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Theoretical Characterization of the Step-by-Step Mechanism of Conversion of Leukotriene A(4) to Leukotriene B(4) Catalysed by the Enzyme Leukotriene A(4) Hydrolase

LTA(4)H is a bifunctional zinc metalloenzyme that converts leukotriene A(4) (LTA(4)) into leukotriene B(4) (LTB(4)), one of the most potent chemotactic agents involved in acute and chronic inflammatory diseases. In this reaction, LTA(4)H acts as an epoxide hydrolase with a unique and fascinating mec...

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Autores principales: Canyelles-Niño, Miquel, González-Lafont, Àngels, Lluch, José M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8954237/
https://www.ncbi.nlm.nih.gov/pubmed/35328561
http://dx.doi.org/10.3390/ijms23063140
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author Canyelles-Niño, Miquel
González-Lafont, Àngels
Lluch, José M.
author_facet Canyelles-Niño, Miquel
González-Lafont, Àngels
Lluch, José M.
author_sort Canyelles-Niño, Miquel
collection PubMed
description LTA(4)H is a bifunctional zinc metalloenzyme that converts leukotriene A(4) (LTA(4)) into leukotriene B(4) (LTB(4)), one of the most potent chemotactic agents involved in acute and chronic inflammatory diseases. In this reaction, LTA(4)H acts as an epoxide hydrolase with a unique and fascinating mechanism, which includes the stereoselective attachment of one water molecule to the carbon backbone of LTA(4) several methylene units away from the epoxide moiety. By combining Molecular Dynamics simulations and Quantum Mechanics/Molecular Mechanics calculations, we obtained a very detailed molecular picture of the different consecutive steps of that mechanism. By means of a rather unusual 1,7-nucleophilic substitution through a clear S(N)1 mechanism, the epoxide opens and the triene moiety of the substrate twists in such a way that the bond C(6)-C(7) adopts its cis (Z) configuration, thus exposing the R face of C(12) to the addition of a water molecule hydrogen-bonded to ASP375. Thus, the two stereochemical features that are required for the bioactivity of LTB(4) appear to be closely related. The noncovalent π-π stacking interactions between the triene moiety and two tyrosines (TYR267 and, especially, TYR378) that wrap the triene system along the whole reaction explain the preference for the cis configuration inside LTA(4)H.
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spelling pubmed-89542372022-03-26 Theoretical Characterization of the Step-by-Step Mechanism of Conversion of Leukotriene A(4) to Leukotriene B(4) Catalysed by the Enzyme Leukotriene A(4) Hydrolase Canyelles-Niño, Miquel González-Lafont, Àngels Lluch, José M. Int J Mol Sci Article LTA(4)H is a bifunctional zinc metalloenzyme that converts leukotriene A(4) (LTA(4)) into leukotriene B(4) (LTB(4)), one of the most potent chemotactic agents involved in acute and chronic inflammatory diseases. In this reaction, LTA(4)H acts as an epoxide hydrolase with a unique and fascinating mechanism, which includes the stereoselective attachment of one water molecule to the carbon backbone of LTA(4) several methylene units away from the epoxide moiety. By combining Molecular Dynamics simulations and Quantum Mechanics/Molecular Mechanics calculations, we obtained a very detailed molecular picture of the different consecutive steps of that mechanism. By means of a rather unusual 1,7-nucleophilic substitution through a clear S(N)1 mechanism, the epoxide opens and the triene moiety of the substrate twists in such a way that the bond C(6)-C(7) adopts its cis (Z) configuration, thus exposing the R face of C(12) to the addition of a water molecule hydrogen-bonded to ASP375. Thus, the two stereochemical features that are required for the bioactivity of LTB(4) appear to be closely related. The noncovalent π-π stacking interactions between the triene moiety and two tyrosines (TYR267 and, especially, TYR378) that wrap the triene system along the whole reaction explain the preference for the cis configuration inside LTA(4)H. MDPI 2022-03-15 /pmc/articles/PMC8954237/ /pubmed/35328561 http://dx.doi.org/10.3390/ijms23063140 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Canyelles-Niño, Miquel
González-Lafont, Àngels
Lluch, José M.
Theoretical Characterization of the Step-by-Step Mechanism of Conversion of Leukotriene A(4) to Leukotriene B(4) Catalysed by the Enzyme Leukotriene A(4) Hydrolase
title Theoretical Characterization of the Step-by-Step Mechanism of Conversion of Leukotriene A(4) to Leukotriene B(4) Catalysed by the Enzyme Leukotriene A(4) Hydrolase
title_full Theoretical Characterization of the Step-by-Step Mechanism of Conversion of Leukotriene A(4) to Leukotriene B(4) Catalysed by the Enzyme Leukotriene A(4) Hydrolase
title_fullStr Theoretical Characterization of the Step-by-Step Mechanism of Conversion of Leukotriene A(4) to Leukotriene B(4) Catalysed by the Enzyme Leukotriene A(4) Hydrolase
title_full_unstemmed Theoretical Characterization of the Step-by-Step Mechanism of Conversion of Leukotriene A(4) to Leukotriene B(4) Catalysed by the Enzyme Leukotriene A(4) Hydrolase
title_short Theoretical Characterization of the Step-by-Step Mechanism of Conversion of Leukotriene A(4) to Leukotriene B(4) Catalysed by the Enzyme Leukotriene A(4) Hydrolase
title_sort theoretical characterization of the step-by-step mechanism of conversion of leukotriene a(4) to leukotriene b(4) catalysed by the enzyme leukotriene a(4) hydrolase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8954237/
https://www.ncbi.nlm.nih.gov/pubmed/35328561
http://dx.doi.org/10.3390/ijms23063140
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