On the thermotropic and magnetotropic phase behavior of lipid liquid crystals containing magnetic nanoparticles

The inclusion of superparamagnetic iron oxide nanoparticles (SPIONs) in lipid mesophases is a promising strategy for drug-delivery applications, combining the innate biocompatibility of lipid architectures with SPIONs' response to external magnetic fields. Moreover, the organization of SPIONs w...

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Veröffentlicht in:Nanoscale 2018-01, Vol.10 (7), p.3480-3488
Hauptverfasser: Mendozza, Marco, Montis, Costanza, Caselli, Lucrezia, Wolf, Marcell, Baglioni, Piero, Berti, Debora
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container_end_page 3488
container_issue 7
container_start_page 3480
container_title Nanoscale
container_volume 10
creator Mendozza, Marco
Montis, Costanza
Caselli, Lucrezia
Wolf, Marcell
Baglioni, Piero
Berti, Debora
description The inclusion of superparamagnetic iron oxide nanoparticles (SPIONs) in lipid mesophases is a promising strategy for drug-delivery applications, combining the innate biocompatibility of lipid architectures with SPIONs' response to external magnetic fields. Moreover, the organization of SPIONs within the lipid scaffold can lead to locally enhanced SPIONs concentration and improved magnetic response, which is key to overcome the current limitations of hyperthermic treatments. Here we present a Small-Angle X-ray Scattering (SAXS) structural investigation of the thermotropic and magnetotropic behavior of glyceryl monooleate (GMO)/water mesophases, loaded with hydrophobic SPIONs. We prove that even very low amounts of SPIONs deeply alter the phase behavior and thermotropic properties of the mesophases, promoting a cubic to hexagonal phase transition, which is similarly induced upon application of an Alternating Magnetic Field (AMF). Moreover, in the hexagonal phase SPIONs spontaneously self-assemble within the lipid scaffold into a linear supraparticle. This phase behavior is interpreted in the framework of the Helfrich's theory, which shows that SPIONs affect the mesophase both from a viscoelastic and from a structural standpoint. Finally, the dispersion of these cubic phases into stable magnetic colloidal particles, which retain their liquid crystalline internal structure, is addressed as a promising route towards magneto-responsive drug-delivery systems (DDS).
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source MEDLINE; Royal Society Of Chemistry Journals
subjects Biocompatibility
Drug Delivery Systems
Hexagonal phase
Iron oxides
Lipids
Liquid Crystals
Magnetic fields
Magnetite Nanoparticles
Mesophase
Nanoparticles
Phase transitions
Scaffolds
Scattering, Small Angle
Small angle X ray scattering
Viscoelasticity
X-Ray Diffraction
title On the thermotropic and magnetotropic phase behavior of lipid liquid crystals containing magnetic nanoparticles
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