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Hyperthermia Classic Articles

Inductive heating of ferrimagnetic particles and magnetic fluids: Physical evaluation of their potential for hyperthermia

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Pages 499-511 | Published online: 24 Oct 2009

References

  • Watson JK. Applications of magnetism. John Wiley & Sons, New York, Chichester, Brisbane, Toronto 1980
  • Smit J, Wijn HPJ. Ferrite. Die physikalischen Eigenschaften von ferrimagnetischen Oxyden unter besonderer Berücksichtigung ihrer technischen Anwendung. Philips Technische Bibliothek 1962; 305–320
  • Kittel Ch. Einführung in die Festkörperphysik. Wien: R. Oldenburg Verlag, München 1989; 455–527
  • Hanson M. The frequency dependence of the complex susceptibility of magnetic fluids. J Magn Magn Mater 1991; 96, (In press)
  • Popplewell J, Rosensweig RE, Johnston RJ. Magnetic field induced rotations in ferrofluids. IEEE Trans Magn 1990; 26: 1852–1854
  • Atkinson WJ, Brezovich IA, Chakraborty DP. Usable frequencies in hyperthermia with thermal seeds. IEEE Trans Biomed Eng 1984; BME-31: 70–75
  • Oleson JR. A review of magnetic induction methods for hyperthermia treatment for cancer. IEEE Trans Biomed Eng 1984; BME-31: 91–97
  • Stauffer PR, Cetas TC, Jones RC. Magnetic induction heating of ferromagnetic implant for inducing localized hyperthermia in deep-seated tumors. IEEE Trans Biomed Eng 1984b; BME-31: 235–251
  • Brezovich IA. Ferromagnetics. Syllabus: A Categorial Course in Radiation Therapy. Presented at the 73rd Scientific Assembly and Annual Meeting of the Radiological Society of North America. 29 Nov.–4 Dec, 1987, RA Steeves, BR Palival. 117–126
  • Stauffer PR, Cetas TC, Fletcher AM, de Young DW, Dewhirst MW, Oleson JR, Roemer RB. Observations on the use of ferromagnetic implants for inducing hyperthermia. IEEE Trans Biomed Eng 1984a; BME-31: 76–90
  • Brezovich IA. Low frequency hyperthermia: Capacitive and ferromagnetic thermoseed methods. Biological, physical and clinical aspects of hyperthermia. Medical Physics Monograph 1988; 16: 82–111, Paliwal BR Hetzel FW, Dewhirst MW
  • Gilchrist RK, Medal R, Shorey WD, Hanselman RC, Parrott JC, Taylor CB. Selective inductive heating of lymph nodes. Annals of Surgery 1957; 146: 596–606
  • Gilchrist RK, Shorey WD, Hanselman RC, Depeyster FA, Yang J, Medal R. Effects of electromagnetic heating on internal viscera: A preliminary to the treatment of human tumors. Annals of Surgery 1965; 161: 890–896
  • Medal BS, Shorey W, Gilchrist RK, Barker W, Hanselman R. Controlled radio-frequency generator for production of localized heat in intact animal. A.M.A. Archives of Surgery 1959; 79: 427–431
  • Lerch IA, Pizzarello DJ. The physics and biology of tumor-specific particle-induction hyperthermia. Med Phys 1986; 13: 786
  • Lerch IA, Pizzarello DJ. Radiofrequency induction of intravenously injected ferromagnetic particles: Effect on mammary tumors of rats (personal communication) 1989
  • Gordon RT, Hines JR, Gordon D. Intracellular hyperthermia: A biophysical approach to cancer treatment via intracellular temperature and biophysical alterations. Med Hypothesis 1979; 5: 83–102
  • Gordon RT, Halperin WP, Gordon D, Freeman AJ. Alterations in magnetic characteristics produced by intra-cellular particles. J Biol Phys 1986; 14: 77–79
  • Gordon RT. Cancer-treating composition containing inductively-heatable particles 1980, UK Patent Application 2024007
  • Gordon RT. Use of magnetic susceptibility probes in the treatment of cancer. 1987a, US Patent No. 4662359
  • Gordon RT. Selective treatment of cancer cells–using minute particles which can be inductively heated as magnetic susceptibility probes. 1987b, US Patent No. 4662359
  • Gordon RT. Treating cancer cells in vivo by alteration electric and magnetic dipoles intracellularly by introduction of minute particles. 1988a, US Patent No. 47677611
  • Gordon RT. Diagnostic and therapeutic comparisons–containing metal transferring dextran particles have high target cell selectively especially for treating cancer by inductive heating. 1988b, US Patent No. 4735796
  • Gordon RT. Process for the treatment of neurological or neuromuscular diseases and development. 1989, US Patent No. 4813399
  • Nicolas J. Magnetic powders for use in hyperthermic treatments–e.g. of tumours, heated by hysteresis in alternating magnetic field. 1983, French Patent No. 2508802
  • Luderer A, Borrelli NF, Panzarino JN, Mansfield GR, Hess DM, Brown JL, Barnett EH. Glas-ceramic-mediated, magnetic field induced localized hyperthermia: Response of a murine mammary carcinoma. Radiat Res 1983; 94: 190–198
  • Rand RW, Snow HD, Brown WJ. Thermomagnetic surgery for cancer. J Surg Res 1982; 33: 177–183
  • Rand RW, Snow HD, Elliott DG, Haskins GM. Necrosis of neoplasm by hyperthermia produced by induction heating of injected particles with magnetic hysteresis. 1985, US Patent No. 4545368
  • Tazawa K, Takemori S, Yamashita I, Kato H, Yamamoto K, Kasagi T, Suzuki Y, Maeda M, Honda T, Fujimaki M, et al. Intracellular hyperthermia effect of intracellular submicron particles exiting in inductive Field of 500 kHz (in vitro and in vivo). Proceedings of the Japanese Cancer Research 47th Ann. Meeting. 1988, 623
  • Suzuki S, Arai K, Koike T, Oguchi K. Studies on liposomal ferromagnetic particles and a technique of high frequency inductive heating–in vivo studies of rabbits. Nippon-Gan-Chiryo-Gakkai-Shi 1990; 25: 2649–2658
  • Chou C-K. Use of heating rate and specific absorption rate in the hyperthermia clinic. Int J Hyperthermia 1990; 6: 367–370
  • Kato H, Hiraoka M, Ishida T. An agar phantom for hyperthermia. Med Phys 1986; 13: 396–398
  • Shliomis MI, Pshenichnikov AF, Morozov KI, Shurubor IY. Magnetic properties of ferrocolloids. J Magn Magn Mater 1990; 85: 40–46
  • Geshev J, Popov O, Masheva V, Mikhov M. Thermomagnetic curves for a disordered system of single-domain ferromagnetic particles with cubic anisotropy. J Magn Magn Mater 1990; 92: 185–190
  • Fannin PC, Charles SW. Measurement of the Neél relaxation of magnetic particles in the frequency range 1 kHz to 160 MHz. J Phys D: Appl Phys 1991; 24: 76–77
  • Oleson JR. Hyperthermia by magnetic induction: I. Physical characteristics of the technique. Int J Radiat Oncol Biol Phys 1982; 8: 1747–1756
  • Johnson CC, Guy AW. Nonionizing electromagnetic wave effects in biological materials and systems. Proceedings of ZEEE 1972; 60: 692–718
  • Hand JW. Biophysics and technology of electromagnetic hyperthermia. Methods of External Hyperthermic Heating, M Gautherie. Springer-Verlag, Berlin, Heidelberg, New York, London, Paris, Tokyo, Hong Kong 1990; 6
  • Wust P. Thesis of the Klinikum Rudolf Virchow. Freie Universitat Berlin, BerlinGermany 1992, (in German)
  • Wust P, Nadobny J, Fähling H, Riess H, Koch K, John W, Felix R. Einflußfaktoren und Störeffekte bei der Steuerung von Leistungsverteilungen mit dem Hyperthermie-Ringsystem BSD-(2000). I. Klinische Observablen und Phantommessungen. Strahlentherapie und Onkologie 1990; 166: 822–830
  • Wust P, Nadobny J, Felix R, Deuflhard P, LOUIS A, John W. Strategies for optimized application of annular-phased-array-systems in clinical hyperthermia. Int J Hyperthermia 1991a; 7: 157–173
  • Wust P, Nadobny J, Fähling H, Riess H, Koch K, John W, Felix R. Einflußfaktoren und Störeffekte bei der Steuerung von Leistungsverteilungen mit dem Hyperthermie-Ringsystem BSD-(2000). 11. Meßtechnische Analyse. Strahlentherapie und Onkologie 1991b; 167: 172–180
  • Bacon BR, Stark DD, Park CH, Saini S, Groman EV, Hahn PF, Compton CC, Ferucci JT. Ferrite particles: A new magnetic resonance imaging contrast agent. Lack of acute or chronic hepatotoxicity after intravenous administration. J Lab Clin Med 1987; 110: 164–171
  • Brezovich IA, Atkinson WJ, Chakraborty DP. Temperature Distributions in tumor models heated by self-regulating nickel-copper alloy thermoseeds. Med Phys 1984a; 11: 145–152
  • Brezovich IA, Atkinson WJ, Lilly MB. Local hyperthermia with interstitial techniques. Cancer Res (Suppl.) 1984b; 44: 4752s–4756s
  • Lerch IA. The biology, physics, and engineering of intracellular particle-induction hyperthermia. Radiution Research. Proceedings of the 8th International Congress of Radiation Research, Edinburgh, 1987, 325

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