Gold-decorated magnetic nanoparticles design for hyperthermia applications and as a potential platform for their surface-functionalization.
L León FélixB SanzV SebastiánTeobaldo E TorresMarcelo Henrique SousaJ A H CoaquiraM R IbarraGerardo F GoyaPublished in: Scientific reports (2019)
The integration of noble metal and magnetic nanoparticles with controlled structures that can couple various specific effects to the different nanocomposite in multifunctional nanosystems have been found interesting in the field of medicine. In this work, we show synthesis route to prepare small Au nanoparticles of sizes <d> = 3.9 ± 0.2 nm attached to Fe3O4 nanoparticle cores (<d> = 49.2 ± 3.5 nm) in aqueous medium for potential application as a nano-heater. Remarkably, the resulted Au decorated PEI-Fe3O4 (Au@PEI-Fe3O4) nanoparticles are able to retain bulk magnetic moment MS = 82-84 Am2/kgFe3O4, with the Verwey transition observed at TV = 98 K. In addition, the in vitro cytotoxicity analysis of the nanosystem microglial BV2 cells showed high viability (>97.5%) to concentrate up to 100 µg/mL in comparison to the control samples. In vitro heating experiments on microglial BV2 cells under an ac magnetic field (H0 = 23.87 kA/m; f = 571 kHz) yielded specific power absorption (SPA) values of SPA = 43 ± 3 and 49 ± 1 μW/cell for PEI-Fe3O4 and Au@PEI-Fe3O4 NPs, respectively. These similar intracellular SPA values imply that functionalization of the magnetic particles with Au did not change the heating efficiency, providing at the same time a more flexible platform for multifunctional functionalization.
Keyphrases
- reduced graphene oxide
- magnetic nanoparticles
- sensitive detection
- induced apoptosis
- lipopolysaccharide induced
- lps induced
- gold nanoparticles
- quantum dots
- cell cycle arrest
- visible light
- drug delivery
- inflammatory response
- photodynamic therapy
- molecularly imprinted
- high throughput
- multiple sclerosis
- cancer therapy
- endoplasmic reticulum stress
- high resolution
- single cell
- high frequency
- spinal cord
- neuropathic pain
- ionic liquid
- pi k akt
- bone marrow
- cell proliferation
- cell therapy
- mesenchymal stem cells
- clinical evaluation