Cocrystallization of gliclazide with improved physicochemical properties

Abstract Background Cocrystallization is one of the crystal engineering strategies used to alter the physicochemical properties of drugs that are poorly water-soluble. Gliclazide (GLZ), an antidiabetic drug, belongs to Biopharmaceutical Classification System class-II (low solubility and high permeab...

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Main Authors: Shivarani Eesam, Jaswanth S. Bhandaru, Raghuram Rao Akkinepally, Ravi Kumar Bobbala
Format: Article
Language:English
Published: SpringerOpen 2021-06-01
Series:Future Journal of Pharmaceutical Sciences
Subjects:
Online Access:https://doi.org/10.1186/s43094-021-00261-z
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spelling doaj-4d928a24647545e39d9f6e5ea200c4b52021-06-27T11:42:37ZengSpringerOpenFuture Journal of Pharmaceutical Sciences2314-72532021-06-017111310.1186/s43094-021-00261-zCocrystallization of gliclazide with improved physicochemical propertiesShivarani Eesam0Jaswanth S. Bhandaru1Raghuram Rao Akkinepally2Ravi Kumar Bobbala3Department of Medicinal Chemistry, University College of Pharmaceutical Sciences, Kakatiya UniversityPiramal Pharma LimitedDepartment of Medicinal Chemistry, University College of Pharmaceutical Sciences, Kakatiya UniversityDepartment of Medicinal Chemistry, University College of Pharmaceutical Sciences, Kakatiya UniversityAbstract Background Cocrystallization is one of the crystal engineering strategies used to alter the physicochemical properties of drugs that are poorly water-soluble. Gliclazide (GLZ), an antidiabetic drug, belongs to Biopharmaceutical Classification System class-II (low solubility and high permeability) and has low bioavailability, resulting in poor therapeutic effects in patients. Therefore, to impart better solubility and bioavailability of GLZ, the study was carried out by preparing GLZ cocrystals using liquid-assisted grinding method with three coformers [3,5-dinitrosalicylic acid (DNS), 2,6-pyridine dicarboxylic acid (PDA), and L-proline (LPN)], and these were characterized using Differential Scanning Colorimetry (DSC), Powder X-ray diffraction (PXRD), Fourier Transform Infra-red spectroscopy (FTIR), and Raman spectral studies. Further, Scanning electron microscopy (SEM) analysis, accelerated stability, solubility, in vitro dissolution studies, and in vivo pharmacokinetic studies were performed in male Wistar rats. Results DSC and PXRD analysis confirmed the formation of the GLZ cocrystals. Hydrogen bonding between pure GLZ and its coformers was demonstrated based on FTIR and Raman analysis. SEM data showed morphological images for GLZ cocrystals differed from those of pure GLZ. In comparison with pure GLZ, these GLZ cocrystals have greatly improved solubility, in vitro dissolution, and in vivo profiles. Among the three, GLZ–DNS cocrystals outperformed the pure drug in terms of solubility (6.3 times), degradation (1.5 times), and relative bioavailability (1.8 times). Conclusion Hence, cocrystallization of GLZ leads to improved physicochemical properties of poorly soluble drug gliclazide.https://doi.org/10.1186/s43094-021-00261-zGliclazideCocrystallizationSolubilityIn vitro dissolutionBioavailability
collection DOAJ
language English
format Article
sources DOAJ
author Shivarani Eesam
Jaswanth S. Bhandaru
Raghuram Rao Akkinepally
Ravi Kumar Bobbala
spellingShingle Shivarani Eesam
Jaswanth S. Bhandaru
Raghuram Rao Akkinepally
Ravi Kumar Bobbala
Cocrystallization of gliclazide with improved physicochemical properties
Future Journal of Pharmaceutical Sciences
Gliclazide
Cocrystallization
Solubility
In vitro dissolution
Bioavailability
author_facet Shivarani Eesam
Jaswanth S. Bhandaru
Raghuram Rao Akkinepally
Ravi Kumar Bobbala
author_sort Shivarani Eesam
title Cocrystallization of gliclazide with improved physicochemical properties
title_short Cocrystallization of gliclazide with improved physicochemical properties
title_full Cocrystallization of gliclazide with improved physicochemical properties
title_fullStr Cocrystallization of gliclazide with improved physicochemical properties
title_full_unstemmed Cocrystallization of gliclazide with improved physicochemical properties
title_sort cocrystallization of gliclazide with improved physicochemical properties
publisher SpringerOpen
series Future Journal of Pharmaceutical Sciences
issn 2314-7253
publishDate 2021-06-01
description Abstract Background Cocrystallization is one of the crystal engineering strategies used to alter the physicochemical properties of drugs that are poorly water-soluble. Gliclazide (GLZ), an antidiabetic drug, belongs to Biopharmaceutical Classification System class-II (low solubility and high permeability) and has low bioavailability, resulting in poor therapeutic effects in patients. Therefore, to impart better solubility and bioavailability of GLZ, the study was carried out by preparing GLZ cocrystals using liquid-assisted grinding method with three coformers [3,5-dinitrosalicylic acid (DNS), 2,6-pyridine dicarboxylic acid (PDA), and L-proline (LPN)], and these were characterized using Differential Scanning Colorimetry (DSC), Powder X-ray diffraction (PXRD), Fourier Transform Infra-red spectroscopy (FTIR), and Raman spectral studies. Further, Scanning electron microscopy (SEM) analysis, accelerated stability, solubility, in vitro dissolution studies, and in vivo pharmacokinetic studies were performed in male Wistar rats. Results DSC and PXRD analysis confirmed the formation of the GLZ cocrystals. Hydrogen bonding between pure GLZ and its coformers was demonstrated based on FTIR and Raman analysis. SEM data showed morphological images for GLZ cocrystals differed from those of pure GLZ. In comparison with pure GLZ, these GLZ cocrystals have greatly improved solubility, in vitro dissolution, and in vivo profiles. Among the three, GLZ–DNS cocrystals outperformed the pure drug in terms of solubility (6.3 times), degradation (1.5 times), and relative bioavailability (1.8 times). Conclusion Hence, cocrystallization of GLZ leads to improved physicochemical properties of poorly soluble drug gliclazide.
topic Gliclazide
Cocrystallization
Solubility
In vitro dissolution
Bioavailability
url https://doi.org/10.1186/s43094-021-00261-z
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