| Literature DB >> 34062851 |
Hira Fatima1, Tawatchai Charinpanitkul2, Kyo-Seon Kim1.
Abstract
The activation of magnetic nanoparticles in hyperthermia treatment by an external alternating magnetic field is a promising technique for targeted cancer therapy. The external alternating magnetic field generates heat in the tumor area, which is utilized to kill cancerous cells. Depending on the tumor type and site to be targeted, various types of magnetic nanoparticles, with variable coating materials of different shape and surface charge, have been developed. The tunable physical and chemical properties of magnetic nanoparticles enhance their heating efficiency. Moreover, heating efficiency is directly related with the product values of the applied magnetic field and frequency. Protein corona formation is another important parameter affecting the heating efficiency of MNPs in magnetic hyperthermia. This review provides the basics of magnetic hyperthermia, mechanisms of heat losses, thermal doses for hyperthermia therapy, and strategies to improve heating efficiency. The purpose of this review is to build a bridge between the synthesis/coating of magnetic nanoparticles and their practical application in magnetic hyperthermia.Entities:
Keywords: cancer; magnetic hyperthermia; magnetic nanoparticles; saturation magnetization; specific absorption rate
Year: 2021 PMID: 34062851 PMCID: PMC8147361 DOI: 10.3390/nano11051203
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1(a) Schematic representation of the magnetic hyperthermia treatment procedure. Reprinted with permission from [21]. Copyright 2014 Springer Nature. (b) Factors affecting the functionality of magnetic hyperthermia.
SAR values for MNPs from the literature.
| No. | Material | Coating | Field | Frequency | SAR | Ref. |
|---|---|---|---|---|---|---|
| 1 | Fe2O3 | N/A | 12.5 | 500 | 626 | [ |
| 2 | Iron oxide | N/A | N/A | 110 | 322 | [ |
| 3 | Iron oxide | N/A | 500 | 15.5 | 716 | [ |
| 4 | Iron oxide | N/A | 30 | 210 | 702 | [ |
| 5 | FePt@Fe3O4 | N/A | 630 | 18.8 | 1120 | [ |
| 6 | CoFe2O4 | N/A | 24.8 | 700 | 360 | [ |
| 7 | Fe0.6Mn0.4O | N/A | 366 | 32 | 535 | [ |
| 8 | Zn0.4Mn0.6Fe2O4 | N/A | 500 | 3.7 | 432 | [ |
| 9 | Magnetosome | N/A | 10 | 410 | 960 | [ |
| 10 | Magnetosome | N/A | 23.9 | 765 | 1200 | [ |
| 11 | Iron oxide | Dextran | 12.5 | 500 | 625 | [ |
| 12 | Iron oxide | CTAB | 63 | 358 | 2483 | [ |
| 13 | Iron oxide | CTAB | 47.8 | 488 | 5000 | [ |
| 14 | Iron oxide | PEG | 29 | 520 | 2452 | [ |
| 15 | Iron oxide | PEG | 29 | 520 | 2452 | [ |
| 16 | Iron oxide | GO | 32.5 | 400 | 5160 | [ |
| 17 | Iron oxide | mPEG | 35 | 400 | 2213 | [ |
| 18 | CoFe2O4 | PMAO | 32 | 105 | 915 | [ |
| 19 | CoFe2O4 @MnFe2O4 | DMSA | 37.3 | 500 | 2250 | [ |
| 20 | CoFe2O4 @Zn0.4Fe2.6O4 | DMSA | 37.4 | 500 | 10600 | [ |
| 21 | MnFe2O4 | GO | 60 | 240 | 1588 | [ |
Note: Cetyl trimethylammonium bromide: CTAB; Polyethylene glycol: PEG; Graphene oxide: GO; Poly maleic anhydride 1−octadecene: PMAO; dimercaptosuccinic acid: DMSA; N/A: Not available.
Figure 2(a) Size distributions versus magnetization curves of five different samples Reprinted with permission from [68]. Copyright 2007 American Chemical Society. (b) SAR values for nano-octopods and spherical nanoparticles, and inset is the M–H loops at room temperature Reprinted with permission from [73]. Copyright 2016 American Chemical Society. (c) A schematic diagram of magnetic cores with different molecular weights of PEG coating. Reprinted with permission from [90]. Copyright 2012 The Royal Society of Chemistry.
Commonly used polymers for magnetic nanoparticle coating.
| No. | Material | Advantage | Ref. |
|---|---|---|---|
| 1 | Polyethylene glycol | Improve the biocompatibility of the NPs by resisting protein adsorption and increasing their intracellular uptake | [ |
| 2 | Polyvinyl alcohol | Monodisperse particles are formed with reduced coagulation | [ |
| 3 | Dextran | The stable colloidal suspension is formed along with enhanced blood circulation time | [ |
| 4 | Chitosan | Produce biocompatible and hydrophilic particles | [ |
| 5 | Polyacrylic acid | Produce biocompatible and stable particles | [ |
| 6 | Polyvinylpyrrolidone | The stable colloidal suspension is formed along with enhanced blood circulation time | [ |
| 7 | Poly(D, L-lactide) | Biocompatible and low cytotoxicity | [ |
| 8 | Gelatin | Biocompatible and hydrophilic particles are formed | [ |
Figure 3(a) Schematic diagram for the conjugation of ChL6 antibody with MNPs. Reprinted with permission from [108]. Copyright 2007 SNMMI. (b) Schematic representation for the conjugation of anti-PSMA aptamers with gold nanoparticles. Reprinted with permission from [31]. Copyright 2008 American Chemical Society. (c) The cell viability of A2780/AD human ovarian cancer cells using a DOX, IONPs-DOX-PEG-LHRH, and DOX loaded IONPs-DOX-PEG-LHRH system. Reprinted with permission from [34]. Copyright 2013 Elsevier B.V.
Figure 4(a) Magnetization values of iron oxide MNPs at different field strengths, 5 K (black) and 310 K (red). Inset shows the low field region to estimate the coercive field. Reprinted with permission from [83]. Copyright 2012 American Chemical Society. (b) Heat generation of iron oxide base MNPs at 6.5 kA/m magnetic field and 60 kHz. Reprinted with permission from [122]. Copyright 2007 The Royal Society of Chemistry. (c) Cell viability of Hela cells using protein-coated iron oxide MNPs. Reprinted with permission from [124]. Copyright 2008 The Royal Society of Chemistry. (d) Thermal heating of FA-PEG-SPION MNPs. Reprinted with permission from [126]. Copyright 2013 Ivyspring International. (e) TEM image, showing agglomeration of MNPs in an endosome in KB cells and inset showing the EDX analysis. Reprinted with permission from [127]. Copyright 2005 American Chemical Society. (f) Heating profile of Fe/MgO under different alternating magnetic field strengths. Reprinted with permission from [131]. Copyright 2011 Elsevier.
Overview of typical examples of magnetic hyperthermia.
| No. | Compound | Preparation Method | Alternating Magnetic Field Strength | Magnetic Properties | Frequency | Cell Line | Ref. | |
|---|---|---|---|---|---|---|---|---|
| Ms | Hc | |||||||
| Am−1 | emu/g | Oe | kHz | |||||
| 1 | Fe3O4 | Coprecipitation | 6.3 | N/A | N/A | 400 | Hela cells | [ |
| 2 | Fe3O4 | Spray-coprecipitation | 150 | 25.6 | 58 | 64.6 | KB and L929 cancer cells | [ |
| 3 | Fe3O4 | One pot hydrolysis condensation reaction | N/A | 24 | 0 | 230 | Glioma 261 | [ |
| 4 | Fe3O4 | Coprecipitation | 26.6 * | 59.7 | 100 | 265 | MCF7 human breast cancer cells | [ |
| 5 | Fe3O4 | Thermal decomposition | 29 | 80 | 0 | 520 | KB cancer cells | [ |
| 6 | Fe3O4 | Coprecipitation | 16 | 284 | ~750–1150 | HFL1 cells | [ | |
| 7 | Fe3O4 | N/A | 12.7 * | 68 | N/A | 250 | Dendritic cells | [ |
| 8 | Coprecipitation | 88 ** | N/A | N/A | 108 | MCF7, KB 3-1, HeLa cell line | [ | |
| 9 | Massart method | N/A | 200 | N/A | 100 | A549 cells, Saos-2 cells HeLa cells, and HepG2 cells | [ | |
| 10 | Sol–gel | 12 ** | 2.5 | 3.44 | 141 | N/A | [ | |
| 11 | Fe/MgO | Vapor condensation | 8–29 * | 210 | N/A | 765 | MCF7 and MDA-MB231 breast cancer cell | [ |
| 12 | Thermal decomposition | 100 *** | 78 | <10 | 425 | HeLa cell | [ | |
| 13 | Thermal decomposition | 150 *** | 25–78 | N/A | 425 | HeLa cell | [ | |
| 14 | ZnGd0.02Fe1 0.98O4 | Coprecipitation | 6.5 | N/A | N/A | 60 | VE Cells | [ |
Note: * values are in kAm−1; ** values are in mT; *** values are in Oe; N/A: Not Available.