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Amorphous Solid Forms of Ranolazine and Tryptophan and Their Relaxation to Metastable Polymorphs

[Image: see text] Different methods were explored for the amorphization of ranolazine, a sparingly soluble anti-anginal drug, such as mechanochemistry, quench-cooling, and solvent evaporation from solutions. Amorphous phases, with T(g) values lower than room temperature, were obtained by cryo-millin...

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Autores principales: Silva, Joana F. C., Pereira Silva, Pedro S., Ramos Silva, Manuela, Fantechi, Elvira, Chelazzi, Laura, Ciattini, Samuele, Eusébio, M. Ermelinda S., Rosado, Mário T. S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10486308/
https://www.ncbi.nlm.nih.gov/pubmed/37692331
http://dx.doi.org/10.1021/acs.cgd.3c00565
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author Silva, Joana F. C.
Pereira Silva, Pedro S.
Ramos Silva, Manuela
Fantechi, Elvira
Chelazzi, Laura
Ciattini, Samuele
Eusébio, M. Ermelinda S.
Rosado, Mário T. S.
author_facet Silva, Joana F. C.
Pereira Silva, Pedro S.
Ramos Silva, Manuela
Fantechi, Elvira
Chelazzi, Laura
Ciattini, Samuele
Eusébio, M. Ermelinda S.
Rosado, Mário T. S.
author_sort Silva, Joana F. C.
collection PubMed
description [Image: see text] Different methods were explored for the amorphization of ranolazine, a sparingly soluble anti-anginal drug, such as mechanochemistry, quench-cooling, and solvent evaporation from solutions. Amorphous phases, with T(g) values lower than room temperature, were obtained by cryo-milling and quench-cooling. New forms of ranolazine, named II and III, were identified from the relaxation of the ranolazine amorphous phase produced by cryo-milling, which takes place within several hours after grinding. At room temperature, these metastable polymorphs relax to the lower energy polymorph I, whose crystal structure was solved in this work for the first time. A binary co-amorphous mixture of ranolazine and tryptophan was produced, with three important advantages: higher glass transition temperature, increased kinetic stability preventing relaxation of the amorphous to crystalline phases for at least two months, and improved aqueous solubility. Concomitantly, the thermal behavior of amorphous tryptophan obtained by cryo-milling was studied by DSC. Depending on experimental conditions, it was possible to observe relaxation directly to the lower energy form or by an intermediate metastable crystalline phase and the serendipitous production of the neutral form of this amino acid in the pure solid phase.
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spelling pubmed-104863082023-09-09 Amorphous Solid Forms of Ranolazine and Tryptophan and Their Relaxation to Metastable Polymorphs Silva, Joana F. C. Pereira Silva, Pedro S. Ramos Silva, Manuela Fantechi, Elvira Chelazzi, Laura Ciattini, Samuele Eusébio, M. Ermelinda S. Rosado, Mário T. S. Cryst Growth Des [Image: see text] Different methods were explored for the amorphization of ranolazine, a sparingly soluble anti-anginal drug, such as mechanochemistry, quench-cooling, and solvent evaporation from solutions. Amorphous phases, with T(g) values lower than room temperature, were obtained by cryo-milling and quench-cooling. New forms of ranolazine, named II and III, were identified from the relaxation of the ranolazine amorphous phase produced by cryo-milling, which takes place within several hours after grinding. At room temperature, these metastable polymorphs relax to the lower energy polymorph I, whose crystal structure was solved in this work for the first time. A binary co-amorphous mixture of ranolazine and tryptophan was produced, with three important advantages: higher glass transition temperature, increased kinetic stability preventing relaxation of the amorphous to crystalline phases for at least two months, and improved aqueous solubility. Concomitantly, the thermal behavior of amorphous tryptophan obtained by cryo-milling was studied by DSC. Depending on experimental conditions, it was possible to observe relaxation directly to the lower energy form or by an intermediate metastable crystalline phase and the serendipitous production of the neutral form of this amino acid in the pure solid phase. American Chemical Society 2023-08-18 /pmc/articles/PMC10486308/ /pubmed/37692331 http://dx.doi.org/10.1021/acs.cgd.3c00565 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Silva, Joana F. C.
Pereira Silva, Pedro S.
Ramos Silva, Manuela
Fantechi, Elvira
Chelazzi, Laura
Ciattini, Samuele
Eusébio, M. Ermelinda S.
Rosado, Mário T. S.
Amorphous Solid Forms of Ranolazine and Tryptophan and Their Relaxation to Metastable Polymorphs
title Amorphous Solid Forms of Ranolazine and Tryptophan and Their Relaxation to Metastable Polymorphs
title_full Amorphous Solid Forms of Ranolazine and Tryptophan and Their Relaxation to Metastable Polymorphs
title_fullStr Amorphous Solid Forms of Ranolazine and Tryptophan and Their Relaxation to Metastable Polymorphs
title_full_unstemmed Amorphous Solid Forms of Ranolazine and Tryptophan and Their Relaxation to Metastable Polymorphs
title_short Amorphous Solid Forms of Ranolazine and Tryptophan and Their Relaxation to Metastable Polymorphs
title_sort amorphous solid forms of ranolazine and tryptophan and their relaxation to metastable polymorphs
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10486308/
https://www.ncbi.nlm.nih.gov/pubmed/37692331
http://dx.doi.org/10.1021/acs.cgd.3c00565
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