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Research Article

Exploring and validating heating dynamics in a radio-frequency electromagnetic field-based resonant chamber for mouse hyperthermia research

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Pages 164-175 | Received 02 Feb 2024, Accepted 26 May 2024, Published online: 10 Jun 2024

References

  • Adibzadeh, F., M. M. Paulides, and G. C. van Rhoon. 2018. SAR thresholds for electromagnetic exposure using functional thermal dose limits. Int. J. Hyperthermia 34:1248–54. doi:10.1080/02656736.2018.1424945.
  • Bakker,J.F., M.M. Paulides, A. Christ, N. Kuster,and G.C. van Rhoon. 2010.Assessment of induced SAR in children exposed to electromagnetic plane waves between 10 MHz and 5.6GHz. Phys.Med.Biol. 55:3115–30. doi:10.1088/0031-9155/55/11/009.
  • Capstick, M., N. Kuster, S. Kuehn, V. Berdinas-Torres, Y. Gong, P. Wilson, J. Ladbury. 2017. A radio frequency radiation exposure system for rodents based on reverberation chambers. IEEE Trans. Electromagn. Compat. 59:1041–52. doi:10.1109/TEMC.2017.2649885.
  • Cheng, Y., S. Weng, L. Yu, N. Zhu, M. Yang, and Y. Yuan. 2019. The role of hyperthermia in the multidisciplinary treatment of malignant tumors. Integr. Cancer Ther. 18. doi:10.1177/1534735419876345 153473541987634.
  • D’Andrea, J. A., J. M. Ziriax, and E. R. Adair. 2007. Radio frequency electromagnetic fields: Mild hyperthermia and safety standards, vol. 162, 107–35. Prog Brain Res. doi:10.1016/s0079-6123(06)62007-4.
  • Ebert, S., S. J. Eom, J. Schuderer, U. Apostel, T. Tillmann, C. Dasenbrock, N. Kuster. 2005. Response, thermal regulatory threshold and thermal breakdown threshold of restrained RF-exposed mice at 905 MHz. Phys. Med. Biol. 50:5203–15. doi:10.1088/0031-9155/50/21/017.
  • Gajsek, P., T. J. Walters, W. D. Hurt, J. M. Ziriax, D. A. Nelson, and P. A. Mason. 2002. Empirical validation of SAR values predicted by FDTD modeling. Bioelectromagnetics 23:37–48. doi:10.1002/bem.96.
  • Gong, Y., M. Capstick, T. Tillmann, C. Dasenbrock, T. Samaras, N. Kuster. 2016. Desktop exposure system and dosimetry for small scale in vivo radiofrequency exposure experiments. Bioelectromagnetics 37:49–61. doi:10.1002/bem.21950.
  • Hand, J. W. 2008. Modelling the interaction of electromagnetic fields (10 MHz-10 GHz) with the human body: Methods and applications. Phys. Med. Biol. 53:R243–86. doi:10.1088/0031-9155/53/16/R01.
  • Hop, H. T., L. T. Arayan, A. W. B. Reyes, T. X. N. Huy, W. G. Min, H. J. Lee, M. H. Rhee, H. H. Chang, and S. Kim. 2018. Heat-stress-modulated induction of NF-κB leads to brucellacidal pro-inflammatory defense against Brucella abortus infection in murine macrophages and in a mouse model. BMC Microbiol. 18:44. doi:10.1186/s12866-018-1185-9.
  • Jia, D., W. Rao, C. Wang, C. Jin, S. Wang, D. Chen, M. Zhang, J. Guo, Z. Chang, J. Liu, et al. 2011. Inhibition of B16 murine melanoma metastasis and enhancement of immunity by fever-range whole body hyperthermia. Int. J. Hyperthermia 27:275–85. doi:10.3109/02656736.2011.559613.
  • Jung, K. B., T. H. Kim, J. L. Kim, H. J. Doh, Y. C. Chung, J. H. Choi, J. K. Pack. 2008. Development and validation of reverberation-chamber type whole-body exposure system for mobile-phone frequency. Electromagn. Biol. Med. 27:73–82. doi:10.1080/15368370701878895.
  • Kainuma, E., M. Watanabe, C. Tomiyama-Miyaji, M. Inoue, Y. Kuwano, H. Ren, and T. Abo. 2009. Association of glucocorticoid with stress-induced modulation of body temperature, blood glucose and innate immunity. Psychoneuroendocrinology 34:1459–68. doi:10.1016/j.psyneuen.2009.04.021.
  • Kim, H. S., Y. H. Lee, H. D. Choi, A. K. Lee, S. B. Jeon, J. K. Pack, N. Kim, Y. H. Ahn. 2020. Effect of exposure to a radiofrequency electromagnetic field on body temperature in anesthetized and non-anesthetized rats. Bioelectromagnetics 41:104–12. doi:10.1002/bem.22236.
  • Kok, H. P., E. N. Cressman, W. Ceelen, C. L. Brace, R. Ivkov, H. Grüll, G. Ter Haar, P. Wust, and J. Crezee. 2020. Heating technology for malignant tumors: A review. Int. J. Hyperthermia 37:711–41. doi:10.1080/02656736.2020.1779357.
  • Kozlowski, H. M., J. Sobocinska, B. Jedrzejewski, B. Maciejewski, A. Dzialuk, S. Wrotek. 2023. Fever-range whole body hyperthermia leads to changes in immune-related genes and miRNA machinery in Wistar rats. Int. J. Hyperthermia 40:2216899. doi:10.1080/02656736.2023.2216899.
  • Kuster, N., V. B. Torres, N. Nikoloski, M. Frauscher, and W. Kainz. 2006. Methodology of detailed dosimetry and treatment of uncertainty and variations for in vivo studies. Bioelectromagnetics 27:378–91. doi:10.1002/bem.20219.
  • Lange, U., and G. Dischereit. 2018. Effects of different iterative whole-body hyperthermia on pain and cytokines in rheumatic diseases: a current review. Aktuelle Rheumatologie 43:479–83. doi:10.1055/s-0044-101543.
  • Lee, S. Y., G. Fiorentini, A. M. Szasz, G. Szigeti, A. Szasz, C. A. Minnaar. 2020. Quo vadis oncological hyperthermia (2020)?, vol. 10, 1690. Front Oncol. doi:10.3389/fonc.2020.01690.
  • Lin, C., Z. Liu, Y. Li, and J. Chen. 2021. Protocol for fever-range whole-body hyperthermia (WBH) in mice to study febrile effect on T-cell adhesion and migration. STAR. Protoc. 2:100720. doi:10.1016/j.xpro.2021.100720.
  • Orlacchio, R., Y. Le Page, Y. Le Dréan, R. Le Guével, R. Sauleau, S. Alekseev, and M. Zhadobov. 2019. Millimeter-wave pulsed heating in vitro: Cell mortality and heat shock response. Sci. Rep. 9:15249. doi:10.1038/s41598-019-51731-7.
  • Paffi, A., C. Merla, R. Pinto, G. A. Lovisolo, M. Liberti, C. Marino, M. Repacholi, F. Apollonio. 2013. Microwave exposure systems for in vivo biological experiments: a systematic review. IEEE Trans. Microw. Theory Tech. 61:1980–93. doi:10.1109/TMTT.2013.2246183.
  • Shang, H., H. Gu, and N. Zhang. 2021. From traditional to novel treatment of arthritis: A review of recent advances in nanotechnology-based thermal therapy. Nanomedicine (Lond.) 16:2117–32. doi:10.2217/nnm-2021-0182.
  • Shindo, Y., K. Kato, Y. Ichishima, Y. Iseki, R. Tokutake, F. Ikuta, K. Takahashi. 2018. Evaluation of deep thermal rehabilitation system using resonant cavity applicator during knee experiments. Annu. Int. Conf. IEEE Eng. Med. Biol. Soc. 2018:3220–23. doi:10.1109/embc.2018.8512976.
  • Smith-Roe, S. L., M. E. Wyde, M. D. Stout, J. W. Winters, C. A. Hobbs, K. G. Shepard, A. S. Green, G. E. Kissling, K. R. Shockley, R. R. Tice, et al. 2020. Evaluation of the genotoxicity of cell phone radiofrequency radiation in male and female rats and mice following subchronic exposure. Environ. Mol. Mutagen. 61:276–90. doi:10.1002/em.22343.
  • Tange, Y., Y. Kanai, and Y. Saitoh. 2005. Analysis and development of a radio-frequency rectangular resonant cavity applicator with multiple antennas for a hyperthermic treatment. IEEE Trans. Magn. 41:1880–83. doi:10.1109/TMAG.2005.846235.
  • Tange, Y., Y. Kanai, and Y. Saitoh. 2007. Discussion based on numerical and experimental studies on heating characteristics of an RF rectangular resonant cavity applicator for hyperthermia targeting deep-seated tumors. Annu. Int. Conf. IEEE Eng. Med. Biol. Soc. 2007:3536–39 doi:10.1109/iembs.2007.4353094.
  • Torres, B., and J. Verónica. 2007. Exposure systems and dosimetry of large-scale in vivo studies. ETH.
  • Vaupel, P., and H. Piazena. 2022. Strong correlation between specific heat capacity and water content in human tissues suggests preferred heat deposition in malignant tumors upon electromagnetic irradiation. Int. J. Hyperthermia 39:987–97. doi:10.1080/02656736.2022.2067596.
  • Wang, S., M. Zheng, C. Lou, S. Chen, H. Guo, Y. Gao, H. Lv, X. Yuan, X. Zhang, P. Shang, et al. 2022. Evaluating the biological safety on mice at 16 T static magnetic field with 700 MHz radio-frequency electromagnetic field. Ecotoxicol. Environ. Saf. 230:113125. doi:10.1016/j.ecoenv.2021.113125.
  • Wu, T., A. Hadjem, M. F. Wong, A. Gati, O. Picon, and J. Wiart. 2010. Whole-body new-born and young rats’ exposure assessment in a reverberating chamber operating at 2.4 GHz. Phys. Med. Biol. 55:1619–30. doi:10.1088/0031-9155/55/6/006.
  • Wust, P., B. Hildebrandt, G. Sreenivasa, B. Rau, J. Gellermann, H. Riess, R. Felix, and P. M. Schlag. 2002. Hyperthermia in combined treatment of cancer. Lancet Oncol. 3:487–97. doi:10.1016/S1470-2045(02)00818-5.
  • Wust, P., U. Stein, and P. Ghadjar. 2021. Non-thermal membrane effects of electromagnetic fields and therapeutic applications in oncology. Int. J. Hyperthermia 38:715–31. doi:10.1080/02656736.2021.1914354.
  • Xue, W., F. Li, X. Chen, S. Zhu, A. Zhang, and T. Svensson. 2021. A unified approach for uncertainty analyses for total radiated power and total isotropic sensitivity measurements in reverberation chamber. IEEE Trans. Instrum. Meas. 70:1–12. doi:10.1109/TIM.2020.3041079.

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