Taghian T, Narmoneva D A, Kogan A B
Department of Physics, University of Cincinnati, 345 Clifton Court, RM 400 Geo/Physics Building, Cincinnati, OH 45221-0011, USA.
Department of Biomedical, Chemical, and Environmental Engineering, University of Cincinnati, 2901 Woodside Dr., ML 0012, Cincinnati, OH 45221, USA.
J R Soc Interface. 2015 Jun 6;12(107). doi: 10.1098/rsif.2015.0153.
Regulation of cell function by a non-thermal, physiological-level electromagnetic field has potential for vascular tissue healing therapies and advancing hybrid bioelectronic technology. We have recently demonstrated that a physiological electric field (EF) applied wirelessly can regulate intracellular signalling and cell function in a frequency-dependent manner. However, the mechanism for such regulation is not well understood. Here, we present a systematic numerical study of a cell-field interaction following cell exposure to the external EF. We use a realistic experimental environment that also recapitulates the absence of a direct electric contact between the field-sourcing electrodes and the cells or the culture medium. We identify characteristic regimes and present their classification with respect to frequency, location, and the electrical properties of the model components. The results show a striking difference in the frequency dependence of EF penetration and cell response between cells suspended in an electrolyte and cells attached to a substrate. The EF structure in the cell is strongly inhomogeneous and is sensitive to the physical properties of the cell and its environment. These findings provide insight into the mechanisms for frequency-dependent cell responses to EF that regulate cell function, which may have important implications for EF-based therapies and biotechnology development.
非热生理水平电磁场对细胞功能的调节在血管组织愈合治疗和推动混合生物电子技术发展方面具有潜力。我们最近证明,无线施加的生理电场(EF)能够以频率依赖的方式调节细胞内信号传导和细胞功能。然而,这种调节机制尚未得到充分理解。在此,我们对细胞暴露于外部EF后的细胞-场相互作用进行了系统的数值研究。我们使用了一个逼真的实验环境,该环境还重现了场源电极与细胞或培养基之间不存在直接电接触的情况。我们确定了特征区域,并根据频率、位置以及模型组件的电学性质对其进行了分类。结果表明,悬浮在电解质中的细胞与附着在基质上的细胞在EF穿透和细胞反应的频率依赖性方面存在显著差异。细胞内的EF结构强烈不均匀,并且对细胞及其环境的物理性质敏感。这些发现为调节细胞功能的EF频率依赖性细胞反应机制提供了见解,这可能对基于EF的治疗和生物技术发展具有重要意义。