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A Methylidene Group in the Phosphonic Acid Analogue of Phenylalanine Reverses the Enantiopreference of Binding to Phenylalanine Ammonia‐Lyases

Aromatic amino acid ammonia‐lyases and aromatic amino acid 2,3‐aminomutases contain the post‐translationally formed prosthetic 3,5‐dihydro‐4‐methylidene‐5H‐imidazol‐5‐one (MIO) group. MIO enzymes catalyze the stereoselective synthesis of α‐ or β‐amino acid enantiomers, making these chemical processe...

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Autores principales: Bata, Zsófia, Qian, Renzhe, Roller, Alexander, Horak, Jeannie, Bencze, László Csaba, Paizs, Csaba, Hammerschmidt, Friedrich, Vértessy, Beáta G., Poppe, László
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5573973/
https://www.ncbi.nlm.nih.gov/pubmed/28919846
http://dx.doi.org/10.1002/adsc.201700428
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author Bata, Zsófia
Qian, Renzhe
Roller, Alexander
Horak, Jeannie
Bencze, László Csaba
Paizs, Csaba
Hammerschmidt, Friedrich
Vértessy, Beáta G.
Poppe, László
author_facet Bata, Zsófia
Qian, Renzhe
Roller, Alexander
Horak, Jeannie
Bencze, László Csaba
Paizs, Csaba
Hammerschmidt, Friedrich
Vértessy, Beáta G.
Poppe, László
author_sort Bata, Zsófia
collection PubMed
description Aromatic amino acid ammonia‐lyases and aromatic amino acid 2,3‐aminomutases contain the post‐translationally formed prosthetic 3,5‐dihydro‐4‐methylidene‐5H‐imidazol‐5‐one (MIO) group. MIO enzymes catalyze the stereoselective synthesis of α‐ or β‐amino acid enantiomers, making these chemical processes environmentally friendly and affordable. Characterization of novel inhibitors enables structural understanding of enzyme mechanism and recognizes promising herbicide candidates as well. The present study found that both enantiomers of the aminophosphonic acid analogue of the natural substrate phenylalanine and a novel derivative bearing a methylidene at the β‐position inhibited phenylalanine ammonia‐lyases (PAL), representing MIO enzymes. X‐ray methods unambiguously determined the absolute configuration of all tested enantiomers during their synthesis. Enzyme kinetic measurements revealed the enantiomer of the methylidene‐substituted substrate analogue as being a mirror image relation to the natural l‐phenylalanine as the strongest inhibitor. Isothermal titration calorimetry (ITC) confirmed the binding constants and provided a detailed analysis of the thermodynamic driving forces of ligand binding. Molecular docking suggested that binding of the (R)‐ and (S)‐enantiomers is possible by a mirror image packing. [Image: see text]
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spelling pubmed-55739732017-09-15 A Methylidene Group in the Phosphonic Acid Analogue of Phenylalanine Reverses the Enantiopreference of Binding to Phenylalanine Ammonia‐Lyases Bata, Zsófia Qian, Renzhe Roller, Alexander Horak, Jeannie Bencze, László Csaba Paizs, Csaba Hammerschmidt, Friedrich Vértessy, Beáta G. Poppe, László Adv Synth Catal Full Papers Aromatic amino acid ammonia‐lyases and aromatic amino acid 2,3‐aminomutases contain the post‐translationally formed prosthetic 3,5‐dihydro‐4‐methylidene‐5H‐imidazol‐5‐one (MIO) group. MIO enzymes catalyze the stereoselective synthesis of α‐ or β‐amino acid enantiomers, making these chemical processes environmentally friendly and affordable. Characterization of novel inhibitors enables structural understanding of enzyme mechanism and recognizes promising herbicide candidates as well. The present study found that both enantiomers of the aminophosphonic acid analogue of the natural substrate phenylalanine and a novel derivative bearing a methylidene at the β‐position inhibited phenylalanine ammonia‐lyases (PAL), representing MIO enzymes. X‐ray methods unambiguously determined the absolute configuration of all tested enantiomers during their synthesis. Enzyme kinetic measurements revealed the enantiomer of the methylidene‐substituted substrate analogue as being a mirror image relation to the natural l‐phenylalanine as the strongest inhibitor. Isothermal titration calorimetry (ITC) confirmed the binding constants and provided a detailed analysis of the thermodynamic driving forces of ligand binding. Molecular docking suggested that binding of the (R)‐ and (S)‐enantiomers is possible by a mirror image packing. [Image: see text] John Wiley and Sons Inc. 2017-05-19 2017-06-19 /pmc/articles/PMC5573973/ /pubmed/28919846 http://dx.doi.org/10.1002/adsc.201700428 Text en © 2017 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial‐NoDerivs (http://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Full Papers
Bata, Zsófia
Qian, Renzhe
Roller, Alexander
Horak, Jeannie
Bencze, László Csaba
Paizs, Csaba
Hammerschmidt, Friedrich
Vértessy, Beáta G.
Poppe, László
A Methylidene Group in the Phosphonic Acid Analogue of Phenylalanine Reverses the Enantiopreference of Binding to Phenylalanine Ammonia‐Lyases
title A Methylidene Group in the Phosphonic Acid Analogue of Phenylalanine Reverses the Enantiopreference of Binding to Phenylalanine Ammonia‐Lyases
title_full A Methylidene Group in the Phosphonic Acid Analogue of Phenylalanine Reverses the Enantiopreference of Binding to Phenylalanine Ammonia‐Lyases
title_fullStr A Methylidene Group in the Phosphonic Acid Analogue of Phenylalanine Reverses the Enantiopreference of Binding to Phenylalanine Ammonia‐Lyases
title_full_unstemmed A Methylidene Group in the Phosphonic Acid Analogue of Phenylalanine Reverses the Enantiopreference of Binding to Phenylalanine Ammonia‐Lyases
title_short A Methylidene Group in the Phosphonic Acid Analogue of Phenylalanine Reverses the Enantiopreference of Binding to Phenylalanine Ammonia‐Lyases
title_sort methylidene group in the phosphonic acid analogue of phenylalanine reverses the enantiopreference of binding to phenylalanine ammonia‐lyases
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5573973/
https://www.ncbi.nlm.nih.gov/pubmed/28919846
http://dx.doi.org/10.1002/adsc.201700428
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