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Preparation and Characterization of Individual and Multi-drug Loaded Physically Entrapped Polymeric Micelles
Published on: August 28, 2015
Developed meloxicam loaded microparticles for colon targeted delivery: Statistical optimization, physicochemical
Syed Abdul Wasay1, Syed Umer Jan1, Muhammad Akhtar2,3
1Department of Pharmaceutics, Faculty of Pharmacy and Health Sciences, University of Balochistan, Quetta, Pakistan.
Abstract:
The study aimed to fabricate and evaluate Meloxicam (MLX) loaded Hydroxypropyl Methylcellulose (HPMC) microparticles for colon targeting because MLX is a potent analgesic used in the treatment of pain and inflammation associated with colorectal cancer (CRC). Nevertheless, its efficiency is limited by poor solubility and gastrointestinal tracts (GIT) associated side effects. Seventeen formulations of MLX loaded HPMC microparticles were fabricated by the oil-in-oil (O/O)/ emulsion solvent evaporation (ESE) technique. A 3-factor, 3-level Box Behnken (BBD) statistical design was used to estimate the combined effects of the independent variables on the dependent variables (responses), such as the percent yield (R1), the entrapment efficiency (EE) (R2), mean particle size (R3) and in vitro percentage of cumulative drug release (R4). For physicochemical characterization FTIR, XRD, DSC, and SEM analyses were performed. Biocompatibility and non-toxicity were confirmed by in-vivo acute oral toxicity determination. The percentage yield and EE were 65.75-90.71%, and 70.62-88.37%, respectively. However, the mean particle size was 62.89-284.55 μm, and the in vitro cumulative drug release percentage was 74.25-92.64% for 24 hours. FTIR analysis showed that the composition of the particles was completely compatible, while XRD analysis confirmed the crystalline nature of the pure drug and its transition into an amorphous state after formulation. DSC analysis revealed the thermal stability of the formulations. The SEM analysis showed dense spherical particles. The toxicity study in albino rabbits showed no toxicity and was found biocompatible. The histopathological evaluation showed no signs of altered patterns. Results of this study highlighted a standard colonic drug delivery system with the ability to improve patient adherence and reduce GIT drug-associated side effects in CRC treatment.
Insights
This study developed Meloxicam (MLX) loaded Hydroxypropyl Methylcellulose (HPMC) microparticles for targeted colon delivery, improving colorectal cancer treatment by enhancing drug efficacy and reducing side effects.
Area of Science:
- Pharmaceutical Sciences
- Materials Science
- Biotechnology
Background:
- Meloxicam (MLX) is a potent analgesic for colorectal cancer (CRC) pain and inflammation.
- MLX efficacy is limited by poor solubility and gastrointestinal (GIT) side effects.
- Colon-specific drug delivery aims to improve therapeutic outcomes and patient compliance.
Purpose of the Study:
- To fabricate and evaluate Meloxicam (MLX) loaded Hydroxypropyl Methylcellulose (HPMC) microparticles for colon targeting.
- To optimize MLX microparticle formulations using a Box-Behnken design (BBD).
- To assess the physicochemical, in vitro, and in vivo characteristics of the developed microparticles.
Main Methods:
- Fabrication of MLX-loaded HPMC microparticles via oil-in-oil (O/O) emulsion solvent evaporation (ESE).
- Optimization using a 3-factor, 3-level Box-Behnken design (BBD) to study yield, entrapment efficiency, particle size, and drug release.
- Characterization using FTIR, XRD, DSC, SEM, and in vivo acute oral toxicity studies in albino rabbits.
Main Results:
- Optimized formulations achieved high percentage yield (65.75-90.71%) and entrapment efficiency (70.62-88.37%).
- Microparticles exhibited controlled particle size (62.89-284.55 μm) and sustained in vitro drug release (74.25-92.64% over 24 hours).
- FTIR confirmed compatibility, XRD showed drug amorphization, DSC indicated thermal stability, and SEM revealed spherical particles. In vivo studies confirmed biocompatibility and non-toxicity.
Conclusions:
- The developed MLX-loaded HPMC microparticles are suitable for colon-specific drug delivery.
- This formulation strategy can enhance therapeutic efficacy and reduce gastrointestinal side effects in CRC treatment.
- The study highlights a promising approach for improved patient adherence and treatment outcomes in colorectal cancer management.

