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Original Articles

Identification of infusion strategy for achieving repeatable nanoparticle distribution and quantification of thermal dosage using micro-CT Hounsfield unit in magnetic nanoparticle hyperthermia

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Pages 132-143 | Received 11 Jun 2015, Accepted 08 Nov 2015, Published online: 12 Jan 2016

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Read on this site (5)

Sri Kamal Kandala, Anirudh Sharma, Sahar Mirpour, Eleni Liapi, Robert Ivkov & Anilchandra Attaluri. (2021) Validation of a coupled electromagnetic and thermal model for estimating temperatures during magnetic nanoparticle hyperthermia. International Journal of Hyperthermia 38:1, pages 611-622.
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Harley F. Rodrigues, Gustavo Capistrano & Andris F. Bakuzis. (2020) In vivo magnetic nanoparticle hyperthermia: a review on preclinical studies, low-field nano-heaters, noninvasive thermometry and computer simulations for treatment planning. International Journal of Hyperthermia 37:3, pages 76-99.
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Sundeep Singh & Roderick Melnik. (2020) Thermal ablation of biological tissues in disease treatment: A review of computational models and future directions. Electromagnetic Biology and Medicine 39:2, pages 49-88.
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Rachael Mooney, Emiliano Schena, Paola Saccomandi, Ali Zhumkhawala, Karen Aboody & Jacob M. Berlin. (2017) Gold nanorod-mediated near-infrared laser ablation: in vivo experiments on mice and theoretical analysis at different settings. International Journal of Hyperthermia 33:2, pages 150-159.
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Articles from other publishers (17)

Kaiming Shen, Yunfei Yan, Zongguo Xue, Shuo Wu, Jingxiang You, Lixian Li & Wen Siang Lew. (2023) Multiwalled Carbon Nanotubes Decorated with Mn 0.5 Zn 0.5 Fe 2 O 4 Nanoparticles for Magneto-Photothermal Cancer Therapy . ACS Applied Nano Materials 6:14, pages 13330-13341.
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Andisheh Etminan, Milad Salimibani, Ali Dahaghin, Mohammad Haghpanahi & Ali Maleki. (2023) FEM thermal assessment of a 3-D irregular tumor with capillaries in magnetic nanoparticle hyperthermia via dissimilar injection points. Computers in Biology and Medicine 157, pages 106771.
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Manpreet Singh. (2023) Biological heat and mass transport mechanisms behind nanoparticles migration revealed under microCT image guidance. International Journal of Thermal Sciences 184, pages 107996.
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Kaiming Shen, Yunfei Yan, Wei Gao & Lixian Li. (2022) Numerical simulation of the effect of injection sites arrangement on the thermal ablation in the magnetic fluid hyperthermia. Journal of Magnetism and Magnetic Materials 555, pages 169393.
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Manpreet Singh. (2022) Incorporating vascular-stasis based blood perfusion to evaluate the thermal signatures of cell-death using modified Arrhenius equation with regeneration of living tissues during nanoparticle-assisted thermal therapy. International Communications in Heat and Mass Transfer 135, pages 106046.
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Muhammad Suleman, Samia Riaz & Rashid Jalil. (2020) A mathematical modeling approach toward magnetic fluid hyperthermia of cancer and unfolding heating mechanism. Journal of Thermal Analysis and Calorimetry 146:3, pages 1193-1219.
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Maritina Rouchota, George Loudos & George C. Kagadis. (2021) An in-silico method to predict and quantify the effect of gold nanoparticles in X-ray imaging. Physica Medica 89, pages 160-168.
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Ali Dahaghin, Seyedhamidreza Emadiyanrazavi, Milad Salimibani, Hossein Bahreinizad, Mohammad Haghpanahi, Reza Eivazzadeh-Keihan & Ali Maleki. (2021) A numerical investigation into the magnetic nanoparticles hyperthermia cancer treatment injection strategies. Biocybernetics and Biomedical Engineering 41:2, pages 516-526.
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R. C. Bakker, R. Bastiaannet, S. A. van Nimwegen, A. D. Barten-van Rijbroek, R. J. J. Van Es, A. J. W. P. Rosenberg, H. W. A. M. de Jong, M. G. E. H. Lam & J. F. W. Nijsen. (2020) Feasibility of CT quantification of intratumoural 166Ho-microspheres. European Radiology Experimental 4:1.
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Qimei Gu, Shuaishuai Liu, Arunendra Saha Ray, Stelios Florinas, Ronald James Christie, Marie-Christine Daniel, Charles Bieberich, Ronghui Ma & Liang Zhu. (2020) Mild Whole-Body Hyperthermia-Induced Interstitial Fluid Pressure Reduction and Enhanced Nanoparticle Delivery to PC3 Tumors: In Vivo Studies and Micro-Computed Tomography Analyses. Journal of Thermal Science and Engineering Applications 12:6.
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Manpreet Singh, Qimei Gu, Ronghui Ma & Liang Zhu. (2020) Heating Protocol Design Affected by Nanoparticle Redistribution and Thermal Damage Model in Magnetic Nanoparticle Hyperthermia for Cancer Treatment. Journal of Heat Transfer 142:7.
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Qimei Gu, Tejashree Joglekar, Charles Bieberich, Ronghui Ma & Liang Zhu. (2019) Nanoparticle Redistribution in PC3 Tumors Induced by Local Heating in Magnetic Nanoparticle Hyperthermia: In Vivo Experimental Study. Journal of Heat Transfer 141:3.
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Alexander LeBrun & Liang Zhu. 2018. Theory and Applications of Heat Transfer in Humans. Theory and Applications of Heat Transfer in Humans 631 667 .
Harley F Rodrigues, Gustavo Capistrano, Francyelli M Mello, Nicholas Zufelato, Elisângela Silveira-Lacerda & Andris F Bakuzis. (2017) Precise determination of the heat delivery during in vivo magnetic nanoparticle hyperthermia with infrared thermography . Physics in Medicine and Biology 62:10, pages 4062-4082.
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Alexander LeBrun, Tejashree Joglekar, Charles Bieberich, Ronghui Ma & Liang Zhu. (2017) Treatment Efficacy for Validating MicroCT-Based Theoretical Simulation Approach in Magnetic Nanoparticle Hyperthermia for Cancer Treatment. Journal of Heat Transfer 139:5.
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Ji-Hyun Lee, Hee-Jin Kim & Jeong-Ho Yun. (2017) Three-dimensional microstructure of human alveolar trabecular bone: a micro-computed tomography study. Journal of Periodontal & Implant Science 47:1, pages 20.
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Alexander LeBrun, Ronghui Ma & Liang Zhu. (2016) MicroCT image based simulation to design heating protocols in magnetic nanoparticle hyperthermia for cancer treatment. Journal of Thermal Biology 62, pages 129-137.
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