid is thermodynamically controlled at high ε. The entropy changes due to the generation of molecules in the active site appeared more pronounced than that due to only covalent bond breaking/formation or structural reorientation. This work examined in detail for the first time the scenarios in each elementary reaction and provided insight into the effect of the fluctuations in the local dielectric environment on the enzymatic decarboxylation of α,β-unsaturated acids. These results could be used as guidelines for further theoretical and experimental studies on the same and similar systems.
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spelling pubmed-90924292022-05-11 Kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study Promma, Phorntep Lao-ngam, Charoensak Lai, Rung-Yi Sagarik, Kritsana RSC Adv Chemistry Enzymatic decarboxylation of α,β-unsaturated acid through ferulic acid decarboxylase (FDC1) has been of interest because this reaction has been anticipated to be a promising, environmentally friendly industrial process for producing styrene and its derivatives from natural resources. Because the local dielectric constant at the active site is not exactly known, enzymatic decarboxylation to generate β-methylstyrene (β-MeSt) was studied under two extreme conditions (ε = 1 and 78 in the gas phase and aqueous solution, respectively) using the B3LYP/DZP method and transition state theory (TST). The model molecular clusters consisted of an α-methylcinnamate (Cin) substrate, a prenylated flavin mononucleotide (PrFMN) cofactor and all relevant residues of FDC1. Analysis of the equilibrium structures showed that the FDC1 backbone does not play the most important role in the decarboxylation process. The potential energy profiles confirmed that the increase in the polarity of the solvent could lead to significant changes in the energy barriers, especially for the transition states that involve proton transfer. Analysis of the rate constants confirmed the low/no quantum mechanical tunneling effect in the studied temperature range and that inclusion of the fluctuation of the local dielectric environment in the mechanistic model was essential. Because the computed rate constants are not compatible with the time resolution of the stopped-flow spectrophotometric experiment, the direct route for generating β-MeSt after CO(2) elimination (acid catalyst (2)) is unlikely to be utilized, thereby confirming that indirect cycloelimination in a low local dielectric environment is the rate determining step. The thermodynamic results showed that the elementary reactions that involve charge (proton) transfer are affected by solvent polarity, thereby leading to the conclusion that overall, the enzymatic decarboxylation of α,β-unsaturated acid is thermodynamically controlled at high ε. The entropy changes due to the generation of molecules in the active site appeared more pronounced than that due to only covalent bond breaking/formation or structural reorientation. This work examined in detail for the first time the scenarios in each elementary reaction and provided insight into the effect of the fluctuations in the local dielectric environment on the enzymatic decarboxylation of α,β-unsaturated acids. These results could be used as guidelines for further theoretical and experimental studies on the same and similar systems. The Royal Society of Chemistry 2022-05-11 /pmc/articles/PMC9092429/ /pubmed/35558849 http://dx.doi.org/10.1039/d2ra02626k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Promma, Phorntep
Lao-ngam, Charoensak
Lai, Rung-Yi
Sagarik, Kritsana
Kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study
title Kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study
title_full Kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study
title_fullStr Kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study
title_full_unstemmed Kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study
title_short Kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study
title_sort kinetics and thermodynamics of enzymatic decarboxylation of α,β-unsaturated acid: a theoretical study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9092429/
https://www.ncbi.nlm.nih.gov/pubmed/35558849
http://dx.doi.org/10.1039/d2ra02626k
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