Literature DB >> 23919112

Magnetic Heating of Nanoparticles: The Importance of Particle Clustering to Achieve Therapeutic Temperatures.

John Pearce1, Andrew Giustini, Robert Stigliano, P Jack Hoopes.   

Abstract

Hyperthermia therapy for cancer treatment seeks to destroy tumors through heating alone or combined with other therapies at elevated temperatures between 41.8 and 48 °C. Various forms of cell death including apoptosis and necrosis occur depending on temperature and heating time. Effective tumoricidal effects can also be produced by inducing damage to the tissue vasculature and stroma; however, surrounding normal tissue must be spared to a large extent. Magnetic nanoparticles have been under experimental investigation in recent years as a means to provide a favorable therapeutic ratio for local hyperthermia; however, practical numerical models that can be used to study the underlying mechanisms in realistic geometries have not previously appeared to our knowledge. Useful numerical modeling of these experiments is made extremely difficult by the many orders of magnitude in the geometries: from nanometers to centimeters. What has been missing is a practical numerical modeling approach that can be used to more deeply understand the experiments. We develop and present numerical models that reveal the extent and dominance of the local heat transfer boundary conditions, and provide a new approach that may simplify the numerical problem sufficiently to make ordinary computing machinery capable of generating useful predictions. The objectives of this paper are to place the discussion in a convenient interchangeable classical electromagnetic formulation, and to develop useful engineering approximations to the larger multiscale numerical modeling problem that can potentially be used in experiment evaluation; and eventually, may prove useful in treatment planning. We cast the basic heating mechanisms in the framework of classical electromagnetic field theory and provide calibrating analytical calculations and preliminary experimental results on BNF-Starch® nanoparticles in a mouse tumor model for perspective.

Entities:  

Year:  2013        PMID: 23919112      PMCID: PMC3732028          DOI: 10.1115/1.4024904

Source DB:  PubMed          Journal:  J Nanotechnol Eng Med        ISSN: 1949-2944


  15 in total

1.  Is intracellular hyperthermia superior to extracellular hyperthermia in the thermal sense?

Authors:  Y Rabin
Journal:  Int J Hyperthermia       Date:  2002 May-Jun       Impact factor: 3.914

2.  Optimization of plasmonic heating by gold nanospheres and nanoshells.

Authors:  Nadine Harris; Michael J Ford; Michael B Cortie
Journal:  J Phys Chem B       Date:  2006-06-08       Impact factor: 2.991

3.  FEM numerical model study of heating in magnetic nanoparticles.

Authors:  John A Pearce; Jason R Cook; P Jack Hoopes; Andrew Giustini
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2011-02-22

4.  Clinical hyperthermia of prostate cancer using magnetic nanoparticles: presentation of a new interstitial technique.

Authors:  M Johannsen; U Gneveckow; L Eckelt; A Feussner; N Waldöfner; R Scholz; S Deger; P Wust; S A Loening; A Jordan
Journal:  Int J Hyperthermia       Date:  2005-11       Impact factor: 3.914

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.  Iron Oxide Hyperthermia And Radiation Cancer Treatment.

Authors:  Sm Cassim; Aj Giustini; Aa Petryk; Ra Strawbridge; Pj Hoopes
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2009-02-23

7.  Assessment of intratumor non-antibody directed iron oxide nanoparticle hyperthermia cancer therapy and antibody directed IONP uptake in murine and human cells.

Authors:  Pj Hoopes; Ja Tate; Ja Ogden; Rr Strawbridge; Sn Fiering; Aa Petryk; Sm Cassim; Aj Giustini; E Demidenko; R Ivkov; S Barry; P Chinn; A Foreman
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2009-02-23

8.  Evaluation of temperature increase with different amounts of magnetite in liver tissue samples.

Authors:  I Hilger; W Andrä; R Bähring; A Daum; R Hergt; W A Kaiser
Journal:  Invest Radiol       Date:  1997-11       Impact factor: 6.016

9.  Magnetic nanoparticle biodistribution following intratumoral administration.

Authors:  A J Giustini; R Ivkov; P J Hoopes
Journal:  Nanotechnology       Date:  2011-07-28       Impact factor: 3.874

10.  Intracellular gold nanoparticles enhance non-invasive radiofrequency thermal destruction of human gastrointestinal cancer cells.

Authors:  Christopher J Gannon; Chitta Ranjan Patra; Resham Bhattacharya; Priyabrata Mukherjee; Steven A Curley
Journal:  J Nanobiotechnology       Date:  2008-01-30       Impact factor: 10.435

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  7 in total

1.  Numerical Model Study of In Vivo Magnetic Nanoparticle Tumor Heating.

Authors:  John A Pearce; Alicia A Petryk; P Jack Hoopes
Journal:  IEEE Trans Biomed Eng       Date:  2017-03-01       Impact factor: 4.538

2.  FEM numerical model analysis of magnetic nanoparticle tumor heating experiments.

Authors:  John A Pearce; Alicia A Petyk; P Jack Hoopes
Journal:  Conf Proc IEEE Eng Med Biol Soc       Date:  2014

3.  Magnetoliposomes containing magnesium ferrite nanoparticles as nanocarriers for the model drug curcumin.

Authors:  Beatriz D Cardoso; Irina S R Rio; Ana Rita O Rodrigues; Francisca C T Fernandes; B G Almeida; A Pires; A M Pereira; J P Araújo; Elisabete M S Castanheira; Paulo J G Coutinho
Journal:  R Soc Open Sci       Date:  2018-10-17       Impact factor: 2.963

4.  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

Review 5.  Nanoparticle Activation Methods in Cancer Treatment.

Authors:  Benjamin D White; Chengchen Duan; Helen E Townley
Journal:  Biomolecules       Date:  2019-05-24

6.  Magnetic hyperthermia of breast cancer cells and MRI relaxometry with dendrimer-coated iron-oxide nanoparticles.

Authors:  Marzieh Salimi; Saeed Sarkar; Reza Saber; Hamid Delavari; Ali Mohammad Alizadeh; Hendrik Thijmen Mulder
Journal:  Cancer Nanotechnol       Date:  2018-10-08

7.  Assessment of a novel nanoparticle hyperthermia therapy in a murine model of osteosarcoma.

Authors:  Joanne L Tuohy; Jonathan E Fogle; Kristina Meichner; Luke B Borst; Christopher S Petty; Emily H Griffith; Jason A Osborne; B Duncan X Lascelles
Journal:  Vet Surg       Date:  2018-10-11       Impact factor: 1.495

  7 in total

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