Influence of type and level of water-soluble additives on drug release and surface and mechanical properties of Surelease films

Pharm Dev Technol. 2002 Nov;7(4):421-32. doi: 10.1081/pdt-120015044.

Abstract

Ethylcellulose in combination with water-soluble additives has been used in the development of microporous membrane-coated dosage forms. In the present study, application of three types of water-soluble additives, namely polyethylene glycols (PEG 400, 3350, and 8000), maltodextrins (Maltrin M150, M100, and M040 in the order of lower to higher average polymer size and molecular weight; dextrose equivalence 16.9, 11.1, and 4.8, respectively), and xylitol, as porosity modifiers in the films of a commercially available aqueous ethylcellulose dispersion (Surelease/E-7-7060 plasticized with glyceryl tricaprylate/caprate) was investigated. The effect of type and level of these additives on drug release characteristics and surface and mechanical properties of the polymeric films was studied. Each additive was incorporated at 20 and 30% levels in the polymeric dispersion based on its solids content. Ibuprofen tablets were coated using the polymeric dispersion with and without additive at 3% w/w coat level in a fluid-bed equipment. The coated tablets were evaluated for their drug release rate, coat reflectivity (gloss), Brinell hardness, and elastic modulus. Differential scanning calorimetric analysis of the films was performed to determine the physico-chemical changes in the applied film-coats. The rate of drug release, hence film porosity, was observed to be dependent on the type and level of the additive added. The molecular weight of the additive and its concentration in the polymeric dispersion had significant influence on the rate of drug release, hardness, and elasticity of the film-coats.

MeSH terms

  • Cellulose / analogs & derivatives*
  • Cellulose / chemistry*
  • Cellulose / pharmacokinetics*
  • Mechanics
  • Solubility
  • Surface Properties
  • Tablets, Enteric-Coated
  • Water / chemistry*

Substances

  • Tablets, Enteric-Coated
  • Water
  • ethyl cellulose
  • Cellulose