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Nickel Ferrite Nanoparticles for In Vivo Multimodal Magnetic Resonance and Magnetic Particle Imaging

2025/07/16 by Vı́t Herynek, Lenka Rajsiglová, Michal Babič +11 · 1 voice · 1 citation
Engineering · Materials Science · #Characterization and Applications of Magnetic Nanoparticles #Magnetic Properties and Synthesis of Ferrites #Nanoparticle-Based Drug Delivery

paper · doi:10.1021/acsanm.5c03013

openalex publication_date 2025/07/16 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/30

Abstract

High Resolution Image Download MS PowerPoint Slide Magnetic nanoparticles have been at the center of biomedical research for decades, primarily for their applications in magnetic resonance imaging (MRI) and magnetic particle imaging (MPI). Superparamagnetic particles, typically based on iron oxide crystals, are effective in both modalities, although each requires distinct magnetic properties for optimal performance. We investigated the performance of nanoparticles based on a nickel-substituted ferrite core and compared them to standard maghemite iron oxide nanoparticles. We synthesized γ-Fe 2 O 3 and Ni x Fe 2– x O 3 nanoparticles and coated them with a statistical copolymer poly( N, N -dimethylacrylamide- co -acrylic acid). In vitro testing included X-ray diffraction (XRD), Mössbauer spectroscopy, magnetometry, magnetic resonance relaxometry, magnetic particle spectroscopy, and imaging. In vivo testing involved monitoring of nanoparticle biodistribution using MPI and MRI after intracardial application in a murine model. Mössbauer spectra suggest that the Ni-substituted nanoparticles consist of a stoichiometric NiFe 2 O 4 ferrite and a poorly crystalline antiferromagnetic iron(III) oxide-hydroxide phase. Amorphous-like impurities in Ni x Fe 2– x O 3 nanoparticles were probably responsible for lower saturation magnetization than that of γ-Fe 2 O 3 nanoparticles, as was proved by magnetometry, which led to lower r 2 relaxivity. However, MPI revealed a higher signal in the spectrum and superior imaging performance of Ni x Fe 2– x O 3 compared to γ-Fe 2 O 3 particles, likely due to shorter Néél and Brownian relaxation times. Both types of nanoparticles showed similar performance in bimodal MRI/MPI imaging in vivo. They were detected in the liver immediately after application and appeared in the spleen within 24 h. Long-term localization in the lymph nodes was also observed. Substituting an iron with a nickel ion in the core altered the magnetic properties, leading to lower saturation magnetization and an increased signal in the magnetic particle spectra, which enhanced their performance in MPI. This study demonstrates that γ-Fe 2 O 3 and Ni x Fe 2– x O 3 nanoparticles are both suitable for combined MRI/MPI imaging; magnetic particle imaging provides a highly specific signal for anatomical magnetic resonance images.

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