Literature DB >> 25825545

Magnetic nanoparticles with high specific absorption rate of electromagnetic energy at low field strength for hyperthermia therapy.

Fridon Shubitidze1, Katsiaryna Kekalo1, Robert Stigliano1, Ian Baker1.   

Abstract

Magnetic nanoparticles (MNPs), referred to as the Dartmouth MNPs, which exhibit high specific absorption rate at low applied field strength have been developed for hyperthermia therapy applications. The MNPs consist of small (2-5 nm) single crystals of gamma-Fe2O3 with saccharide chains implanted in their crystalline structure, forming 20-40 nm flower-like aggregates with a hydrodynamic diameter of 110-120 nm. The MNPs form stable (>12 months) colloidal solutions in water and exhibit no hysteresis under an applied quasistatic magnetic field, and produce a significant amount of heat at field strengths as low as 100 Oe at 99-164 kHz. The MNP heating mechanisms under an alternating magnetic field (AMF) are discussed and analyzed quantitatively based on (a) the calculated multi-scale MNP interactions obtained using a three dimensional numerical model called the method of auxiliary sources, (b) measured MNP frequency spectra, and (c) quantified MNP friction losses based on magneto-viscous theory. The frequency responses and hysteresis curves of the Dartmouth MNPs are measured and compared to the modeled data. The specific absorption rate of the particles is measured at various AMF strengths and frequencies, and compared to commercially available MNPs. The comparisons demonstrate the superior heating properties of the Dartmouth MNPs at low field strengths (<250 Oe). This may extend MNP hyperthermia therapy to deeper tumors that were previously non-viable targets, potentially enabling the treatment of some of the most difficult cancers, such as pancreatic and rectal cancers, without damaging normal tissue.

Entities:  

Year:  2015        PMID: 25825545      PMCID: PMC4352167          DOI: 10.1063/1.4907915

Source DB:  PubMed          Journal:  J Appl Phys        ISSN: 0021-8979            Impact factor:   2.546


  38 in total

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Journal:  Phys Rev E Stat Phys Plasmas Fluids Relat Interdiscip Topics       Date:  2000-09

2.  Aggregation of magnetic microspheres: Experiments and simulations.

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Journal:  Phys Rev Lett       Date:  1988-10-10       Impact factor: 9.161

3.  Multicore assemblies potentiate magnetic properties of biomagnetic nanoparticles.

Authors:  Tae-Jong Yoon; Hakho Lee; Huilin Shao; Scott A Hilderbrand; Ralph Weissleder
Journal:  Adv Mater       Date:  2011-09-26       Impact factor: 30.849

4.  Element-specific magnetic hysteresis of individual 18 nm Fe nanocubes.

Authors:  Florian Kronast; Nina Friedenberger; Katharina Ollefs; Sebastian Gliga; Logane Tati-Bismaths; Ronja Thies; Andreas Ney; Ramona Weber; Christoph Hassel; Florian M Römer; Anastasia V Trunova; Christian Wirtz; Riccardo Hertel; Hermann A Dürr; Michael Farle
Journal:  Nano Lett       Date:  2011-03-10       Impact factor: 11.189

5.  Optimizing magnetic nanoparticle based thermal therapies within the physical limits of heating.

Authors:  M L Etheridge; J C Bischof
Journal:  Ann Biomed Eng       Date:  2012-08-02       Impact factor: 3.934

6.  Magnetic multicore nanoparticles for hyperthermia--influence of particle immobilization in tumour tissue on magnetic properties.

Authors:  Silvio Dutz; Melanie Kettering; Ingrid Hilger; Robert Müller; Matthias Zeisberger
Journal:  Nanotechnology       Date:  2011-05-17       Impact factor: 3.874

7.  Numerical study on the multi-region bio-heat equation to model magnetic fluid hyperthermia (MFH) using low Curie temperature nanoparticles.

Authors:  Chuanqian Zhang; Duane T Johnson; Christopher S Brazel
Journal:  IEEE Trans Nanobioscience       Date:  2008-12       Impact factor: 2.935

8.  MAGNETIC NANOPARTICLE HYPERTHERMIA IN CANCER TREATMENT.

Authors:  Andrew J Giustini; Alicia A Petryk; Shiraz M Cassim; Jennifer A Tate; Ian Baker; P Jack Hoopes
Journal:  Nano Life       Date:  2010-03

9.  Exposure of engineered nanoparticles to human lung epithelial cells: influence of chemical composition and catalytic activity on oxidative stress.

Authors:  Ludwig K Limbach; Peter Wick; Pius Manser; Robert N Grass; Arie Bruinink; Wendelin J Stark
Journal:  Environ Sci Technol       Date:  2007-06-01       Impact factor: 9.028

10.  Comparison of a single optimized coil and a Helmholtz pair for magnetic nanoparticle hyperthermia.

Authors:  Michael D Nieskoski; B Stuart Trembly
Journal:  IEEE Trans Biomed Eng       Date:  2014-03-27       Impact factor: 4.538

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  14 in total

1.  Erratum: "Magnetic nanoparticles with high specific absorption rate of electromagnetic energy at low field strength for hyperthermia therapy" [J. Appl. Phys. 117, 094302 (2015)].

Authors:  Fridon Shubitidze; Katsiaryna Kekalo; Robert Stigliano; Ian Baker
Journal:  J Appl Phys       Date:  2015-11-03       Impact factor: 2.546

2.  Mitigation of eddy current heating during magnetic nanoparticle hyperthermia therapy.

Authors:  Robert V Stigliano; Fridon Shubitidze; James D Petryk; Levan Shoshiashvili; Alicia A Petryk; P Jack Hoopes
Journal:  Int J Hyperthermia       Date:  2016-07-20       Impact factor: 3.914

Review 3.  A review on numerical modeling for magnetic nanoparticle hyperthermia: Progress and challenges.

Authors:  Izaz Raouf; Salman Khalid; Asif Khan; Jaehun Lee; Heung Soo Kim; Min-Ho Kim
Journal:  J Therm Biol       Date:  2020-06-17       Impact factor: 2.902

4.  A Feasibility Study of Nonlinear Spectroscopic Measurement of Magnetic Nanoparticles Targeted to Cancer Cells.

Authors:  Bradley W Ficko; Christian NDong; Paolo Giacometti; Karl E Griswold; Solomon G Diamond
Journal:  IEEE Trans Biomed Eng       Date:  2016-06-23       Impact factor: 4.538

5.  Microfluidic enrichment of bacteria coupled to contact-free lysis on a magnetic polymer surface for downstream molecular detection.

Authors:  Alison Burklund; James D Petryk; P Jack Hoopes; John X J Zhang
Journal:  Biomicrofluidics       Date:  2020-06-23       Impact factor: 2.800

6.  The Dartmouth Center for Cancer Nanotechnology Excellence: magnetic hyperthermia.

Authors:  Ian Baker; Steve N Fiering; Karl E Griswold; P Jack Hoopes; Katerina Kekalo; Christian Ndong; Keith Paulsen; Alicea A Petryk; Brian Pogue; Fridon Shubitidze; John Weaver
Journal:  Nanomedicine (Lond)       Date:  2015       Impact factor: 5.307

Review 7.  Magnetic Nanoparticles in Cancer Therapy and Diagnosis.

Authors:  Ali Farzin; Seyed Alireza Etesami; Jacob Quint; Adnan Memic; Ali Tamayol
Journal:  Adv Healthc Mater       Date:  2020-03-20       Impact factor: 9.933

8.  Alternating-Magnetic-Field-Mediated Wireless Manipulations of a Liquid Metal for Therapeutic Bioengineering.

Authors:  Yue Yu; Eijiro Miyako
Journal:  iScience       Date:  2018-04-19

9.  Functionalized Hydrophilic Superparamagnetic Iron Oxide Nanoparticles for Magnetic Fluid Hyperthermia Application in Liver Cancer Treatment.

Authors:  Ganeshlenin Kandasamy; Atul Sudame; Tania Luthra; Kalawati Saini; Dipak Maity
Journal:  ACS Omega       Date:  2018-04-10

10.  Therapeutic Efficiency of Multiple Applications of Magnetic Hyperthermia Technique in Glioblastoma Using Aminosilane Coated Iron Oxide Nanoparticles: In Vitro and In Vivo Study.

Authors:  Gabriel N A Rego; Mariana P Nucci; Javier B Mamani; Fernando A Oliveira; Luciana C Marti; Igor S Filgueiras; João M Ferreira; Caroline C Real; Daniele de Paula Faria; Paloma L Espinha; Daianne M C Fantacini; Lucas E B Souza; Dimas T Covas; Carlos A Buchpiguel; Lionel F Gamarra
Journal:  Int J Mol Sci       Date:  2020-01-31       Impact factor: 5.923

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