Kanemaki Miki, Shimizu Hisae O, Inujima Hiroshi, Miyake Takeo, Shimizu Koichi
Graduate School of Information, Production and Systems, Waseda University, Kitakyushu, Japan.
Graduate School of Health Science, Hokkaido University of Science, Sapporo, Japan.
Bioelectromagnetics. 2022 Apr;43(3):149-159. doi: 10.1002/bem.22395.
To evaluate hematological effects of direct current (DC) and alternating current (AC) extremely low frequency (ELF) electric field exposure, this study investigated red blood cell (RBC) movement in whole blood. Video images of RBCs were recorded under a microscope using specially designed electrode systems. Video analysis software was then used to measure the RBC velocity. The noise level and measurement system stability were confirmed based on results of a no-field exposure experiment. Using the electrode system to produce a non-homogeneous electric field, different movements were found to occur in DC and AC field exposure. The RBCs moved in the directions of the electric field and the gradient of field distribution, respectively, in the DC and AC fields. Dependences of the RBC velocity on the field strength were, respectively, linear and quadratic in the DC and AC fields. These results suggest that electrophoretic and dielectrophoretic movements were, respectively, dominant in the DC and AC fields. The magnitude of the electric field necessary to cause these effects was found to be 10 -10 times greater than the internationally publicized guideline for human safety. © 2022 Bioelectromagnetics Society.
为评估直流(DC)和交流(AC)极低频(ELF)电场暴露对血液学的影响,本研究调查了全血中红细胞(RBC)的运动。使用专门设计的电极系统在显微镜下记录红细胞的视频图像。然后使用视频分析软件测量红细胞速度。基于无场暴露实验的结果确认了噪声水平和测量系统稳定性。使用电极系统产生非均匀电场,发现在直流和交流场暴露中会出现不同的运动。在直流和交流场中,红细胞分别沿电场方向和场分布梯度方向移动。在直流和交流场中,红细胞速度对场强的依赖性分别为线性和二次关系。这些结果表明,电泳和介电泳运动分别在直流和交流场中占主导地位。发现引起这些效应所需的电场强度比国际公布的人类安全指南大10 - 10倍。© 2022生物电磁学会。