Related Experiment Video
Updated: May 1, 2026

Author Spotlight: Innovative Cancer Therapies with Iron Oxide Nanoparticles for Glioblastoma Treatment
Published on: September 27, 2024
Intracellular performance of tailored nanoparticle tracers in magnetic particle imaging
Abstract:
Magnetic Particle Imaging (MPI) is a quantitative mass-sensitive, tracer-based imaging technique, with potential applications in various cellular imaging applications. The spatial resolution of MPI, in the first approximation, improves by decreasing the full width at half maximum (FWHM) of the field-derivative of the magnetization, dm/dH of the nanoparticle (NP) tracers. The FWHM of dm/dH depends critically on NPs' size, size distribution, and their environment. However, there is limited information on the MPI performance of the NPs after their internalization into cells. In this work, 30 to 150 μg of the iron oxide NPs were incubated in a lysosome-like acidic buffer (0.2 ml, 20 mM citric acid, pH 4.7) and investigated by vibrating sample magnetometry, magnetic particle spectroscopy, transmission electron microscopy, and dynamic light scattering (DLS). The FWHM of the dm/dH curves of the NPs increased with incubation time and buffer to NPs ratio, consistent with a decrease in the median core size of the NPs from ∼20.1 ± 0.98 to ∼18.5 ± 3.15 nm. Further, these smaller degraded NPs formed aggregates that responded to the applied field by hysteretic reversal at higher field values and increased the FWHM. The rate of core size decrease and aggregation were inversely proportional to the concentration of the incubated NPs, due to their slower biodegradation kinetics. The results of this model experiment show that the MPI performance of the NPs in the acidic environments of the intracellular organelles (i.e., lysosomes and endosomes) can be highly dependent on their rate of internalization, residence time, and degradation.
Insights
Magnetic Particle Imaging (MPI) tracer performance degrades in acidic cellular environments. Nanoparticle (NP) size reduction and aggregation in lysosomes increase MPI signal width, impacting imaging resolution.
Area of Science:
- Biomedical Imaging
- Nanotechnology
- Materials Science
Background:
- Magnetic Particle Imaging (MPI) is a quantitative imaging technique utilizing magnetic nanoparticle (NP) tracers.
- MPI's spatial resolution is linked to the magnetic properties (FWHM of dm/dH) of NPs, influenced by size, distribution, and environment.
- Limited data exists on NP performance within cellular acidic compartments like lysosomes.
Purpose of the Study:
- To investigate the impact of acidic environments on iron oxide NP properties relevant to MPI.
- To understand how NP degradation and aggregation in lysosomes affect MPI signal characteristics.
Main Methods:
- Iron oxide NPs were incubated in an acidic buffer (pH 4.7) simulating lysosomal conditions.
- Techniques used included vibrating sample magnetometry, magnetic particle spectroscopy, transmission electron microscopy, and dynamic light scattering (DLS).
Main Results:
- NP core size decreased, and FWHM of dm/dH increased with incubation time and buffer-to-NP ratio.
- Degraded NPs formed aggregates, leading to hysteretic reversal at higher fields and further increasing FWHM.
- Biodegradation and aggregation rates were inversely proportional to NP concentration.
Conclusions:
- Acidic environments significantly alter NP properties, affecting MPI performance.
- NP degradation and aggregation in lysosomes can broaden the MPI signal, potentially reducing spatial resolution.
- Cellular uptake, residence time, and degradation kinetics are critical factors for MPI tracer efficacy in vivo.

