Center for Quantitative Systems Biology, Hong Kong Baptist University, Hong Kong, China; Department of Physics, Hong Kong Baptist University, Hong Kong, China.
Bioelectrochemistry. 2013 Dec;94:61-8. doi: 10.1016/j.bioelechem.2013.06.001. Epub 2013 Jun 13.
Alternating electric (AC) fields are known to activate tumor cell death, but the underlying cellular mechanisms are poorly understood. We thus combined live-cell imaging with computational modeling to investigate the dynamic interactions between AC fields and cultured mammalian cells. Our results showed extensive cell death activated via two distinct mechanisms. At frequency range of 100-300 kHz and 800-1000 kHz, AC fields triggered prolonged mitotic arrest followed by apoptosis, and the cell death kinetics showed linear dependence on both field frequency and intensity. However, at intermediate frequencies, from 300 kHz to 800 kHz, cells died as a result of field-induced surface detachment, and the process exhibited a resonance frequency. Based on models of induced dielectric polarization and charge oscillation, we simulated the functional dependence of cell death kinetics on field frequency and intensity for both the linear and resonance response regimes. By comparing the simulated and experimental results, we not only determined the crucial electrical properties of mammalian cells that govern their interaction with AC fields but also acquired novel mechanistic understanding of the resulting cell death processes, which provides important new insight for potentially utilizing AC fields as an alternative anti-tumor remedy.
交变电场(AC)已知可激活肿瘤细胞死亡,但细胞死亡的潜在机制仍不清楚。因此,我们将活细胞成像与计算建模相结合,研究了 AC 场与培养的哺乳动物细胞之间的动态相互作用。我们的结果表明,通过两种不同的机制激活了广泛的细胞死亡。在 100-300 kHz 和 800-1000 kHz 的频率范围内,AC 场引发了长时间的有丝分裂阻滞,随后发生细胞凋亡,细胞死亡动力学与场频率和强度呈线性关系。然而,在中间频率范围内(300 kHz 至 800 kHz),细胞因场诱导的表面脱离而死亡,并且该过程表现出共振频率。基于感应介电极化和电荷振荡模型,我们模拟了线性和共振响应区域中细胞死亡动力学对场频率和强度的功能依赖性。通过比较模拟和实验结果,我们不仅确定了控制哺乳动物细胞与 AC 场相互作用的关键电特性,而且还获得了对细胞死亡过程的新的机制理解,这为潜在地利用 AC 场作为替代抗肿瘤疗法提供了重要的新见解。