We validated here the applicability to hyperthermia treatment of magnetic nanocapsules prepared by the sequential layer-by-layer adsorption of polyelectrolytes and magnetic, Fe3O4 nanoparticles. For the shell preparation around a nanodroplet liquid core, biocompatible polyelectrolytes were used: poly L-lysine as the polycation and poly glutamic acid as the polyanion. The hyperthermia effect was-demonstrated by applying the radio frequency (rf) magnetic field with maximum fields H up to 0.025 T and frequencies up to, 430-kHz; we found sizable heating effects, with a heating rate up to 0.46 degrees C/min. We also found effects of irradiation on capsules' morphology that indicated their disruption, thus suggesting their potential use as nanocarriers of drugs that can be locally released on demand. Therefore, these magnetically responsive nanocapsules could be a promising platform for multifunctional biomedical applications such as the controlled release of pharmaceuticals in combination-with hyperthermia treatment.

Hybrid Polyelectrolyte/Fe3O4 Nanocapsules for Hyperthermia Applications

Albertini F;
2016

Abstract

We validated here the applicability to hyperthermia treatment of magnetic nanocapsules prepared by the sequential layer-by-layer adsorption of polyelectrolytes and magnetic, Fe3O4 nanoparticles. For the shell preparation around a nanodroplet liquid core, biocompatible polyelectrolytes were used: poly L-lysine as the polycation and poly glutamic acid as the polyanion. The hyperthermia effect was-demonstrated by applying the radio frequency (rf) magnetic field with maximum fields H up to 0.025 T and frequencies up to, 430-kHz; we found sizable heating effects, with a heating rate up to 0.46 degrees C/min. We also found effects of irradiation on capsules' morphology that indicated their disruption, thus suggesting their potential use as nanocarriers of drugs that can be locally released on demand. Therefore, these magnetically responsive nanocapsules could be a promising platform for multifunctional biomedical applications such as the controlled release of pharmaceuticals in combination-with hyperthermia treatment.
2016
Istituto dei Materiali per l'Elettronica ed il Magnetismo - IMEM
nanocapsules
hyperthermia
magnetic nanoparticles
biomedical application
drug delivery
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/375154
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