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Rational Engineering of the Substrate Specificity of a Thermostable D-Hydantoinase (Dihydropyrimidinase)

D-hydantoinases catalyze an enantioselective opening of 5- and 6-membered cyclic structures and therefore can be used for the production of optically pure precursors for biomedical applications. The thermostable D-hydantoinase from Geobacillus stearothermophilus ATCC 31783 is a manganese-dependent e...

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Autores principales: Aganyants, Hovsep, Weigel, Pierre, Hovhannisyan, Yeranuhi, Lecocq, Michèle, Koloyan, Haykanush, Hambardzumyan, Artur, Hovsepyan, Anichka, Hallet, Jean-Noël, Sakanyan, Vehary
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7175128/
https://www.ncbi.nlm.nih.gov/pubmed/32059545
http://dx.doi.org/10.3390/ht9010005
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author Aganyants, Hovsep
Weigel, Pierre
Hovhannisyan, Yeranuhi
Lecocq, Michèle
Koloyan, Haykanush
Hambardzumyan, Artur
Hovsepyan, Anichka
Hallet, Jean-Noël
Sakanyan, Vehary
author_facet Aganyants, Hovsep
Weigel, Pierre
Hovhannisyan, Yeranuhi
Lecocq, Michèle
Koloyan, Haykanush
Hambardzumyan, Artur
Hovsepyan, Anichka
Hallet, Jean-Noël
Sakanyan, Vehary
author_sort Aganyants, Hovsep
collection PubMed
description D-hydantoinases catalyze an enantioselective opening of 5- and 6-membered cyclic structures and therefore can be used for the production of optically pure precursors for biomedical applications. The thermostable D-hydantoinase from Geobacillus stearothermophilus ATCC 31783 is a manganese-dependent enzyme and exhibits low activity towards bulky hydantoin derivatives. Homology modeling with a known 3D structure (PDB code: 1K1D) allowed us to identify the amino acids to be mutated at the substrate binding site and in its immediate vicinity to modulate the substrate specificity. Both single and double substituted mutants were generated by site-directed mutagenesis at appropriate sites located inside and outside of the stereochemistry gate loops (SGL) involved in the substrate binding. Substrate specificity and kinetic constant data demonstrate that the replacement of Phe159 and Trp287 with alanine leads to an increase in the enzyme activity towards D,L-5-benzyl and D,L-5-indolylmethyl hydantoins. The length of the side chain and the hydrophobicity of substrates are essential parameters to consider when designing the substrate binding pocket for bulky hydantoins. Our data highlight that D-hydantoinase is the authentic dihydropyrimidinase involved in the pyrimidine reductive catabolic pathway in moderate thermophiles.
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spelling pubmed-71751282020-04-28 Rational Engineering of the Substrate Specificity of a Thermostable D-Hydantoinase (Dihydropyrimidinase) Aganyants, Hovsep Weigel, Pierre Hovhannisyan, Yeranuhi Lecocq, Michèle Koloyan, Haykanush Hambardzumyan, Artur Hovsepyan, Anichka Hallet, Jean-Noël Sakanyan, Vehary High Throughput Article D-hydantoinases catalyze an enantioselective opening of 5- and 6-membered cyclic structures and therefore can be used for the production of optically pure precursors for biomedical applications. The thermostable D-hydantoinase from Geobacillus stearothermophilus ATCC 31783 is a manganese-dependent enzyme and exhibits low activity towards bulky hydantoin derivatives. Homology modeling with a known 3D structure (PDB code: 1K1D) allowed us to identify the amino acids to be mutated at the substrate binding site and in its immediate vicinity to modulate the substrate specificity. Both single and double substituted mutants were generated by site-directed mutagenesis at appropriate sites located inside and outside of the stereochemistry gate loops (SGL) involved in the substrate binding. Substrate specificity and kinetic constant data demonstrate that the replacement of Phe159 and Trp287 with alanine leads to an increase in the enzyme activity towards D,L-5-benzyl and D,L-5-indolylmethyl hydantoins. The length of the side chain and the hydrophobicity of substrates are essential parameters to consider when designing the substrate binding pocket for bulky hydantoins. Our data highlight that D-hydantoinase is the authentic dihydropyrimidinase involved in the pyrimidine reductive catabolic pathway in moderate thermophiles. MDPI 2020-02-12 /pmc/articles/PMC7175128/ /pubmed/32059545 http://dx.doi.org/10.3390/ht9010005 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Aganyants, Hovsep
Weigel, Pierre
Hovhannisyan, Yeranuhi
Lecocq, Michèle
Koloyan, Haykanush
Hambardzumyan, Artur
Hovsepyan, Anichka
Hallet, Jean-Noël
Sakanyan, Vehary
Rational Engineering of the Substrate Specificity of a Thermostable D-Hydantoinase (Dihydropyrimidinase)
title Rational Engineering of the Substrate Specificity of a Thermostable D-Hydantoinase (Dihydropyrimidinase)
title_full Rational Engineering of the Substrate Specificity of a Thermostable D-Hydantoinase (Dihydropyrimidinase)
title_fullStr Rational Engineering of the Substrate Specificity of a Thermostable D-Hydantoinase (Dihydropyrimidinase)
title_full_unstemmed Rational Engineering of the Substrate Specificity of a Thermostable D-Hydantoinase (Dihydropyrimidinase)
title_short Rational Engineering of the Substrate Specificity of a Thermostable D-Hydantoinase (Dihydropyrimidinase)
title_sort rational engineering of the substrate specificity of a thermostable d-hydantoinase (dihydropyrimidinase)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7175128/
https://www.ncbi.nlm.nih.gov/pubmed/32059545
http://dx.doi.org/10.3390/ht9010005
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