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Updated: Jul 8, 2026

In Vitro and In Vivo Delivery of Magnetic Nanoparticle Hyperthermia Using a Custom-Built Delivery System
Published on: July 2, 2020
Dual-responsive hydrogel-coated nanoclusters for combined magnetic hyperthermia and drug delivery: a comprehensive in
Regan Charles R1,2, Subhasis Sarangi2, Aranganathan V3
1Department of Biotechnology, School of Sciences, Jain (deemed to be University), Bangalore, India.
None:
Cancer therapy demands smarter, more targeted strategies that minimise healthy tissue damage while maximising therapeutic efficacy. This study introduces Hy-Si-IONC, a dual heat- and pH-responsive hydrogel-coated magnetic nanocluster, engineered to deliver chemotherapeutic drug within the tumour microenvironment. When combined with magnetic hyperthermia, it offers targeted, localised drug release, outperforming conventional single-stimulus carriers. The encapsulation efficiency and drug loading capacity of the Hy-Si-IONC were 47.3% and 4.6%, respectively. Hy-Si-IONC exhibited a lower critical solution temperature (LCST) of 43 °C with drug-release potential of 41.89% under tumour-mimicking conditions. A combinational therapy of doxorubicin-loaded Hy-Si-IONC and magnetic hyperthermia reduced the cell viability to 18% in MDA-MB-231 cells, confirming a strong therapeutic effect between thermal and chemotherapy. The nanosystem displayed good compatibility with human lymphocytes, MCF-7 and MDA-MB-231 cell lines. Haemolysis remained below 1%, and no genotoxicity was detected. Long-term in vivo safety was confirmed in a 25-week mice study; the nanoclusters predominantly accumulated in the liver and spleen. Transient changes in antioxidant markers - superoxide dismutase (SOD), catalase, glutathione S-transferase (GST), and glutathione (GSH) normalised by the end of the study. No major histopathological abnormalities were observed in vital organs. Collectively, Hy-Si-IONC presents a biocompatible and potential dual-modal cancer therapy.

