Publication: Viability, Differentiation Capacity, and Detectability of Super-Paramagnetic Iron Oxide-Labeled Muscle Precursor Cells for Magnetic-Resonance Imaging
Viability, Differentiation Capacity, and Detectability of Super-Paramagnetic Iron Oxide-Labeled Muscle Precursor Cells for Magnetic-Resonance Imaging
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Azzabi, F., Rottmar, M., Jovaisaite, V., Rudin, M., Sulser, T., Boss, A., & Eberli, D. (2015). Viability, Differentiation Capacity, and Detectability of Super-Paramagnetic Iron Oxide-Labeled Muscle Precursor Cells for Magnetic-Resonance Imaging. Tissue Engineering. Part C, Methods, 21(2), 182–191. https://doi.org/10.1089/ten.TEC.2014.0110
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Cell therapies are a promising approach for the treatment of a variety of human conditions including stress urinary incontinence, but their success greatly depends on the biodistribution, migration, survival, and differentiation of the transplanted cells. Noninvasive in vivo cell tracking therefore presents an important aspect for translation of such a procedure into the clinics. Upon labeling with superparamagnetic iron oxide (SPIO) nanoparticles, cells can be tracked by magnetic resonance imaging (MRI), but possible adverse effect o
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Azzabi, F., Rottmar, M., Jovaisaite, V., Rudin, M., Sulser, T., Boss, A., & Eberli, D. (2015). Viability, Differentiation Capacity, and Detectability of Super-Paramagnetic Iron Oxide-Labeled Muscle Precursor Cells for Magnetic-Resonance Imaging. Tissue Engineering. Part C, Methods, 21(2), 182–191. https://doi.org/10.1089/ten.TEC.2014.0110