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An Improved Method for the Synthesis of Butein Using SOCl(2)/EtOH as Catalyst and Deciphering Its Inhibition Mechanism on Xanthine Oxidase

Butein (3,4,2′,4′-tetrahydroxychalcone) belongs to the chalcone family of flavonoids and possesses various biological activities. In this study, butein was synthesized through aldol condensation catalyzed by thionyl chloride (SOCl(2))/ethyl alcohol (EtOH) for the first time. The optimal reaction con...

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Autores principales: Hou, Yu-Xue, Sun, Shi-Wei, Liu, Yang, Li, Yan, Liu, Xiao-Hong, Wang, Wei, Zhang, Shuang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6572126/
https://www.ncbi.nlm.nih.gov/pubmed/31117192
http://dx.doi.org/10.3390/molecules24101948
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author Hou, Yu-Xue
Sun, Shi-Wei
Liu, Yang
Li, Yan
Liu, Xiao-Hong
Wang, Wei
Zhang, Shuang
Wang, Wei
author_facet Hou, Yu-Xue
Sun, Shi-Wei
Liu, Yang
Li, Yan
Liu, Xiao-Hong
Wang, Wei
Zhang, Shuang
Wang, Wei
author_sort Hou, Yu-Xue
collection PubMed
description Butein (3,4,2′,4′-tetrahydroxychalcone) belongs to the chalcone family of flavonoids and possesses various biological activities. In this study, butein was synthesized through aldol condensation catalyzed by thionyl chloride (SOCl(2))/ethyl alcohol (EtOH) for the first time. The optimal reaction conditions including the molar ratio of reactants, the dosage of catalyst, and the reaction time on the yield of product were investigated, and the straightforward strategy assembles the yield of butein up to 88%. Butein has been found to inhibit xanthine oxidase (XO) activity. Herein, the inhibitory mechanism of butein against XO was discussed in aspects of inhibition kinetic, fluorescence titration, synchronous fluorescence spectroscopy, and molecular docking. The inhibition kinetic analysis showed that butein possessed a stronger inhibition on XO in an irreversible competitive manner with IC(50) value of 2.93 × 10(−6) mol L(−1). The results of fluorescence titrations and synchronous fluorescence spectroscopy indicated that butein was able to interact with XO at one binding site, and the fluorophores of XO were placed in a more hydrophobic environment with the addition of butein. Subsequently, the result of molecular docking between butein and XO protein revealed that butein formed hydrogen bonding with the amino acid residues located in the hydrophobic cavity of XO. All the results suggested that the inhibitory mechanism of butein on XO may be the insertion of butein into the active site occupying the catalytic center of XO to avoid the entrance of xanthine and inducing conformational changes in XO.
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spelling pubmed-65721262019-06-18 An Improved Method for the Synthesis of Butein Using SOCl(2)/EtOH as Catalyst and Deciphering Its Inhibition Mechanism on Xanthine Oxidase Hou, Yu-Xue Sun, Shi-Wei Liu, Yang Li, Yan Liu, Xiao-Hong Wang, Wei Zhang, Shuang Wang, Wei Molecules Article Butein (3,4,2′,4′-tetrahydroxychalcone) belongs to the chalcone family of flavonoids and possesses various biological activities. In this study, butein was synthesized through aldol condensation catalyzed by thionyl chloride (SOCl(2))/ethyl alcohol (EtOH) for the first time. The optimal reaction conditions including the molar ratio of reactants, the dosage of catalyst, and the reaction time on the yield of product were investigated, and the straightforward strategy assembles the yield of butein up to 88%. Butein has been found to inhibit xanthine oxidase (XO) activity. Herein, the inhibitory mechanism of butein against XO was discussed in aspects of inhibition kinetic, fluorescence titration, synchronous fluorescence spectroscopy, and molecular docking. The inhibition kinetic analysis showed that butein possessed a stronger inhibition on XO in an irreversible competitive manner with IC(50) value of 2.93 × 10(−6) mol L(−1). The results of fluorescence titrations and synchronous fluorescence spectroscopy indicated that butein was able to interact with XO at one binding site, and the fluorophores of XO were placed in a more hydrophobic environment with the addition of butein. Subsequently, the result of molecular docking between butein and XO protein revealed that butein formed hydrogen bonding with the amino acid residues located in the hydrophobic cavity of XO. All the results suggested that the inhibitory mechanism of butein on XO may be the insertion of butein into the active site occupying the catalytic center of XO to avoid the entrance of xanthine and inducing conformational changes in XO. MDPI 2019-05-21 /pmc/articles/PMC6572126/ /pubmed/31117192 http://dx.doi.org/10.3390/molecules24101948 Text en © 2019 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
Hou, Yu-Xue
Sun, Shi-Wei
Liu, Yang
Li, Yan
Liu, Xiao-Hong
Wang, Wei
Zhang, Shuang
Wang, Wei
An Improved Method for the Synthesis of Butein Using SOCl(2)/EtOH as Catalyst and Deciphering Its Inhibition Mechanism on Xanthine Oxidase
title An Improved Method for the Synthesis of Butein Using SOCl(2)/EtOH as Catalyst and Deciphering Its Inhibition Mechanism on Xanthine Oxidase
title_full An Improved Method for the Synthesis of Butein Using SOCl(2)/EtOH as Catalyst and Deciphering Its Inhibition Mechanism on Xanthine Oxidase
title_fullStr An Improved Method for the Synthesis of Butein Using SOCl(2)/EtOH as Catalyst and Deciphering Its Inhibition Mechanism on Xanthine Oxidase
title_full_unstemmed An Improved Method for the Synthesis of Butein Using SOCl(2)/EtOH as Catalyst and Deciphering Its Inhibition Mechanism on Xanthine Oxidase
title_short An Improved Method for the Synthesis of Butein Using SOCl(2)/EtOH as Catalyst and Deciphering Its Inhibition Mechanism on Xanthine Oxidase
title_sort improved method for the synthesis of butein using socl(2)/etoh as catalyst and deciphering its inhibition mechanism on xanthine oxidase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6572126/
https://www.ncbi.nlm.nih.gov/pubmed/31117192
http://dx.doi.org/10.3390/molecules24101948
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