Literature DB >> 34003656

Amorphous Salts Solid Dispersions of Celecoxib: Enhanced Biopharmaceutical Performance and Physical Stability.

Sumit Mukesh1, Prachi Joshi1, Arvind K Bansal1, Mahesh Chand Kashyap1, Sanjay K Mandal2, Vasant Sathe3, Abhay T Sangamwar1.   

Abstract

Numerous amorphous solid dispersion (ASD) formulations of celecoxib (CEL) have been attempted for enhancing the solubility, dissolution rate, and in vivo pharmacokinetics via high drug loading, polymer combination, or by surfactant addition. However, physical stability for long-term shelf life and desired in vivo pharmacokinetics remains elusive. Therefore, newer formulation strategies are always warranted to address poor aqueous solubility and oral bioavailability with extended shelf life. The present investigation elaborates a combined strategy of amorphization and salt formation for CEL, providing the benefits of enhanced solubility, dissolution rate, in vivo pharmacokinetics, and physical stability. We generated amorphous salts solid dispersion (ASSD) formulations of CEL via an in situ acid-base reaction involving counterions (Na+ and K+) and a polymer (Soluplus) using the spray-drying technique. The generated CEL-Na and CEL-K salts were homogeneously and molecularly dispersed in the matrix of Soluplus polymer. The characterization of generated ASSDs by differential scanning calorimetry revealed a much higher glass-transition temperature (Tg) than the pure amorphous CEL, confirming the salt formation of CEL in solid dispersions. The micro-Raman and proton nuclear magnetic resonance spectroscopy further confirmed the formation of salt at the -S═O position in the CEL molecules. CEL-Na-Soluplus ASSD exhibited a synergistic enhancement in the aqueous solubility (332.82-fold) and in vivo pharmacokinetics (9.83-fold enhancement in the blood plasma concentration) than the crystalline CEL. Furthermore, ASSD formulations were physically stable for nearly 1 year (352 days) in long-term stability studies at ambient conditions. Hence, we concluded that the ASSD is a promising strategy for CEL in improving the physicochemical properties and biopharmaceutical performance.

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Keywords:  amorphous salts solid dispersions; aqueous solubility; celecoxib; dissolution rate; glass-transition temperature; salt formation

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Year:  2021        PMID: 34003656     DOI: 10.1021/acs.molpharmaceut.1c00144

Source DB:  PubMed          Journal:  Mol Pharm        ISSN: 1543-8384            Impact factor:   4.939


  2 in total

1.  Combining enabling formulation strategies to generate supersaturated solutions of delamanid: In situ salt formation during amorphous solid dispersion fabrication for more robust release profiles.

Authors:  Tu Van Duong; Hanh Thuy Nguyen; Lynne S Taylor
Journal:  Eur J Pharm Biopharm       Date:  2022-04-09       Impact factor: 5.589

2.  Hydrochloride Salt of the GABAkine KRM-II-81.

Authors:  Md Yeunus Mian; Branka Divović; Dishary Sharmin; Kamal P Pandey; Lalit K Golani; V V N Phani Babu Tiruveedhula; Rok Cerne; Jodi L Smith; Xingjie Ping; Xiaoming Jin; Gregory H Imler; Jeffrey R Deschamps; Arnold Lippa; James M Cook; Miroslav M Savić; James Rowlett; Jeffrey M Witkin
Journal:  ACS Omega       Date:  2022-07-27
  2 in total

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