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Nanostructured ultra-thin patches for ultrasound-modulated delivery of anti-restenotic drug
- Source :
- International Journal of Nanomedicine, Vol 2016, Iss Issue 1, Pp 69-92 (2015), International journal of nanomedicine 11 (2016): 69–92. doi:10.2147/IJN.S92031, info:cnr-pdr/source/autori:Vannozzi L.; Ricotti L.; Filippeschi C.; Sartini S.; Coviello V.; Piazza V.; Pingue P.; La Motta C.; Dario P.; Menciassi A./titolo:Nanostructured ultra-thin patches for ultrasound-modulated delivery of anti-restenotic drug/doi:10.2147%2FIJN.S92031/rivista:International journal of nanomedicine/anno:2016/pagina_da:69/pagina_a:92/intervallo_pagine:69–92/volume:11, International Journal of Nanomedicine
- Publication Year :
- 2015
- Publisher :
- Dove Medical Press, 2015.
-
Abstract
- This work aims to demonstrate the possibility to fabricate ultra-thin polymeric films loaded with an anti-restenotic drug and capable of tunable drug release kinetics for the local treatment of restenosis. Vascular nanopatches are composed of a poly(lactic acid) supporting membrane (thickness: ~250 nm) on which 20 polyelectrolyte bilayers (overall thickness: ~70 nm) are alternatively deposited. The anti-restenotic drug is embedded in the middle of the polyelectrolyte structure, and released by diffusion mechanisms. Nanofilm fabrication procedure and detailed morphological characterization are reported here. Barium titanate nanoparticles (showing piezoelectric properties) are included in the polymeric support and their role is investigated in terms of influence on nanofilm morphology, drug release kinetics, and cell response. Results show an efficient drug release from the polyelectrolyte structure in phosphate-buffered saline, and a clear antiproliferative effect on human smooth muscle cells, which are responsible for restenosis. In addition, preliminary evidences of ultrasound-mediated modulation of drug release kinetics are reported, thus evaluating the influence of barium titanate nanoparticles on the release mechanism. Such data were integrated with quantitative piezoelectric and thermal measurements. These results open new avenues for a fine control of local therapies based on smart responsive materials.<br />Video abstract
- Subjects :
- Medicine (General)
Polymers
Pyridines
micro/nanotherapeutic systems
Barium Compounds
Pharmaceutical Science
Nanoparticle
Muscle, Smooth, Vascular
chemistry.chemical_compound
Drug Delivery Systems
International Journal of Nanomedicine
Drug Discovery
Barium titanate nanoparticles
Drug delivery
Layer-by-layer polyelectrolytes
Micro/nanotherapeutic systems
Restenosis
Thin films
Ultrasound
Biophysics
Bioengineering
Biomaterials
Organic Chemistry
Drug Discovery3003 Pharmaceutical Science
Ultrasonics
Cells, Cultured
Original Research
barium titanate nanoparticles
drug delivery
layer-by-layer polyelectrolytes
restenosis
thin films
ultrasound
chemistry.chemical_classification
Titanium
Drug Carriers
micro/nano therapeutic systems
General Medicine
Polymer
Polyelectrolyte
Membrane
Drug carrier
Materials science
Polyesters
Nanotechnology
Pyrimidinones
Coronary Restenosis
R5-920
Cell Adhesion
Humans
Lactic Acid
Cardiovascular Agents
Nanostructures
chemistry
Cardiovascular agent
Barium titanate
Nanoparticles
Subjects
Details
- Language :
- English
- ISSN :
- 11782013
- Volume :
- 2016
- Database :
- OpenAIRE
- Journal :
- International Journal of Nanomedicine
- Accession number :
- edsair.doi.dedup.....ecadaf59ea7452e0e3e12e522e68d3b7
- Full Text :
- https://doi.org/10.2147/IJN.S92031