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From Structure to Function: Zn/Mn-Modified Maghemite as an Advanced Nanoplatform for Magnetic Hyperthermia and Radionuclide Therapy

Authorized Users Only
2025
Authors
Ognjanović, Miloš
Bošković, Marko
Stanojković, Tatjana
Dojčinović, Biljana P.
Abeykoon, A. M. Milinda
Tomić, Aleksandra
Janković, Drina
Vranješ-Đurić, Sanja
Bozin, Emil S.
Antić, Bratislav
Article (Published version)
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Abstract
The development of nanoplatforms capable of efficient heat generation and stable radionuclide delivery is essential for effective bimodal cancer therapy. In this study, binary (Fe–M) and ternary (Fe–M–M′) metal oxide nanoparticles were synthesized via a polyol method optimized to produce flower-like γ-Fe2O3 (maghemite) structures, with M and M′ representing Zn and/or Mn. Comprehensive structural and magnetic characterization was conducted to explain the relationship between composition, defect structure, and hyperthermic performance. The analyses revealed that cation substitution induced an Fe-site vacancy, primarily at octahedral positions, leading to local structural distortions, as confirmed by powder X-ray diffraction and pair distribution function analysis. The optimized composition, with Zn/Mn/Fe = 0.040:0.182:1, exhibited the highest concentration of vacancies and structural disorder. These vacancies altered the bonding environment, enhancing magnetic interactions at tetrahedral... sites while weakening those at the octahedral positions. The resulting multicore nanoflowers (20–63 nm; core size 13–18 nm) displayed strong heating performance, with intrinsic loss power ranging from 0.34 to 5.77 nHm2 kg–1. The optimized sample achieved a temperature increase of 30 °C within 2 min and a specific absorption rate of 369 W g–1. This composition was further coated with citrate (CA) and successfully radiolabeled with 177Lu, achieving a radiolabeling yield of 92.7% and excellent stability, thus forming a robust nanoplatform for combined magnetic hyperthermia and radionuclide therapy. Biological evaluation of the optimized S5 composition revealed selective cytotoxicity toward HeLa and LS174 cells, while toxicity was significantly lower to A549, A375, and normal MRC-5 cells. Citrate coating of S5 nanoparticles (S5@CA) drastically reduced their cytotoxicity across all tested cell lines (IC50 > 200 μg mL–1), confirming their enhanced biocompatibility for therapeutic applications. In HeLa cells subjected to magnetic hyperthermia, the viability decreased to approximately 84% after 30 min and 61% after 60 min of treatment, demonstrating the sustained hyperthermic effect at a controlled working temperature of 48 °C. These results underscore the effectiveness of cation substitution and vacancy engineering in tailoring the functional properties of maghemite-based nanomaterials for advanced multimodal cancer therapies.

Keywords:
multicore nanoparticles / microstructure / magnetic hyperthermia / in vitro / radiolabeling / Defects in solids / Hyperthermia / Magnetic properties / Nanoparticles / Transition metals
Source:
ACS Applied Materials & Interfaces, 2025, 17, 33, 46836-46849
Funding / projects:
  • RadioMag - Design of RADIOactive MAGnetic nanoconstructs for tumour therapy by synergy of nanobrachytherapy and magnetic hyperthermia (RS-ScienceFundRS-Prizma2023_TT-7282)
  • Ministry of Science, Technological Development and Innovation of the Republic of Serbia, institutional funding - 200017 (University of Belgrade, Institute of Nuclear Sciences 'Vinča', Belgrade-Vinča) (RS-MESTD-inst-2020-200017)
  • bilateral Serbia-NR China project No. 003417078 2024 013440 003 000 620 021
  • Ministry of Science, Technological Development and Innovation of the Republic of Serbia, institutional funding - 200043 (Institute of Oncology and Radiology of Serbia, Belgrade) (RS-MESTD-inst-2020-200043)
  • HIP-2D-QM - ERA Chair project by the European Union’s Horizon Europe research and innovation program under grant agreement No. 101185375
Note:
  • Correction to the article: https://doi.org/10.1021/acsami.5c21701

DOI: 10.1021/acsami.5c12439

ISSN: 1944-8244; 1944-8252

[ Google Scholar ]
URI
https://pubs.acs.org/doi/10.1021/acsami.5c12439
https://vinar.vin.bg.ac.rs/handle/123456789/15348
Collections
  • Radovi istraživača
  • RadioMag
Institution/Community
Vinča
TY  - JOUR
AU  - Ognjanović, Miloš
AU  - Bošković, Marko
AU  - Stanojković, Tatjana
AU  - Dojčinović, Biljana P.
AU  - Abeykoon, A. M. Milinda
AU  - Tomić, Aleksandra
AU  - Janković, Drina
AU  - Vranješ-Đurić, Sanja
AU  - Bozin, Emil S.
AU  - Antić, Bratislav
PY  - 2025
UR  - https://pubs.acs.org/doi/10.1021/acsami.5c12439
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/15348
AB  - The development of nanoplatforms capable of efficient heat generation and stable radionuclide delivery is essential for effective bimodal cancer therapy. In this study, binary (Fe–M) and ternary (Fe–M–M′) metal oxide nanoparticles were synthesized via a polyol method optimized to produce flower-like γ-Fe2O3 (maghemite) structures, with M and M′ representing Zn and/or Mn. Comprehensive structural and magnetic characterization was conducted to explain the relationship between composition, defect structure, and hyperthermic performance. The analyses revealed that cation substitution induced an Fe-site vacancy, primarily at octahedral positions, leading to local structural distortions, as confirmed by powder X-ray diffraction and pair distribution function analysis. The optimized composition, with Zn/Mn/Fe = 0.040:0.182:1, exhibited the highest concentration of vacancies and structural disorder. These vacancies altered the bonding environment, enhancing magnetic interactions at tetrahedral sites while weakening those at the octahedral positions. The resulting multicore nanoflowers (20–63 nm; core size 13–18 nm) displayed strong heating performance, with intrinsic loss power ranging from 0.34 to 5.77 nHm2 kg–1. The optimized sample achieved a temperature increase of 30 °C within 2 min and a specific absorption rate of 369 W g–1. This composition was further coated with citrate (CA) and successfully radiolabeled with 177Lu, achieving a radiolabeling yield of 92.7% and excellent stability, thus forming a robust nanoplatform for combined magnetic hyperthermia and radionuclide therapy. Biological evaluation of the optimized S5 composition revealed selective cytotoxicity toward HeLa and LS174 cells, while toxicity was significantly lower to A549, A375, and normal MRC-5 cells. Citrate coating of S5 nanoparticles (S5@CA) drastically reduced their cytotoxicity across all tested cell lines (IC50 > 200 μg mL–1), confirming their enhanced biocompatibility for therapeutic applications. In HeLa cells subjected to magnetic hyperthermia, the viability decreased to approximately 84% after 30 min and 61% after 60 min of treatment, demonstrating the sustained hyperthermic effect at a controlled working temperature of 48 °C. These results underscore the effectiveness of cation substitution and vacancy engineering in tailoring the functional properties of maghemite-based nanomaterials for advanced multimodal cancer therapies.
T2  - ACS Applied Materials & Interfaces
T1  - From Structure to Function: Zn/Mn-Modified Maghemite as an Advanced Nanoplatform for Magnetic Hyperthermia and Radionuclide Therapy
VL  - 17
IS  - 33
SP  - 46836
EP  - 46849
DO  - 10.1021/acsami.5c12439
ER  - 
@article{
author = "Ognjanović, Miloš and Bošković, Marko and Stanojković, Tatjana and Dojčinović, Biljana P. and Abeykoon, A. M. Milinda and Tomić, Aleksandra and Janković, Drina and Vranješ-Đurić, Sanja and Bozin, Emil S. and Antić, Bratislav",
year = "2025",
abstract = "The development of nanoplatforms capable of efficient heat generation and stable radionuclide delivery is essential for effective bimodal cancer therapy. In this study, binary (Fe–M) and ternary (Fe–M–M′) metal oxide nanoparticles were synthesized via a polyol method optimized to produce flower-like γ-Fe2O3 (maghemite) structures, with M and M′ representing Zn and/or Mn. Comprehensive structural and magnetic characterization was conducted to explain the relationship between composition, defect structure, and hyperthermic performance. The analyses revealed that cation substitution induced an Fe-site vacancy, primarily at octahedral positions, leading to local structural distortions, as confirmed by powder X-ray diffraction and pair distribution function analysis. The optimized composition, with Zn/Mn/Fe = 0.040:0.182:1, exhibited the highest concentration of vacancies and structural disorder. These vacancies altered the bonding environment, enhancing magnetic interactions at tetrahedral sites while weakening those at the octahedral positions. The resulting multicore nanoflowers (20–63 nm; core size 13–18 nm) displayed strong heating performance, with intrinsic loss power ranging from 0.34 to 5.77 nHm2 kg–1. The optimized sample achieved a temperature increase of 30 °C within 2 min and a specific absorption rate of 369 W g–1. This composition was further coated with citrate (CA) and successfully radiolabeled with 177Lu, achieving a radiolabeling yield of 92.7% and excellent stability, thus forming a robust nanoplatform for combined magnetic hyperthermia and radionuclide therapy. Biological evaluation of the optimized S5 composition revealed selective cytotoxicity toward HeLa and LS174 cells, while toxicity was significantly lower to A549, A375, and normal MRC-5 cells. Citrate coating of S5 nanoparticles (S5@CA) drastically reduced their cytotoxicity across all tested cell lines (IC50 > 200 μg mL–1), confirming their enhanced biocompatibility for therapeutic applications. In HeLa cells subjected to magnetic hyperthermia, the viability decreased to approximately 84% after 30 min and 61% after 60 min of treatment, demonstrating the sustained hyperthermic effect at a controlled working temperature of 48 °C. These results underscore the effectiveness of cation substitution and vacancy engineering in tailoring the functional properties of maghemite-based nanomaterials for advanced multimodal cancer therapies.",
journal = "ACS Applied Materials & Interfaces",
title = "From Structure to Function: Zn/Mn-Modified Maghemite as an Advanced Nanoplatform for Magnetic Hyperthermia and Radionuclide Therapy",
volume = "17",
number = "33",
pages = "46836-46849",
doi = "10.1021/acsami.5c12439"
}
Ognjanović, M., Bošković, M., Stanojković, T., Dojčinović, B. P., Abeykoon, A. M. M., Tomić, A., Janković, D., Vranješ-Đurić, S., Bozin, E. S.,& Antić, B.. (2025). From Structure to Function: Zn/Mn-Modified Maghemite as an Advanced Nanoplatform for Magnetic Hyperthermia and Radionuclide Therapy. in ACS Applied Materials & Interfaces, 17(33), 46836-46849.
https://doi.org/10.1021/acsami.5c12439
Ognjanović M, Bošković M, Stanojković T, Dojčinović BP, Abeykoon AMM, Tomić A, Janković D, Vranješ-Đurić S, Bozin ES, Antić B. From Structure to Function: Zn/Mn-Modified Maghemite as an Advanced Nanoplatform for Magnetic Hyperthermia and Radionuclide Therapy. in ACS Applied Materials & Interfaces. 2025;17(33):46836-46849.
doi:10.1021/acsami.5c12439 .
Ognjanović, Miloš, Bošković, Marko, Stanojković, Tatjana, Dojčinović, Biljana P., Abeykoon, A. M. Milinda, Tomić, Aleksandra, Janković, Drina, Vranješ-Đurić, Sanja, Bozin, Emil S., Antić, Bratislav, "From Structure to Function: Zn/Mn-Modified Maghemite as an Advanced Nanoplatform for Magnetic Hyperthermia and Radionuclide Therapy" in ACS Applied Materials & Interfaces, 17, no. 33 (2025):46836-46849,
https://doi.org/10.1021/acsami.5c12439 . .

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