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| Product Name | LNP-pDNA, plasmid DNA encapsulated in cationic lipid nanoparticles |
| Catalog Number | R-LNP-100-01 |
| Alias | Cationic LNP package plasmid and water-soluble Fe3O4 |
| Appearance | Light yellow or colorless powder |
| Molecular Formula | N/A |
| Solubility | Soluble in organic solvents |
| Storage | -20°C, protected from light |
| Purity | 95%+ |
| Shelf Life | 1 year |
| Shipping Condition | low temperature transport |
| Application | gene therapy |
| Specification | 100mg:Inquiry 500mg:Inquiry 1g: Inquiry |
| Description | Cationic lipid nanoparticles (LNP) can efficiently encapsulate negatively charged plasmids through electrostatic interaction. LNPs are typically composed of cationic lipids, neutral helper lipids, cholesterol, and pegylated lipids. During preparation, the aqueous phase containing the plasmid is rapidly mixed with the organic phase in which the lipid is dissolved. The cationic lipid is protonated and positively charged, and is electrostatically combined with the phosphate backbone of the plasmid. The lipid components self-assemble around the plasmid into a nanostructure through hydrophobic and van der Waals forces. It can effectively protect plasmids from nuclease degradation, and can also use endocytosis to improve the efficiency of plasmids entering cells. It has great application potential in fields such as gene treatment and vaccine research and development. Water-soluble Fe₃O₄ nanoparticles are magnetic iron oxide nanomaterials. Through special preparation processes such as co-precipitation, hydrothermal, ligand exchange or surface modification (such as the introduction of carboxyl groups, sulfonic acid groups, etc.), it can be stably dispersed in water and is not prone to aggregation and precipitation. It has superparamagnetic properties and is quickly magnetized under the action of an external magnetic field. The magnetism disappears after the magnetic field is removed, which facilitates rapid separation and resuspension. It has a small size and a large specific surface area. The surface can bind biomolecules and impart specific functions. It is widely used in biomedical fields, such as magnetic resonance imaging, targeted drug delivery, cell separation, etc. |