4.7 Article

Non-magnetic shell coating of magnetic nanoparticles as key factor of toxicity for cancer cells in a low frequency alternating magnetic field

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出版社

ELSEVIER
DOI: 10.1016/j.colsurfb.2021.111931

关键词

Magnetic nanoparticles; Low frequency alternating magnetic field; Cytotoxicity; Magneto-mechanical actuation; Core-shell; Silica shell

资金

  1. RFBR [20-0300967]
  2. Ministry of Science and Higher Education of the Russian Federation [K2-2020-029]

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This study found that silica shell coating can significantly reduce the cytotoxicity of iron oxide nanoparticles to cancer cells in a low frequency alternating magnetic field, mainly due to cell death caused by the loss of colloidal stability of nanoparticles.
This work is devoted to studying the effects of non-magnetic shell coating on nanoparticles in a low frequency alternating magnetic field (LF AMF) on tumor cells in vitro. Two types of iron oxide nanoparticles with the same magnetic core with and without silica shells were synthesized. Nanoparticles with silica shells significantly decreased the viability of PC3 cancer cells in a low frequency alternating magnetic field according to the cytotoxicity test, unlike uncoated nanoparticles. We showed that cell death results from the intracellular membrane integrity failure, and the calcium ions concentration increase with the subsequent necrosis. Transmission electron microscopy images showed that the uncoated silica nanoparticles are primarily found in an aggregated form in cells. We believe that uncoated nanoparticles lose their colloidal stability in an acidic endosomal environment after internalization into the cell due to surface etching and the formation of aggregates. As a result, they encounter high endosomal macromolecular viscosity and become unable to rotate efficiently. We assume that effective rotation of nanoparticles causes cell death. In turn, silica shell coating increases nanoparticles stability, preventing aggregation in endosomes. Thus, we propose that the colloidal stability of magnetic nanoparticles inside cells is one of the key factors for effective magneto-mechanical actuation.

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