4.6 Article

Surface Study of Fe3O4 Nanoparticles Functionalized With Biocompatible Adsorbed Molecules

Journal

FRONTIERS IN CHEMISTRY
Volume 7, Issue -, Pages -

Publisher

FRONTIERS MEDIA SA
DOI: 10.3389/fchem.2019.00642

Keywords

ferrimagnetic magnetite (Fe3O4) magnetic nanoparticles; biocompatible acid functionalization; DLS; FTIR-S; TGA/DSC; XPS; REELS; HeLa cells

Funding

  1. Horizon 2020 MSCA-COFUND [711859]
  2. Ministry of Education, Youth and Sports of the Czech Republic [LM2015088]
  3. European Regional Development Fund
  4. Polish Academy of Sciences
  5. Hungarian Academy of Sciences
  6. Academy of Sciences
  7. Academy of Sciences of the Czech Republic
  8. [3549/H2020/COFUND/2016/2]
  9. [GINOP-2.2.1-15-2016-00012]

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Surfaces of iron oxide of ferrimagnetic magnetite (Fe3O4) nanoparticles (MNPs) prepared by Massart's method and their functionalized form (f-MNPs) with succinic acid, L-arginine, oxalic acid, citric acid, and glutamic acid were studied by dynamic light scattering (DLS), Fourier transform infrared spectroscopy (FTIR-S), UV-vis, thermogravimetric analysis (TGA)/differential scanning calorimetry (DSC), X-ray photoelectron spectroscopy (XPS), and reflection electron energy loss spectroscopy (REELS). The XPS analysis of elements and their chemical states at the surface of MNPs and f-MNPs revealed differences in chemical bonding of atoms, content of carbon-oxygen groups, iron oxide forms, iron oxide magnetic properties, adsorbed molecules, surface coverage, and overlayer thickness, whereas the Auger parameters (derived from XPS and Auger spectra) and elastic and inelastic scattering probabilities of electrons on atoms and valence band electrons (derived from REELS spectra) indicated modification of surface charge redistribution, electronic, and optical properties. These modified properties of f-MNPs influenced their biological properties. The surfaces biocompatible for L929 cells showed various cytotoxicity for HeLa cells (10.8-5.3% of cell death), the highest for MNPs functionalized with oxalic acid. The samples exhibiting the largest efficiency possessed smaller surface coverage and thickness of adsorbed molecules layers, the highest content of oxygen and carbon-oxygen functionalizing groups, the highest ratio of lattice O2- and OH- to C sp(2) hybridizations on MNP surface, the highest ratio of adsorbed O- and OH- to C sp(2) hybridizations on adsorbed molecule layers, the closest electronic and optical properties to Fe3O4, and the lowest degree of admolecule polymerization. This high cytotoxicity was attributed to interaction of cells with a surface, where increased content of oxygen groups, adsorbed O-, and OH(-)may play the role of additional adsorption and catalytic sites and a large content of adsorbedmolecule layers of carboxylic groups facilitating Fenton reaction kinetics leading to cell damage.

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