Farashi Sajjad, Sasanpour Pezhman, Rafii-Tabar Hashem
a Department of Medical Physics & Biomedical Engineering, School of Medicine , Shahid Beheshti University of Medical Sciences , Tehran , Iran.
b Computational Nano-Bioelectromagnetics Research Group, School of Nano-Science , Institute for Research in Fundamental Sciences (IPM) , Tehran , Iran.
Int J Radiat Biol. 2018 Nov;94(11):1038-1048. doi: 10.1080/09553002.2018.1478162. Epub 2018 Oct 15.
Although the effect of electromagnetic fields on biological systems has attracted attraction in recent years, there has not been any conclusive result concerning the effects of interaction and the underlying mechanisms involved. Besides the complexity of biological systems, the parameters of the applied electromagnetic field have not been estimated in most of the experiments.
In this study, we have used computational approach in order to find the excitation parameters of an external electric field which produces sensible effects in the function of insulin secretory machinery, whose failure triggers the diabetes disease. A mathematical model of the human β-cell has been used and the effects of external electric fields with different amplitudes, frequencies and wave shapes have been studied.
The results from our simulations show that the external electric field can influence the membrane electrical activity and perhaps the insulin secretion when its amplitude exceeds a threshold value. Furthermore, our simulations reveal that different waveforms have distinct effects on the β-cell membrane electrical activity and the characteristic features of the excitation like frequency would change the interaction mechanism.
The results could help the researchers to investigate the possible role of the environmental electromagnetic fields on the promotion of diabetes disease.
尽管近年来电磁场对生物系统的影响已引起关注,但关于相互作用的影响及相关潜在机制尚无定论。除生物系统的复杂性外,大多数实验中所施加电磁场的参数并未得到评估。
在本研究中,我们采用计算方法来寻找能对胰岛素分泌机制功能产生显著影响的外部电场的激发参数,胰岛素分泌机制失灵会引发糖尿病。我们使用了人类β细胞的数学模型,并研究了不同幅度、频率和波形的外部电场的影响。
我们的模拟结果表明,当外部电场幅度超过阈值时,它会影响细胞膜电活动,或许还会影响胰岛素分泌。此外,我们的模拟还揭示,不同波形对β细胞膜电活动有不同影响,且像频率这样的激发特征会改变相互作用机制。
这些结果有助于研究人员探究环境电磁场在糖尿病发病过程中可能起到的作用。