Zhao Jun, Ma Jing, Wang Xiaoxuan, Zhang Bingqian
School of Health Sciences & Biomedical Engineering, Hebei University of Technology, Tianjin, China.
Hebei Key Laboratory of Bioelectromagnetics and Neural Engineering, Hebei University of Technology, Tianjin, China.
Electromagn Biol Med. 2025 Jan 2;44(1):1-16. doi: 10.1080/15368378.2024.2438607. Epub 2024 Dec 12.
The advantages of Magnetic Coupling Resonant Wireless Power Transfer (MCR-WPT) technology include long transmission distance, high efficiency, and high power. Therefore, it shows great potential in the field of smart home. This study aims to explore the specific impacts on the cognitive functions and neuronal excitation of mice exposed to the electromagnetic fields (EMF) emitted by the MCR-WPT platform, thereby providing biological solid experimental evidence for developing Wireless Power Transfer (WPT) technology. The research employed a frequency of 90 kHz, which is suitable for wireless charging of household appliances. Mice were exposed to EMF emitted by the WPT biosafety experimental platform for various durations. And they were divided into four groups (control group, 2-week exposure group, 4-week exposure group, and 8-week exposure group). Upon completion of the exposure period, the study employed the Novel Object Recognition (NOR) test to evaluate the learning and memory capabilities of the animals. Following this, whole-cell patch-clamp experiments were conducted to record the action potentials (AP) and potassium currents. It was revealed by our observations that, in comparison to mice without electromagnetic exposure, long-term exposure to WPT-emitted EMF resulted in accelerated release of action potentials, inhibited the activation of Voltage-Gated Potassium Channels (VGKCs) current, accelerated the deactivation of K channel current, and thus significantly improved the excitability of neurons in the dentate gyrus (DG) of the hippocampus of mice, but did not significantly affect cognitive function.
磁耦合谐振无线电力传输(MCR-WPT)技术具有传输距离长、效率高和功率大等优点。因此,它在智能家居领域展现出巨大潜力。本研究旨在探讨暴露于MCR-WPT平台发射的电磁场(EMF)对小鼠认知功能和神经元兴奋性的具体影响,从而为无线电力传输(WPT)技术的发展提供可靠的生物学实验证据。该研究采用了90kHz的频率,这适用于家用电器的无线充电。将小鼠暴露于WPT生物安全实验平台发射的EMF中不同时长。并将它们分为四组(对照组、2周暴露组、4周暴露组和8周暴露组)。暴露期结束后,该研究采用新物体识别(NOR)测试来评估动物的学习和记忆能力。在此之后,进行全细胞膜片钳实验以记录动作电位(AP)和钾电流。我们的观察结果显示,与未受电磁暴露的小鼠相比,长期暴露于WPT发射的EMF会导致动作电位释放加速,抑制电压门控钾通道(VGKC)电流的激活,加速钾通道电流的失活,从而显著提高小鼠海马齿状回(DG)中神经元的兴奋性,但对认知功能没有显著影响。