Biocompatibility and proteomic profiling of DMSA-coated iron nanocubes in a human glioblastoma cell line

Nanomedicine (Lond). 2024 Feb;19(4):303-323. doi: 10.2217/nnm-2023-0304. Epub 2024 Jan 25.

Abstract

Background: Superparamagnetic iron core iron oxide shell nanocubes have previously shown superior performance in magnetic resonance imaging T2 contrast enhancement compared with spherical nanoparticles. Methods: Iron core iron oxide shell nanocubes were synthesized, stabilized with dimercaptosuccinic acid (DMSA-NC) and physicochemically characterized. MRI contrast enhancement and biocompatibility were assessed in vitro. Results: DMSA-NC showed a transverse relaxivity of 122.59 mM-1·s-1 Fe. Treatment with DMSA-NC did not induce cytotoxicity or oxidative stress in U-251 cells, and electron microscopy demonstrated DMSA-NC localization within endosomes and lysosomes in cells following internalization. Global proteomics revealed dysregulation of iron storage, transport, transcription and mRNA processing proteins. Conclusion: DMSA-NC is a promising T2 MRI contrast agent which, in this preliminary investigation, demonstrates favorable biocompatibility with an astrocyte cell model.

Keywords: imaging; iron nanocubes; magnetic resonance imaging; nanomedicine; proteomics.

Plain language summary

MRI is a powerful tool used in the diagnosis of cancer, strokes and other injuries. An MRI scan can be improved with the use of iron oxide nanoparticles, which enhance the contrast of the image. In this study we have developed cube-shaped iron nanoparticles (nanocubes), which have been previously shown to be more effective at inducing contrast. We demonstrated that iron-based nanocubes do not damage or induce stress in cells and work effectively as an MRI contrast agent. We further analyzed how the nanocubes may affect cell functioning by investigating changes to protein levels in the cells. The results of this study are promising steps towards using iron-based nanocubes as a tool to improve the clarity of MRI scans for medical imaging and diagnosis. Future work must determine whether these nanocubes work effectively and safely in an animal model, which is a critical step in progressing to their use in clinical settings.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Cell Line
  • Contrast Media / chemistry
  • Ferric Compounds / chemistry
  • Glioblastoma* / diagnostic imaging
  • Glioblastoma* / drug therapy
  • Humans
  • Iron
  • Magnetic Resonance Imaging / methods
  • Magnetite Nanoparticles* / chemistry
  • Proteomics
  • Succimer / chemistry

Substances

  • ferric oxide
  • Iron
  • Magnetite Nanoparticles
  • Ferric Compounds
  • Contrast Media
  • Succimer