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Size-tunable drug-delivery capsules composed of a magnetic nanoshell.

Authors :
Fuchigami, Teruaki
Kitamoto, Yoshitaka
Namiki, Yoshihisa
Source :
Biomatter. Oct-Dec2012, Vol. 2 Issue 4, Special section p1-320. 8p.
Publication Year :
2012

Abstract

Nano-sized FePt capsules with two types of ultrathin shell were fabricated using a template method for use in a nano-scale drug delivery system. One capsule was composed of an inorganic-organic hybrid shell of a water-soluble polymer and FePt nanoparticles, and the other capsule was composed of a network of fused FePt nanoparticles. We demonstrated that FePt nanoparticles selectively accumulated on the polymer molecules adsorbed on the template silica particles, and investigated the morphologies of the particle accumulation by changing the concentration of the polymer solution with which the template particles were treated. Capsular size was reduced from 340 to less than 90 nm by changing the size of the silica template particles, and the shell thickness was controlled by changing the amount of FePt nanoparticles adsorbed on the template particles. The hybrid shell was maintained by the connection of FePt nanoparticles and polymer molecules, and the shell thickness was 10 nm at the maximum. The FePt network shell was fabricated by hydrothermal treatment of the FePt/polymer-modified silica composite particles. The FePt network shell was produced from only the FePt alloy, and the shell thickness was 3 nm. Water-soluble anti-cancer drugs could be loaded into the hollow space of FePt network capsules, and lipid-coated FePt network capsules loaded with anti-cancer drugs showed cellular toxicity. The nano-sized capsular structure and the ultrathin shell suggest applicability as a drug carrier in magnetically guided drug delivery systems. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
21592527
Volume :
2
Issue :
4
Database :
Academic Search Index
Journal :
Biomatter
Publication Type :
Academic Journal
Accession number :
83754332
Full Text :
https://doi.org/10.4161/biom.22617