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Amplification of electromagnetic signals by ion channels.

机译:通过离子通道放大电磁信号。

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摘要

Cells may respond to the exposure of low-frequency electromagnetic fields with changes in cell division, ion influx, chemical reaction rates, etc. The chain of events leading to such responses is difficult to study, mainly because of extremely small energies associated with low-frequency fields, usually much smaller than the thermal noise level. However, the presence of stochastic systems (for instance, ion channels) provides a basis for signal amplification, and could therefore, despite the low signal-to-noise ratio of the primary response, lead to the transmission of weak signals along the signaling pathways of cells. We have explored this possibility for an ion channel model, and we present a theory, based on the formalism of stochastically driven processes, that relates the time averages of the ion channel currents to the amplitude and frequency of the applied signal. It is concluded from this theory that the signal-to-noise ratio increases with the number of channels, the magnitude of the rate constants, and the frequency response of the intracellular sensing system (for instance, a calcium oscillator). The amplification properties of the stochastic system are further deduced from numerical simulations carried out on the model, which consists of multiple identical two-state channels, and the behavior for different parameters is examined. Numerical estimates of the parameters show that under optimum conditions, even very weak low-frequency electromagnetic signals (<100 Hz and down to 100 microT) may be detected in a cellular system with a large number of ion channels.
机译:细胞可能会随着细胞分裂,离子流入,化学反应速率等的变化而对低频电磁场的暴露做出响应。导致这种响应的事件链很难研究,主要是因为与低能量相关的能量极小。频率场,通常比热噪声水平小得多。但是,随机系统(例如离子通道)的存在为信号放大提供了基础,因此,尽管主要响应的信噪比很低,但仍可能导致微弱的信号沿着信号通路传播细胞。我们已经探索了离子通道模型的这种可能性,并基于随机驱动过程的形式主义提出了一种理论,该理论将离子通道电流的时间平均值与所施加信号的幅度和频率相关联。从该理论可以得出结论,信噪比随通道数,速率常数的大小以及细胞内传感系统(例如钙振荡器)的频率响应而增加。由对该模型进行的数值模拟进一步推导了该随机系统的放大特性,该模型由多个相同的两个状态通道组成,并检查了不同参数的行为。参数的数值估计表明,在最佳条件下,即使在具有大量离子通道的蜂窝系统中,甚至可以检测到非常弱的低频电磁信号(<100 Hz且低至100 microT)。

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