A magnetic hyperthermia cancer treatment strategy that does not operate by means of conventional heating mechanisms is presented. The proposed approach consists of injecting a gel with homogeneously distributed magnetic nanowires into a tumor. Upon the application of a low-frequency rotating or circularly polarized magnetic field, nanowires spin around their center of viscous drag due to torque generated by shape anisotropy. As a result of external rotational forcing and fluid friction in the nanoparticle's boundary layer, heating occurs. The nanowire dynamics is theoretically and experimentally investigated, and different feasibility proofs of the principle by physical modeling, which adhere to medical guidelines, are presented. The magnetic nanorotors exhibit rotations and oscillations with quite a steady center of gravity, which proves an immobile behavior and guarantees a time-independent homogeneity of the spatial particle distribution in the tumor. Furthermore, a fluid dynamic and thermodynamic heating model is briefly introduced. This model is a generalization of Penne's model that for this method reveals theoretic heating rates that are sufficiently high, and fits well into medical limits defined by present standards.
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14 August 2016
Research Article|
August 09 2016
Hyperthermia with rotating magnetic nanowires inducing heat into tumor by fluid friction
Peter W. Egolf
;
Peter W. Egolf
1Institute of Thermal Sciences and Engineering,
University of Applied Sciences of Western Switzerland
, CH 1401 Yverdon-les-Bains, Switzerland
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Naveen Shamsudhin;
Naveen Shamsudhin
a)
2Multi-Scale Robotics Lab,
Institute of Robotics and Intelligent Systems
, ETH Zurich, CH 8092 Zurich, Switzerland
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Salvador Pané
;
Salvador Pané
2Multi-Scale Robotics Lab,
Institute of Robotics and Intelligent Systems
, ETH Zurich, CH 8092 Zurich, Switzerland
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Didier Vuarnoz
;
Didier Vuarnoz
3
Ecole Polytechnique Fédérale de Lausanne (EPFL)
, EPFL Fribourg, CH 1701 Fribourg, Switzerland
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Juho Pokki;
Juho Pokki
2Multi-Scale Robotics Lab,
Institute of Robotics and Intelligent Systems
, ETH Zurich, CH 8092 Zurich, Switzerland
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Anne-Gabrielle Pawlowski;
Anne-Gabrielle Pawlowski
1Institute of Thermal Sciences and Engineering,
University of Applied Sciences of Western Switzerland
, CH 1401 Yverdon-les-Bains, Switzerland
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Paulin Tsague;
Paulin Tsague
1Institute of Thermal Sciences and Engineering,
University of Applied Sciences of Western Switzerland
, CH 1401 Yverdon-les-Bains, Switzerland
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Bastien de Marco;
Bastien de Marco
1Institute of Thermal Sciences and Engineering,
University of Applied Sciences of Western Switzerland
, CH 1401 Yverdon-les-Bains, Switzerland
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William Bovy;
William Bovy
1Institute of Thermal Sciences and Engineering,
University of Applied Sciences of Western Switzerland
, CH 1401 Yverdon-les-Bains, Switzerland
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Sinisa Tucev
;
Sinisa Tucev
1Institute of Thermal Sciences and Engineering,
University of Applied Sciences of Western Switzerland
, CH 1401 Yverdon-les-Bains, Switzerland
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M. H. D. Ansari;
M. H. D. Ansari
2Multi-Scale Robotics Lab,
Institute of Robotics and Intelligent Systems
, ETH Zurich, CH 8092 Zurich, Switzerland
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Bradley J. Nelson
Bradley J. Nelson
2Multi-Scale Robotics Lab,
Institute of Robotics and Intelligent Systems
, ETH Zurich, CH 8092 Zurich, Switzerland
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a)
Author to whom correspondence should be addressed. Electronic mail: snaveen@ethz.ch
J. Appl. Phys. 120, 064304 (2016)
Article history
Received:
February 18 2016
Accepted:
July 23 2016
Citation
Peter W. Egolf, Naveen Shamsudhin, Salvador Pané, Didier Vuarnoz, Juho Pokki, Anne-Gabrielle Pawlowski, Paulin Tsague, Bastien de Marco, William Bovy, Sinisa Tucev, M. H. D. Ansari, Bradley J. Nelson; Hyperthermia with rotating magnetic nanowires inducing heat into tumor by fluid friction. J. Appl. Phys. 14 August 2016; 120 (6): 064304. https://doi.org/10.1063/1.4960406
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