Synthesis and characterization of dual modality (CT/MRI) core-shell microparticles for embolization purposes.

Aviv Hagit, Bartling Soenke, Budjan Johannes, Margel Shlomo

Department of Chemistry, Bar-Ilan University, Ramat-Gan, Israel.

Journal Article: Biomacromolecules (impact factor: 4.5). 06/2010; 11(6):1600-7. DOI: 10.1021/bm100251s

Abstract

Core P(MAOETIB-GMA) microparticles of 40-200 microm were prepared by suspension copolymerization of the iodinated monomer 2-methacryloyloxyethyl (2,3,5-triiodobenzoate), MAOETIB, with a low concentration of the monomer glycidyl methacrylate, GMA, which formed hydrophilic surfaces on the particles. Magnetic gamma-Fe(2)O(3)/P(MAOETIB-GMA) core-shell microparticles were prepared by coating the aforementioned core particles through nucleation of iron oxide nanoparticles on the surfaces of the P(MAOETIB-GMA) particles. This was followed by stepwise growth of thin iron oxide layers. The radiopacity and magnetism of these particles were demonstrated in vitro by CT and MRI. In vivo embolization capabilities of these first multimodal visible embolization particles were demonstrated in a rat's kidney tumor embolization model.

Source: PubMed

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Keywords

aforementioned core particles
 
Core P(MAOETIB-GMA)
 
CT
 
first multimodal visible embolization particles
 
formed hydrophilic surfaces
 
GMA
 
iodinated monomer 2-methacryloyloxyethyl
 
iron oxide nanoparticles
 
low concentration
 
Magnetic gamma-Fe(2)O(3)/P(MAOETIB-GMA)
 
P(MAOETIB-GMA)
 
rat's kidney tumor embolization model
 
stepwise growth
 
surfaces
 
thin iron oxide layers
 
vivo embolization capabilities