Development of Sustained Release System Based on High Water-Absorbable Gel Formation Using Croscarmellose Sodium, Alkaline Excipients and HPMC (ACSH SR System); Novel Application of Croscarmellose Sodium as a Gel Former

Pharm Res. 2023 Dec;40(12):3073-3086. doi: 10.1007/s11095-023-03630-w. Epub 2023 Nov 14.

Abstract

Purpose: Croscarmellose sodium, generally used as a superdisintegrant in pharmaceutical formulations, is hydrolyzed to form the gel structure under basic pH conditions. Utilizing this property of croscarmellose sodium, we developed a novel sustained release (SR) system.

Methods: Immediate release (IR) and SR tablets containing croscarmellose sodium, alkaline excipients and/or hydroxypropyl methylcellulose (HPMC) were prepared and examined for wet strength and in vitro drug release behavior. In vivo oral drug absorption was evaluated for IR tablets, HPMC tablets and our novel SR tablets in fasted Beagle dogs.

Results: To form the gel structure even under the physiological condition, alkaline excipients were added into the formulation containing croscarmellose sodium. Furthermore, HPMC was used to make the gel structure strong enough against mechanical destructive forces. The novel alkalized croscarmellose sodium-HPMC (ACSH) SR tablet, consisting of croscarmellose sodium, alkaline excipients, and HPMC, successfully sustained the release of acetaminophen, ibuprofen, or nicardipine hydrochloride, compared with the IR tablets. The ACSH SR system provided a better release of acetaminophen than the HPMC tablet without croscarmellose sodium in the release study using a small volume of liquid, suggesting that substantial release and subsequent absorption would be expected in the distal intestinal segments after oral dosing. The in vivo oral absorption study revealed that the ACSH SR system successfully suppressed and prolonged the plasma concentrations of acetaminophen.

Conclusion: This novel ACSH SR system prepared with croscarmellose sodium, alkaline excipients, and HPMC, would be a promising SR formulation for enabling substantial drug absorption in the distal intestinal segments.

Keywords: HPMC; alkaline excipient; croscarmellose sodium; stability; sustained release.

MeSH terms

  • Acetaminophen
  • Animals
  • Carboxymethylcellulose Sodium*
  • Chemistry, Pharmaceutical
  • Delayed-Action Preparations / chemistry
  • Dogs
  • Excipients* / chemistry
  • Hypromellose Derivatives / chemistry
  • Methylcellulose / chemistry
  • Solubility
  • Tablets / chemistry
  • Water

Substances

  • Carboxymethylcellulose Sodium
  • Hypromellose Derivatives
  • Delayed-Action Preparations
  • Excipients
  • Acetaminophen
  • Water
  • Tablets
  • Methylcellulose