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Updated: Jul 25, 2025

Self-Nanoemulsification of Healthy Oils to Enhance the Solubility of Lipophilic Drugs
Published on: July 27, 2022
Formulation and in vitro evaluation of meloxicam as a self-microemulsifying drug delivery system
Saja Abdulkareem Muhammed1, Khalid Kadhem Al-Kinani1
1Department of Pharmaceutics, College of Pharmacy, University of Baghdad, Baghdad, Baghdad Governorate, Iraq.
Abstract:
Background: The nonsteroidal anti-inflammatory medication meloxicam (MLX) belongs to the oxicam family and is used to reduce inflammation and pain. The aim of this study was to improve MLX's dispersibility and stability by producing it as a liquid self-microemulsifying drug delivery system since it is practically insoluble in water. Methods: Five different formulations were made by adjusting the amounts of propylene glycol, Transcutol P, Tween 80, and oleic acid oil and establishing a pseudo-ternary diagram in ratios of 1:1, 1:2, 1:3, 1:4, and 3:4, respectively. All of the prepared formulations were tested for a variety of properties, including thermodynamic stability, polydispersity index, particle size distributions, dilution resistance, drug contents, dispersibility, in vitro solubility of the drug, and emulsification time. Results: F5 was chosen as the optimal MLX liquid self-microemulsion due to its higher drug content (99.8%), greater in vitro release (100% at 40 min), smaller droplet size (63 nm), lower polydispersity index (PDI) value (0.3), and higher stability (a zeta potential of -81 mV). Conclusions: According to the data provided here, the self-microemulsifying drug delivery system is the most practical method for improving the dispersibility and stability of MLX.
Insights
This study developed a liquid self-microemulsifying drug delivery system to enhance meloxicam (MLX) dispersibility and stability. The optimized formulation demonstrated superior drug release and stability, offering a practical solution for MLX delivery.
Area of Science:
- Pharmaceutical Sciences
- Drug Delivery Systems
- Nanotechnology
Background:
- Meloxicam (MLX), an oxicam NSAID, exhibits poor water solubility, limiting its therapeutic efficacy.
- Improving the dispersibility and stability of poorly soluble drugs like MLX is crucial for effective drug delivery.
- Liquid self-microemulsifying drug delivery systems (SMEDDS) offer a promising approach to enhance the solubility and bioavailability of hydrophobic drugs.
Purpose of the Study:
- To formulate and characterize a liquid self-microemulsifying drug delivery system (SMEDDS) for meloxicam (MLX).
- To enhance the dispersibility and stability of meloxicam by utilizing a novel SMEDDS formulation.
- To evaluate the physicochemical properties and in vitro performance of the optimized MLX-loaded SMEDDS.
Main Methods:
- Development of five different liquid SMEDDS formulations by varying concentrations of propylene glycol, Transcutol P, Tween 80, and oleic acid.
- Construction of a pseudo-ternary phase diagram to identify the microemulsion region.
- Evaluation of formulations for thermodynamic stability, droplet size, polydispersity index (PDI), zeta potential, drug content, dispersibility, and in vitro drug release.
Main Results:
- The optimal formulation (F5) exhibited high drug content (99.8%) and excellent in vitro release (100% within 40 min).
- F5 demonstrated a small droplet size (63 nm), low PDI (0.3), and high stability, indicated by a zeta potential of -81 mV.
- The developed SMEDDS formulation showed good thermodynamic stability and resistance to dilution.
Conclusions:
- Liquid self-microemulsifying drug delivery systems are highly effective for improving the dispersibility and stability of meloxicam.
- The optimized SMEDDS formulation provides a viable and practical approach for enhancing the delivery of poorly water-soluble drugs like MLX.
- This study highlights the potential of SMEDDS to overcome solubility challenges and improve the therapeutic outcomes of existing medications.
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