Biodegradable polyelectrolyte/magnetite capsules for MR imaging and magnetic targeting of tumors

Yulia Svenskaya1, Francesca Garello2, Ekaterina Lengert1

  • 1Remote Controlled Systems for Theranostics laboratory, Research and Educational Institute of Nanostructures and Biosystems, Saratov State University, 410012 Saratov, Russia.

Nanotheranostics
|April 14, 2021
PubMed

Insights

Magnetic biodegradable polyelectrolyte capsules show promise for targeted cancer drug delivery. External magnetic fields significantly enhance the delivery of these capsules to tumors, improving chemotherapy effectiveness.

Area of Science:

  • Biomaterials Science
  • Nanotechnology
  • Oncology

Background:

  • Poor drug penetration and selectivity limit current cancer therapies.
  • Existing nano- and micro-carriers can have slow degradation, hindering repeated dosing.
  • Targeted delivery systems are needed to overcome these limitations.

Purpose of the Study:

  • To develop and evaluate magnetic biodegradable polyelectrolyte capsules for targeted drug delivery.
  • To assess the efficacy of an external magnetic field in guiding these capsules to tumor sites in a mouse breast cancer model.

Main Methods:

  • Fabrication of four types of magnetic polyelectrolyte capsules using layer-by-layer assembly and calcium carbonate templates.
  • Incorporation of magnetite nanoparticles into capsule shells and/or inner volumes.
  • In vitro characterization (relaxometry, photosedimentometry, MRI on cells) and in vivo testing in mice with externally applied magnetic fields post-injection.

Main Results:

  • All capsule formulations were non-cytotoxic to RAW 264.7 cells.
  • Sample C6S demonstrated efficient magnetic targeting to tumors, achieving a three-fold increase in T2-MRI contrast enhancement with external magnet application.
  • Histology confirmed dense iron aggregates in tumors 48 hours post-magnetic targeting, indicating successful accumulation.

Conclusions:

  • Magnetic biodegradable polyelectrolyte capsules, guided by external magnetic fields and MRI, represent an effective strategy for targeted drug delivery.
  • This approach holds potential for significantly improving the performance of anticancer chemotherapy.