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Autoxidation Kinetics of Tetrahydrobiopterin—Giving Quinonoid Dihydrobiopterin the Consideration It Deserves

In humans, tetrahydrobiopterin (H4Bip) is the cofactor of several essential hydroxylation reactions which dysfunction cause very serious diseases at any age. Hence, the determination of pterins in biological media is of outmost importance in the diagnosis and monitoring of H4Bip deficiency. More tha...

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Autores principales: Boulghobra, Ayoub, Bonose, Myriam, Alhajji, Eskandar, Pallandre, Antoine, Flamand-Roze, Emmanuel, Baudin, Bruno, Menet, Marie-Claude, Moussa, Fathi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9921404/
https://www.ncbi.nlm.nih.gov/pubmed/36770933
http://dx.doi.org/10.3390/molecules28031267
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author Boulghobra, Ayoub
Bonose, Myriam
Alhajji, Eskandar
Pallandre, Antoine
Flamand-Roze, Emmanuel
Baudin, Bruno
Menet, Marie-Claude
Moussa, Fathi
author_facet Boulghobra, Ayoub
Bonose, Myriam
Alhajji, Eskandar
Pallandre, Antoine
Flamand-Roze, Emmanuel
Baudin, Bruno
Menet, Marie-Claude
Moussa, Fathi
author_sort Boulghobra, Ayoub
collection PubMed
description In humans, tetrahydrobiopterin (H4Bip) is the cofactor of several essential hydroxylation reactions which dysfunction cause very serious diseases at any age. Hence, the determination of pterins in biological media is of outmost importance in the diagnosis and monitoring of H4Bip deficiency. More than half a century after the discovery of the physiological role of H4Bip and the recent advent of gene therapy for dopamine and serotonin disorders linked to H4Bip deficiency, the quantification of quinonoid dihydrobiopterin (qH2Bip), the transient intermediate of H4Bip, has not been considered yet. This is mainly due to its short half-life, which goes from 0.9 to 5 min according to previous studies. Based on our recent disclosure of the specific MS/MS transition of qH2Bip, here, we developed an efficient HPLC-MS/MS method to achieve the separation of qH2Bip from H4Bip and other oxidation products in less than 3.5 min. The application of this method to the investigation of H4Bip autoxidation kinetics clearly shows that qH2Bip’s half-life is much longer than previously reported, and mostly longer than that of H4Bip, irrespective of the considered experimental conditions. These findings definitely confirm that an accurate method of H4Bip analysis should include the quantification of qH2Bip.
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spelling pubmed-99214042023-02-12 Autoxidation Kinetics of Tetrahydrobiopterin—Giving Quinonoid Dihydrobiopterin the Consideration It Deserves Boulghobra, Ayoub Bonose, Myriam Alhajji, Eskandar Pallandre, Antoine Flamand-Roze, Emmanuel Baudin, Bruno Menet, Marie-Claude Moussa, Fathi Molecules Article In humans, tetrahydrobiopterin (H4Bip) is the cofactor of several essential hydroxylation reactions which dysfunction cause very serious diseases at any age. Hence, the determination of pterins in biological media is of outmost importance in the diagnosis and monitoring of H4Bip deficiency. More than half a century after the discovery of the physiological role of H4Bip and the recent advent of gene therapy for dopamine and serotonin disorders linked to H4Bip deficiency, the quantification of quinonoid dihydrobiopterin (qH2Bip), the transient intermediate of H4Bip, has not been considered yet. This is mainly due to its short half-life, which goes from 0.9 to 5 min according to previous studies. Based on our recent disclosure of the specific MS/MS transition of qH2Bip, here, we developed an efficient HPLC-MS/MS method to achieve the separation of qH2Bip from H4Bip and other oxidation products in less than 3.5 min. The application of this method to the investigation of H4Bip autoxidation kinetics clearly shows that qH2Bip’s half-life is much longer than previously reported, and mostly longer than that of H4Bip, irrespective of the considered experimental conditions. These findings definitely confirm that an accurate method of H4Bip analysis should include the quantification of qH2Bip. MDPI 2023-01-28 /pmc/articles/PMC9921404/ /pubmed/36770933 http://dx.doi.org/10.3390/molecules28031267 Text en © 2023 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
Boulghobra, Ayoub
Bonose, Myriam
Alhajji, Eskandar
Pallandre, Antoine
Flamand-Roze, Emmanuel
Baudin, Bruno
Menet, Marie-Claude
Moussa, Fathi
Autoxidation Kinetics of Tetrahydrobiopterin—Giving Quinonoid Dihydrobiopterin the Consideration It Deserves
title Autoxidation Kinetics of Tetrahydrobiopterin—Giving Quinonoid Dihydrobiopterin the Consideration It Deserves
title_full Autoxidation Kinetics of Tetrahydrobiopterin—Giving Quinonoid Dihydrobiopterin the Consideration It Deserves
title_fullStr Autoxidation Kinetics of Tetrahydrobiopterin—Giving Quinonoid Dihydrobiopterin the Consideration It Deserves
title_full_unstemmed Autoxidation Kinetics of Tetrahydrobiopterin—Giving Quinonoid Dihydrobiopterin the Consideration It Deserves
title_short Autoxidation Kinetics of Tetrahydrobiopterin—Giving Quinonoid Dihydrobiopterin the Consideration It Deserves
title_sort autoxidation kinetics of tetrahydrobiopterin—giving quinonoid dihydrobiopterin the consideration it deserves
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9921404/
https://www.ncbi.nlm.nih.gov/pubmed/36770933
http://dx.doi.org/10.3390/molecules28031267
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