| Literature DB >> 20502539 |
S Mukherjee1, S Ray, R S Thakur.
Abstract
Solid lipid nanoparticles are at the forefront of the rapidly developing field of nanotechnology with several potential applications in drug delivery, clinical medicine and research, as well as in other varied sciences. Due to their unique size-dependent properties, lipid nanoparticles offer the possibility to develop new therapeutics. The ability to incorporate drugs into nanocarriers offers a new prototype in drug delivery that could be used for secondary and tertiary levels of drug targeting. Hence, solid lipid nanoparticles hold great promise for reaching the goal of controlled and site specific drug delivery and hence have attracted wide attention of researchers. This review presents a broad treatment of solid lipid nanoparticles discussing their advantages, limitations and their possible remedies. The different types of nanocarriers which were based on solid lipid like solid lipid nanoparticles, nanostructured lipid carriers, lipid drug conjugates are discussed with their structural differences. Different production methods which are suitable for large scale production and applications of solid lipid nanoparticles are described. Appropriate analytical techniques for characterization of solid lipid nanoparticles like photon correlation spectroscopy, scanning electron microscopy, differential scanning calorimetry are highlighted. Aspects of solid lipid nanoparticles route of administration and their biodistribution are also incorporated. If appropriately investigated, solid lipid nanoparticles may open new vistas in therapy of complex diseases.Entities:
Keywords: PCS; Solid lipid nanoparticles (SLN); TEM; biodistribution; colloidal drug carriers; homogenization; targeting
Year: 2009 PMID: 20502539 PMCID: PMC2865805 DOI: 10.4103/0250-474X.57282
Source DB: PubMed Journal: Indian J Pharm Sci ISSN: 0250-474X Impact factor: 0.975
Fig. 1Trends in solid lipid nanoparticles research
ADVANTAGES OF SOLID LIPID NANOPARTICLES
| Advantages of solid lipid nanoparticles |
|---|
| Control and/or target drug release. |
| Improve stability of pharmaceuticals. |
| High and enhanced drug content (compared to other carriers). |
| Feasibilities of carrying both lipophilic and hydrophilic drugs. |
| Most lipids being biodegradable, SLNs have excellent biocompatibility. |
| Water based technology (avoid organic solvents). |
| Easy to scale-up and sterilize. |
| More affordable (less expensive than polymeric/surfactant based carriers). |
| Easier to validate and gain regulatory approval. |
INGREDIENTS USED IN THE PREPARATION OF NANOPARTICLES
| Name of the ingredients | Concentrations | Reference |
|---|---|---|
| Lipid | 3.33% w/v | 17 |
| Phospholipids | 0.6-1.5% | 18 |
| Glycerol | 2-4% | -- |
| Poloxamer 188 | 1.2-5% w/w | 19 |
| Soy phosphatidyl choline | 95% | -- |
| Compritol | 10% | -- |
| Cetyl palmitate | 10% w/w | 20 |
| Tego care 450 (surfactant) | 1.2% w/w | -- |
| PEG 2000 | 0.25% | -- |
| PEG 4500 | 0.5% | -- |
| Tween 85 | 0.5% | 21 |
| Ethyl oleate | 30% | -- |
| Na alginate | 70% | -- |
| Ethanol/butanol | 2% | 22 |
| Tristearin glyceride | 95% | 18 |
| PEG 400 | 5% | -- |
| Isopropyl myristate | 3.60% | -- |
| Pluronic F 68 | 40% | -- |
| Tween 80 | 50% | 21 |
METHODS OF SLN PREPARATION
| Different methods of SLN preparation | Reference |
|---|---|
| High shear homogenization: | 23-25 |
| Hot homogenization | 26,27 |
| Cold homogenization | 28 |
| Ultrasonication/high speed homogenization: | 29,30 |
| Probe ultrasonication | |
| Bath ultrasonication | |
| Solvent emulsification/evaporation | 31,32 |
| Micro emulsion based SLN preparations | 33-37 |
| SLN preparation by using supercritical fluid | 38-40 |
| Spray drying method | 41 |
| Double emulsion method | 42 |