4.7 Article

Magnetic liposome design for drug release systems responsive to super-low frequency alternating current magnetic field (AC MF)

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 552, Issue -, Pages 689-700

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2019.05.071

Keywords

Magnetic liposomes; Lipid composition; Drug release; SUPER-low frequency AC MF

Funding

  1. National Cancer Institute (NCI), Alliance for Nanotechnology in Cancer (Carolina Center of Cancer Nanotechnology Excellence) [U54CA198999]
  2. NCI [1R21CA220148]
  3. Eshelman Institute for Innovation (tier 2 grant)
  4. Russian Foundation for Basic Research [17-54-33027, 18-29-09154]
  5. Mescal S. Ferguson endowed professorship
  6. Lomonosov Moscow State University Development Program [PNR 5.13]

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Hypothesis: Magnetic liposomes are shown to release the entrapped dye once modulated by low frequency AC MF. The mechanism and effectiveness of MF application should depend on lipid composition, magnetic nanoparticles (MNPs) properties, temperature and field parameters. Experiments: The study was performed using liposomes of various lipid composition and embedded hydrophobic MNPs. The liposomes structural changes were studied by the transmission electron microscopy (TEM) and attenuated total reflection Fourier transform infrared (ATR-FTIR) spectroscopy and the leakage was monitored by the fluorescent dye release. Findings: Magnetic liposomes exposure to the AC MF resulted in the clustering of the MNPs in the membranes and disruption of the lipid packaging. Addition of cholesterol diminished the dye release from the saturated lipid-based liposomes. Replacement of the saturated lipid for unsaturated one also decreased the dye release. The dye release depended on the strength, but not the frequency of the field. Thus, the oscillating motion of MNPs in AC MF ruptures the gel phase membranes of saturated lipids. As the temperature increases the disruption also increases. In the liquid crystalline membranes formed by unsaturated lipids the deformations and defects created by mechanical motion of the MNPs are more likely to heal and results in decreased release. (C) 2019 Elsevier Inc. All rights reserved.

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