Magnetic Chitosan Bionanocomposite Films as a Versatile Platform for Biomedical Hyperthermia

Author:

Barra Ana12,Wychowaniec Jacek K.34,Winning Danielle3,Cruz Maria Margarida5,Ferreira Liliana P.56,Rodriguez Brian J.7,Oliveira Helena8,Ruiz‐Hitzky Eduardo2,Nunes Cláudia1ORCID,Brougham Dermot F.3ORCID,Ferreira Paula1

Affiliation:

1. Department of Materials and Ceramic Engineering CICECO – Aveiro Institute of Materials University of Aveiro Aveiro 3810—193 Portugal

2. Materials Science Institute of Madrid CSIC c/Sor Juana Inés de la Cruz 3 Madrid 28049 Spain

3. School of Chemistry University College Dublin Belfield Dublin D04 V1W8 Ireland

4. AO Research Institute Davos Clavadelerstrasse 8 Davos 7270 Switzerland

5. Biosystems and Integrative Sciences Institute (BioISI) Faculdade de Ciências Universidade de Lisboa Lisboa 1749‐016 Portugal

6. Physics Department University of Coimbra Coimbra 3004—516 Portugal

7. School of Physics and Conway Institute of Biomolecular and Biomedical Research University College Dublin Belfield Dublin D04 V1W8 Ireland

8. Department of Biology and CESAM University of Aveiro Aveiro 3810‐193 Portugal

Abstract

AbstractResponsive magnetic nanomaterials offer significant advantages for innovative therapies, for instance, in cancer treatments that exploit on‐demand delivery on alternating magnetic field (AMF) stimulus. In this work, biocompatible magnetic bionanocomposite films are fabricated from chitosan by film casting with incorporation of magnetite nanoparticles (MNPs) produced by facile one pot synthesis. The influence of synthesis conditions and MNP concentration on the films’ heating efficiency and heat dissipation are evaluated through spatio‐temporal mapping of the surface temperature changes by video‐thermography. The cast films have a thickness below 100 µm, and upon exposure to AMF (663 kHz, 12.8 kA m−1), induce exceptionally strong heating, reaching a maximum temperature increase of 82 °C within 270 s irradiation. Further, it is demonstrated that the films can serve as substrates that supply heat for multiple hyperthermia scenarios, including: i) non‐contact automated heating of cell culture medium, ii) heating of gelatine‐based hydrogels of different shapes, and iii) killing of cancerous melanoma cells. The films are versatile components for non‐contact stimulus with translational potential in multiple biomedical applications.

Funder

Science Foundation Ireland

Fundação para a Ciência e a Tecnologia

European Cooperation in Science and Technology

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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