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Published on: August 3, 2013
Designing HPMC matrices with improved resistance to dissolved sugar
Hywel D Williams1, Robert Ward, Anna Culy
1Formulation Insights, School of Pharmacy, University of Nottingham, Nottingham NG7 2RD, UK.
Formulation excipients significantly impact drug release from hydroxypropyl methylcellulose (HPMC) matrices in high sugar environments. Careful selection of diluents and HPMC properties can create sugar-resistant drug delivery systems.
Area of Science:
- Pharmaceutical Sciences
- Materials Science
Background:
- High sugar concentrations can accelerate in vitro drug release from hydroxypropyl methylcellulose (HPMC) matrices.
- Understanding formulation variables that influence this sucrose sensitivity is crucial for designing stable drug delivery systems.
Purpose of the Study:
- To investigate how common formulation variables modulate sucrose sensitivity in HPMC matrices.
- To explore the design of HPMC formulations with enhanced resistance to sugar-induced drug release acceleration.
Main Methods:
- Investigated drug release from 30% HPMC (Methocel™ K4M) matrices with various tablet diluents (lactose:microcrystalline cellulose, dextrose, d-xylose, microcrystalline cellulose) in 0.7M sucrose at 37°C.
- Evaluated the effect of HPMC particle size (<63μm) and viscosity (K100M, K100LV) on sugar resistance.
- Designed and tested a more resistant HPMC matrix in 0.9M sucrose.
Main Results:
- Lactose:microcrystalline cellulose mixtures, dextrose, and d-xylose as diluents resulted in rapid drug release (1-4h) due to matrix swelling and erosion.
- Microcrystalline cellulose as the sole diluent provided extended release for 10 hours.
- Small particle size and high/low viscosity HPMC improved resistance to sugar-induced release.
- A specifically designed HPMC matrix achieved extended release (>16h) in 0.9M sucrose.
Conclusions:
- Internal and external sugars can combine to disrupt the diffusion barrier properties of HPMC gel layers, accelerating drug release.
- Judicious selection of excipient properties, including diluent type, particle size, and HPMC viscosity, significantly improves the tolerance of HPMC matrices to high sucrose environments.
- This knowledge enables the development of robust HPMC-based extended-release formulations suitable for high-sugar conditions.
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