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PLGA Nanoparticles Formed by Single- or Double-emulsion with Vitamin E-TPGS
Published on: December 27, 2013
Improved delivery of angiogenesis inhibitors from PLGA:poloxamer blend micro- and nanoparticles
Ivana d'Angelo1, Yolanda Parajó, Anikó Horváth
1Department of Pharmaceutical and Toxicological Chemistry, University of Naples Federico II, Naples, Italy.
Abstract:
Clinical studies have demonstrated the efficacy of new strategies in cancer therapy, such as chemotherapy and radiotherapy, associated to the administration of tumour vascularization inhibitors. A critical limitation for the clinical application of angiogenesis inhibitors relies in their instability in biological environment and high-dose requirements. This work has attempted to overcome this limitation by designing an adequate delivery vehicle consisting of PLGA:poloxamer blend micro- and nanoparticles. The potential of this delivery system was investigated for a new synthetic angiogenesis inhibitor named polyaminoacid JS-2892b. PLGA:poloxamer (ratio 10 : 1) blend microparticles were prepared by the oil-in-oil emulsion technique, while PLGA:poloxamer (ratio 1 : 1) blend nanoparticles were obtained by a modified solvent diffusion technique. The results showed that, by adjusting the formulation conditions, it was possible to efficiently encapsulate the polyaminoacid JS-2892b within PLGA:poloxamer micro- (particle size of 20 microm and encapsulation efficiency higher than 90%) and nanoparticles (particle size of less than 280 nm and encapsulation efficiency of 52%). In addition, the delivery of the polyaminoacid JS-2892b from the particles could be controlled, without altering its stability, for extended periods of time (from a few days to over a month). The release of the encapsulated compound was significantly affected by the particle size and the way the drug is dispersed into the polymeric matrix. Therefore, this study provides information about the formulation conditions and potential of biodegradable particles for the controlled release of polyaminoacid JS-2892b.
Insights
Biodegradable PLGA:poloxamer micro- and nanoparticles were developed to deliver the angiogenesis inhibitor polyaminoacid JS-2892b. This system improves drug stability and allows controlled release for enhanced cancer therapy.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Pharmacology
Background:
- Angiogenesis inhibitors are crucial in cancer therapy but face limitations like instability and high dosage requirements.
- Developing effective drug delivery systems is essential to overcome these challenges in clinical applications.
Purpose of the Study:
- To design and evaluate PLGA:poloxamer blend micro- and nanoparticles as a delivery vehicle for the synthetic angiogenesis inhibitor polyaminoacid JS-2892b.
- To investigate the encapsulation efficiency, particle characteristics, and controlled release of polyaminoacid JS-2892b from these biodegradable particles.
Main Methods:
- Microparticles (PLGA:poloxamer 10:1) prepared via oil-in-oil emulsion.
- Nanoparticles (PLGA:poloxamer 1:1) prepared via modified solvent diffusion.
- Characterization of particle size, encapsulation efficiency, and in vitro drug release profiles.
Main Results:
- Efficient encapsulation of polyaminoacid JS-2892b achieved: >90% in microparticles (20 µm) and 52% in nanoparticles (<280 nm).
- Controlled release of the drug over extended periods (days to over a month) without compromising stability.
- Drug release kinetics were influenced by particle size and drug dispersion within the polymeric matrix.
Conclusions:
- PLGA:poloxamer blend particles offer a promising biodegradable system for the controlled delivery of polyaminoacid JS-2892b.
- Formulation optimization is key to achieving desired particle characteristics and drug release profiles for cancer therapy.
- This delivery system addresses the instability and high-dose limitations of angiogenesis inhibitors.
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