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Solubility of Hydrophobic Compounds in Aqueous Solution Using Combinations of Self-assembling Peptide and Amino Acid
Published on: September 20, 2017
Self-assembled polypeptide nanoparticles for intracellular irinotecan delivery.
N N Zashikhina1, M V Volokitina1, V A Korzhikov-Vlakh2
1Institute of Macromolecular Compounds, Russian Academy of Sciences, Bolshoy pr. 31, 199004 St. Petersburg, Russia.
Poly(l-lysine)-b-poly(l-leucine) polymersomes were developed as drug delivery systems. These nanoparticles show low cytotoxicity and effectively deliver irinotecan for potential colorectal cancer treatment.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Drug Delivery
Background:
- Development of novel nanocarriers for targeted drug delivery is crucial for improving therapeutic efficacy and reducing side effects.
- Polymersomes offer a versatile platform for encapsulating various therapeutic agents due to their tunable properties and biocompatibility.
Purpose of the Study:
- To synthesize and characterize poly(l-lysine)-b-poly(l-leucine) (PLys-b-PLeu) polymersomes for drug delivery applications.
- To evaluate the physicochemical properties, in vitro biodegradation, cellular uptake, cytotoxicity, and drug-loading/release characteristics of the developed polymersomes.
- To assess the in vitro anti-tumoral activity of irinotecan-loaded polymersomes against colorectal cancer cells.
Main Methods:
- Self-assembly of PLys-b-PLeu polymersomes with pH-dependent size control.
- In vitro biodegradation studies using enzymatic systems and human blood plasma.
- Cellular uptake studies using fluorescently labeled nanoparticles.
- Cytotoxicity assays on HEK, NIH-3T3, and A549 cell lines.
- Irinotecan encapsulation via pH gradient method and drug release kinetics analysis.
- In vitro anti-tumoral activity assessment on Caco-2 cells.
Main Results:
- PLys-b-PLeu polymersomes exhibited pH-dependent self-assembly, with sizes ranging from 180 to 650 nm.
- Nanoparticles demonstrated good biocompatibility, with no observed cytotoxicity up to 2 mg/mL.
- Successful encapsulation of irinotecan was achieved, with stable dispersion and controlled release profiles.
- Maximal drug loading capacity was determined to be 320±55 μg/mg of polymersomes.
- Irinotecan-loaded polymersomes showed significant in vitro anti-tumoral activity against Caco-2 cells.
Conclusions:
- PLys-b-PLeu polymersomes are promising nanocarriers for irinotecan delivery in colorectal cancer therapy.
- The developed polymersomes exhibit favorable characteristics including biocompatibility, controlled drug release, and potent anti-cancer activity.
- Further in vivo studies are warranted to explore the therapeutic potential of these nanocarriers.
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