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Preparation and In Vitro Characterization of Magnetized miR-modified Endothelial Cells
Published on: May 2, 2017
Characterization of magnetic viral complexes for targeted delivery in oncology
Isabella Almstätter1, Olga Mykhaylyk2, Marcus Settles1
11. Department of Diagnostic and Interventional Radiology, Klinikum rechts der Isar der Technischen Universität München, Munich, Germany;
Abstract:
Oncolytic viruses are promising new agents in cancer therapy. Success of tumor lysis is often hampered by low intra-tumoral titers due to a strong anti-viral host immune response and insufficient tumor targeting. Previous work on the co-assembly of oncolytic virus particles (VPs) with magnetic nanoparticles (MNPs) was shown to provide shielding from inactivating immune response and improve targeting by external field gradients. In addition, MNPs are detected by magnet resonance imaging (MRI) enabling non-invasive therapy monitoring. In this study two selected core-shell type iron oxide MNPs were assembled with adenovirus (Ad) or vesicular stomatitis virus (VSV). The selected MNPs were characterized by high r2 and r2(*) relaxivities and thus could be quantified non-invasively by 1.5 and 3.0 tesla MRI with a detection limit below 0.001 mM iron in tissue-mimicking phantoms. Assembly and cell internalization of MNP-VP complexes resulted in 81 - 97 % reduction of r2 and 35 - 82 % increase of r2(*) compared to free MNPs. The relaxivity changes could be attributed to the clusterization of particles and complexes shown by transmission electron microscopy (TEM). In a proof-of-principle study the non-invasive detection of MNP-VPs by MRI was shown in vivo in an orthotopic rat hepatocellular carcinoma model. In conclusion, MNP assembly and compartmentalization have a major impact on relaxivities, therefore calibration measurements are required for the correct quantification in biodistribution studies. Furthermore, our study provides first evidence of the in vivo applicability of selected MNP-VPs in cancer therapy.
Insights
Magnetic nanoparticles (MNPs) were assembled with oncolytic viruses to improve cancer therapy. This MNP-VP assembly enables non-invasive MRI monitoring and enhances virus delivery, showing promise for in vivo cancer treatment.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Oncolytic viruses show promise for cancer therapy but face challenges with immune response and tumor targeting.
- Magnetic nanoparticles (MNPs) can shield viruses and improve targeting via external fields.
- MNPs offer non-invasive monitoring capabilities through magnetic resonance imaging (MRI).
Purpose of the Study:
- To investigate the co-assembly of iron oxide MNPs with adenovirus (Ad) and vesicular stomatitis virus (VSV).
- To evaluate the impact of MNP-VP assembly on MRI relaxivity for non-invasive quantification.
- To demonstrate the in vivo applicability of MNP-VPs in a cancer model.
Main Methods:
- Core-shell iron oxide MNPs were assembled with Ad and VSV.
- MNP-VP relaxivity was characterized using 1.5 and 3.0 tesla MRI.
- Complex formation and clustering were analyzed using transmission electron microscopy (TEM).
- In vivo proof-of-principle study in an orthotopic rat hepatocellular carcinoma model.
Main Results:
- Assembled MNP-VP complexes showed significant changes in r2 and r2(*) relaxivity.
- MRI detection limit for MNPs in tissue-mimicking phantoms was below 0.001 mM iron.
- TEM confirmed particle clusterization in MNP-VP complexes.
- Non-invasive in vivo detection of MNP-VPs was achieved in a rat liver cancer model.
Conclusions:
- MNP assembly and compartmentalization significantly influence relaxivity, necessitating calibration for biodistribution studies.
- The study provides initial evidence for the in vivo application of MNP-VPs in cancer therapy.
- This approach enhances oncolytic virus delivery and allows for non-invasive therapy monitoring.
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