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Assembling the Puzzle of Taxifolin Polymorphism

A large amount of the current literature dedicated to solid states of active pharmaceutical ingredients (APIs) pays special attention to polymorphism of flavonoids. Taxifolin (also known as dihydroquercetin) is an example of a typical flavonoid. Some new forms of taxifolin have been reported previou...

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Autores principales: Terekhov, Roman P., Selivanova, Irina A., Tyukavkina, Nonna A., Ilyasov, Igor R., Zhevlakova, Anastasiya K., Dzuban, Alexander V., Bogdanov, Anatoliy G., Davidovich, Georgiy N., Shylov, Gennadii V., Utenishev, Andrey N., Kovalev, Dmitriy Yu., Fenin, Anatoliy A., Kabluchko, Tatyana G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7699767/
https://www.ncbi.nlm.nih.gov/pubmed/33233608
http://dx.doi.org/10.3390/molecules25225437
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author Terekhov, Roman P.
Selivanova, Irina A.
Tyukavkina, Nonna A.
Ilyasov, Igor R.
Zhevlakova, Anastasiya K.
Dzuban, Alexander V.
Bogdanov, Anatoliy G.
Davidovich, Georgiy N.
Shylov, Gennadii V.
Utenishev, Andrey N.
Kovalev, Dmitriy Yu.
Fenin, Anatoliy A.
Kabluchko, Tatyana G.
author_facet Terekhov, Roman P.
Selivanova, Irina A.
Tyukavkina, Nonna A.
Ilyasov, Igor R.
Zhevlakova, Anastasiya K.
Dzuban, Alexander V.
Bogdanov, Anatoliy G.
Davidovich, Georgiy N.
Shylov, Gennadii V.
Utenishev, Andrey N.
Kovalev, Dmitriy Yu.
Fenin, Anatoliy A.
Kabluchko, Tatyana G.
author_sort Terekhov, Roman P.
collection PubMed
description A large amount of the current literature dedicated to solid states of active pharmaceutical ingredients (APIs) pays special attention to polymorphism of flavonoids. Taxifolin (also known as dihydroquercetin) is an example of a typical flavonoid. Some new forms of taxifolin have been reported previously, however it is still unclear whether they represent polymorphic modifications. In this paper, we tried to answer the question about the taxifolin polymorphism. Taxifolin microtubes and taxifolin microspheres were synthesized from raw taxifolin API using several methods of crystal engineering. All forms were described with the help of spectral methods, scanning electron microscopy (SEM), X-ray powder diffraction (XRPD), and thermal analysis (TA). SEM reveals that the morphology of the solid phase is very specific for each sample. Although XRPD patterns of raw taxifolin and microtubes look similar, their TA profiles differ significantly. At the same time, raw taxifolin and microspheres have nearly identical thermograms, while XRPD shows that the former is a crystalline and the latter is an amorphous substance. Only the use of complex analyses allowed us to put the puzzle together and to confirm the polymorphism of taxifolin. This article demonstrates that taxifolin microtubes are a pseudopolymorphic modification of raw taxifolin.
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spelling pubmed-76997672020-11-29 Assembling the Puzzle of Taxifolin Polymorphism Terekhov, Roman P. Selivanova, Irina A. Tyukavkina, Nonna A. Ilyasov, Igor R. Zhevlakova, Anastasiya K. Dzuban, Alexander V. Bogdanov, Anatoliy G. Davidovich, Georgiy N. Shylov, Gennadii V. Utenishev, Andrey N. Kovalev, Dmitriy Yu. Fenin, Anatoliy A. Kabluchko, Tatyana G. Molecules Article A large amount of the current literature dedicated to solid states of active pharmaceutical ingredients (APIs) pays special attention to polymorphism of flavonoids. Taxifolin (also known as dihydroquercetin) is an example of a typical flavonoid. Some new forms of taxifolin have been reported previously, however it is still unclear whether they represent polymorphic modifications. In this paper, we tried to answer the question about the taxifolin polymorphism. Taxifolin microtubes and taxifolin microspheres were synthesized from raw taxifolin API using several methods of crystal engineering. All forms were described with the help of spectral methods, scanning electron microscopy (SEM), X-ray powder diffraction (XRPD), and thermal analysis (TA). SEM reveals that the morphology of the solid phase is very specific for each sample. Although XRPD patterns of raw taxifolin and microtubes look similar, their TA profiles differ significantly. At the same time, raw taxifolin and microspheres have nearly identical thermograms, while XRPD shows that the former is a crystalline and the latter is an amorphous substance. Only the use of complex analyses allowed us to put the puzzle together and to confirm the polymorphism of taxifolin. This article demonstrates that taxifolin microtubes are a pseudopolymorphic modification of raw taxifolin. MDPI 2020-11-20 /pmc/articles/PMC7699767/ /pubmed/33233608 http://dx.doi.org/10.3390/molecules25225437 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
Terekhov, Roman P.
Selivanova, Irina A.
Tyukavkina, Nonna A.
Ilyasov, Igor R.
Zhevlakova, Anastasiya K.
Dzuban, Alexander V.
Bogdanov, Anatoliy G.
Davidovich, Georgiy N.
Shylov, Gennadii V.
Utenishev, Andrey N.
Kovalev, Dmitriy Yu.
Fenin, Anatoliy A.
Kabluchko, Tatyana G.
Assembling the Puzzle of Taxifolin Polymorphism
title Assembling the Puzzle of Taxifolin Polymorphism
title_full Assembling the Puzzle of Taxifolin Polymorphism
title_fullStr Assembling the Puzzle of Taxifolin Polymorphism
title_full_unstemmed Assembling the Puzzle of Taxifolin Polymorphism
title_short Assembling the Puzzle of Taxifolin Polymorphism
title_sort assembling the puzzle of taxifolin polymorphism
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7699767/
https://www.ncbi.nlm.nih.gov/pubmed/33233608
http://dx.doi.org/10.3390/molecules25225437
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