DocumentCode
3585
Title
Exposure System and Dosimetry for In Vitro Studies of Biocompatibility of Pulse-Modulated RF Signals of Ultrahigh Field MRI
Author
Zhadobov, Maxim ; Ferrand, Guillaume ; Luong, Marie ; Soubere, Yonis ; Le Quement, Catherine ; Carton, Pierre-Henri ; Piret, Yves ; Sauleau, Ronan ; Le Drean, Yves
Author_Institution
Inst. of Electron. & Telecommun. of Rennes (IETR), Univ. of Rennes 1, Rennes, France
Volume
60
Issue
11
fYear
2013
fDate
Nov. 2013
Firstpage
3167
Lastpage
3175
Abstract
A new setup for exposure of human cells in vitro at 37 °C to pulse-modulated 300 and 500 MHz signals of future magnetic resonance imaging (MRI) systems is designed, built up, and characterized. Two dipole antennas, specifically designed for ultrahigh field MRI, are used as radiating structures. The electromagnetic (EM) field distribution inside the incubator containing the cells is computed, and it is shown to be in a good agreement with measurements. The electric field at the cell level is quantified numerically. Local, 1-g average, and averaged over the culture medium volume SAR are provided along with the standard deviation values for each well. Temperature increments are measured inside the culture medium during the exposure using an optical fiber thermometer. Then, we identify the pulse parameters corresponding to the thermal threshold of 1 °C, usually considered as a threshold for thermally induced biological effects. For these parameters, the induction of heat shock proteins is assessed to biologically verify a potential thermal response of cells. The data demonstrate that, under the considered experimental conditions, exposure to pulse-modulated radiations emulating typical ultrahigh field MRI signals, corresponding to temperature increments below 1 °C, does not trigger any heat shock response in human brain cells.
Keywords
biological effects of microwaves; biomedical MRI; cellular effects of radiation; dosimetry; proteins; biocompatibility; cell level electric field; culture medium; dosimetry; electromagnetic field distribution; exposure system; frequency 300 MHz; frequency 500 MHz; heat shock proteins; human cells; incubator; magnetic resonance imaging; optical fiber thermometer; pulse modulated RF signals; temperature 1 degC; temperature 37 degC; thermal threshold; ultrahigh field MRI; Antenna measurements; Dipole antennas; Magnetic field measurement; Magnetic resonance imaging; RF signals; Radio frequency; Temperature measurement; Biological effects; dosimetry; exposure system; in vitro studies; magnetic resonance imaging (MRI); ultrahigh field; Cell Culture Techniques; Cell Line, Tumor; Cell Physiological Phenomena; Electromagnetic Fields; Heat-Shock Proteins; Humans; Models, Biological; Radio Waves; Radiometry; Temperature;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2013.2270371
Filename
6544610
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