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Signal transduction across alamethicin ion channels in the presence of noise.

机译:在存在噪声的情况下通过阿拉美霉素离子通道的信号转导。

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摘要

We have studied voltage-dependent ion channels of alamethicin reconstituted into an artificial planar lipid bilayer membrane from the point of view of electric signal transduction. Signal transduction properties of these channels are highly sensitive to the external electric noise. Specifically, addition of bandwidth-restricted "white" noise of 10-20 mV (r.m.s.) to a small sine wave input signal increases the output signal by approximately 20-40 dB conserving, and even slightly increasing, the signal-to-noise ratio at the system output. We have developed a small-signal adiabatic theory of stochastic resonance for a threshold-free system of voltage-dependent ion channels. This theory describes our main experimental findings giving good qualitative understanding of the underlying mechanism. It predicts the right value of the output signal-to-noise ratio and provides a reliable estimate for the noise intensity corresponding to its maximum. Our results suggest that the alamethicin channel in a lipid bilayer is a good model system for studies of mechanisms of primary electrical signal processing in biology showing an important feature of signal transduction improvement by a fluctuating environment.
机译:从电信号转导的角度,我们已经研究了重构为人工平面脂质双层膜的alamethicin的电压依赖性离子通道。这些通道的信号转导特性对外部电噪声高度敏感。具体而言,将带宽受限的10-20 mV(rms)的“白”噪声添加到小的正弦波输入信号中,可使输出信号增加大约20-40 dB,甚至保持信噪比甚至略微增加在系统输出。我们已经开发出了一种无阈值的依赖电压的离子通道系统的随机共振小信号绝热理论。该理论描述了我们的主要实验发现,对潜在的机理有很好的定性理解。它可以预测输出信噪比的正确值,并提供可靠的噪声强度估计值(对应于其最大值)。我们的结果表明,脂质双层中的乐果霉素通道是研究生物学中主要电信号处理机制的良好模型系统,显示出波动环境改善信号转导的重要特征。

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