2 research outputs found
Combining Magnetic Hyperthermia and Photodynamic Therapy for Tumor Ablation with Photoresponsive Magnetic Liposomes
The ongoing nanotech revolution has the potential to transform diagnostic and therapeutic methods. Stimuli-triggered nanotherapies based on remotely activated agents have become attractive alternatives to conventional chemotherapy. Herein, we designed an optimized smart nanoplatform based on dually loaded hybrid liposomes to achieve enhanced tumor therapy. The aqueous core was highly loaded with iron oxide nanoparticles, while the lipid bilayer was supplied with a photosensitizer payload. The double cargo translated into double functionality: generation of singlet oxygen under laser excitation and heat production under alternating magnetic field stimulation, coupling photodynamic therapy (PDT) to magnetic hyperthermia (MHT). These liposomes address both therapeutic agents within tumor cells, and the combined PDT/MHT therapy resulted in complete cancer cell death <i>in vitro</i> while total solid-tumor ablation was achieved in an <i>in vivo</i> rodent model
Ultra Magnetic Liposomes for MR Imaging, Targeting, and Hyperthermia
Magnetic liposomes offer opportunities as theranostic
systems.
The prerequisite for efficient imaging, tissue targeting or hyperthermia
is high magnetic load of these vesicles. Here we describe the preparation
of Ultra Magnetic Liposomes (UMLs), which may encapsulate iron oxide
nanoparticles in a volume fraction of up to 30%. This remarkable magnetic
charge provides UMLs with high magnetic mobilities, MRI relaxivities,
and heating capacities for magnetic hyperthermia. Moreover, these
UMLs are rapidly and efficiently internalized by cultured tumor cells
and, when they are administered to mice, they can be vectorized to
tumors by an external magnet