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Since magnetic nanoparticles are attracted to a high magnetic flux density, it is possible to manipulate cells labeled with magnetic nanoparticles using magnets; this feature has been applied in tissue engineering.
The general reaction for the synthesis of magnetic nanoparticles using a green method of synthesis is described as follows.
Several techniques have been employed to obtain PEG-modified magnetic nanoparticles using different methods [12, 13, 14, 15].
D-amino acid substrate was linked to the carboxylic acid on the magnetic nanoparticles using EDC/NHS chemistry.
This work presents an approach for producing a high-coverage single monolayer of magnetic nanoparticles using "click chemistry" between complementarily functionalized nanoparticles and a flat substrate.
In previous work, we described a method to prepare magnetic nanoparticles using a chemically induced transition[15, 16, 18, 19] and Ni-Fe bioxide composite nanoparticles were prepared using this method.
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The remarkable heating effects of magnetic nanoparticles used as drug delivery structures, provide an opportunity to target tumor cells [26].
These core-shell nanoparticles were found to be up to 34 times more efficient in producing heat from incident radiofrequency waves than the single base material, for instance, iron-oxide magnetic nanoparticles used in MRI studies.
The focus of this review is on polysaccharide-coated magnetic nanoparticles used for imaging and gene delivery.
Fe2O3 magnetic nanoparticles used in MFH were reported to have a significant therapeutic effect on xenograft liver cancer in nude mice [ 3].
All magnetic nanoparticles used so far in vivo are composed of the iron oxides magnetite (Fe3O4) and maghemite (γ-Fe2O3) due to their low toxicity and their known pathways of metabolism.
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