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Generation of hydrate forms of paroxetine HCl from the amorphous state: an evaluation of thermodynamic and experimental predictive approaches.
Int J Pharm. 2015 Mar 15; 481(1-2):114-24.IJ

Abstract

In this study, we evaluate the use of theoretical thermodynamic analysis of amorphous paroxetine hydrochloride (HCl) as well as experimental assessment in order to identify the most promising approach to stability and dissolution behaviour prediction, particularly in relation to stoichiometric and nonstoichiometric hydrate formation. Differential scanning calorimetry, thermogravimetric analysis, Fourier transform infrared and X-ray diffraction techniques were used. Parameters including heat capacity, configurational thermodynamic quantities, fragility and relaxation time classified amorphous paroxetine HCl as a moderate fragile glass with a considerable degree of molecular mobility. Solubility studies indicated little advantage of the amorphous form over the crystalline due to conversion to the hydrate Form I during equilibration, while the dissolution rate was higher for the amorphous form under sink conditions. A marked difference in the physical stability of amorphous paroxetine HCl was observed between dry and low humidity storage, with the system recrystallizing to the hydrate form. We conclude that, in this particular case (amorphous conversion to the hydrate), water may be playing a dual role in both plasticizing the amorphous form and driving the equilibrium towards the hydrate form, hence prediction of recrystallization behaviour from amorphous characteristics may be confounded by the additional process of hydrate generation.

Authors+Show Affiliations

Faculty of Pharmacy, University of Coimbra, 3000-548 Coimbra, Portugal; iMed-ULisboa, Faculty of Pharmacy, University of Lisbon, 1649-003 Lisbon, Portugal; University College London School of Pharmacy, 29-39 Brunswick Square, London WC1N 1AX, UK.iMed-ULisboa, Faculty of Pharmacy, University of Lisbon, 1649-003 Lisbon, Portugal.Faculty of Pharmacy, University of Coimbra, 3000-548 Coimbra, Portugal.University College London School of Pharmacy, 29-39 Brunswick Square, London WC1N 1AX, UK.University College London School of Pharmacy, 29-39 Brunswick Square, London WC1N 1AX, UK. Electronic address: min.zhao@ucl.ac.uk.

Pub Type(s)

Journal Article
Research Support, Non-U.S. Gov't

Language

eng

PubMed ID

25592956

Citation

Pina, M Fátima, et al. "Generation of Hydrate Forms of Paroxetine HCl From the Amorphous State: an Evaluation of Thermodynamic and Experimental Predictive Approaches." International Journal of Pharmaceutics, vol. 481, no. 1-2, 2015, pp. 114-24.
Pina MF, Pinto JF, Sousa JJ, et al. Generation of hydrate forms of paroxetine HCl from the amorphous state: an evaluation of thermodynamic and experimental predictive approaches. Int J Pharm. 2015;481(1-2):114-24.
Pina, M. F., Pinto, J. F., Sousa, J. J., Craig, D. Q., & Zhao, M. (2015). Generation of hydrate forms of paroxetine HCl from the amorphous state: an evaluation of thermodynamic and experimental predictive approaches. International Journal of Pharmaceutics, 481(1-2), 114-24. https://doi.org/10.1016/j.ijpharm.2014.12.033
Pina MF, et al. Generation of Hydrate Forms of Paroxetine HCl From the Amorphous State: an Evaluation of Thermodynamic and Experimental Predictive Approaches. Int J Pharm. 2015 Mar 15;481(1-2):114-24. PubMed PMID: 25592956.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Generation of hydrate forms of paroxetine HCl from the amorphous state: an evaluation of thermodynamic and experimental predictive approaches. AU - Pina,M Fátima, AU - Pinto,João F, AU - Sousa,João J, AU - Craig,Duncan Q M, AU - Zhao,Min, Y1 - 2015/01/12/ PY - 2014/11/13/received PY - 2014/12/11/revised PY - 2014/12/13/accepted PY - 2015/1/17/entrez PY - 2015/1/17/pubmed PY - 2015/12/15/medline KW - Amorphous KW - Hydrate formation KW - Paroxetine HCl KW - Stability KW - Thermodynamic KW - Water uptake SP - 114 EP - 24 JF - International journal of pharmaceutics JO - Int J Pharm VL - 481 IS - 1-2 N2 - In this study, we evaluate the use of theoretical thermodynamic analysis of amorphous paroxetine hydrochloride (HCl) as well as experimental assessment in order to identify the most promising approach to stability and dissolution behaviour prediction, particularly in relation to stoichiometric and nonstoichiometric hydrate formation. Differential scanning calorimetry, thermogravimetric analysis, Fourier transform infrared and X-ray diffraction techniques were used. Parameters including heat capacity, configurational thermodynamic quantities, fragility and relaxation time classified amorphous paroxetine HCl as a moderate fragile glass with a considerable degree of molecular mobility. Solubility studies indicated little advantage of the amorphous form over the crystalline due to conversion to the hydrate Form I during equilibration, while the dissolution rate was higher for the amorphous form under sink conditions. A marked difference in the physical stability of amorphous paroxetine HCl was observed between dry and low humidity storage, with the system recrystallizing to the hydrate form. We conclude that, in this particular case (amorphous conversion to the hydrate), water may be playing a dual role in both plasticizing the amorphous form and driving the equilibrium towards the hydrate form, hence prediction of recrystallization behaviour from amorphous characteristics may be confounded by the additional process of hydrate generation. SN - 1873-3476 UR - https://www.unboundmedicine.com/medline/citation/25592956/Generation_of_hydrate_forms_of_paroxetine_HCl_from_the_amorphous_state:_an_evaluation_of_thermodynamic_and_experimental_predictive_approaches_ DB - PRIME DP - Unbound Medicine ER -