How to discern external acoustic waves in a piezoelectric neuron under noise?

IF 1.8 4区 生物学 Q3 BIOPHYSICS
Ying Xie, Jun Ma
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引用次数: 11

Abstract

Biological neurons keep sensitive to external stimuli and appropriate firing modes can be triggered to give effective response to external chemical and physical signals. A piezoelectric neural circuit can perceive external voice and nonlinear vibration by generating equivalent piezoelectric voltage, which can generate an equivalent trans-membrane current for inducing a variety of firing modes in the neural activities. Biological neurons can receive external stimuli from more ion channels and synapse synchronously, but the further encoding and priority in mode selection are competitive. In particular, noisy disturbance and electromagnetic radiation make it more difficult in signals identification and mode selection in the firing patterns of neurons driven by multi-channel signals. In this paper, two different periodic signals accompanied by noise are used to excite the piezoelectric neural circuit, and the signal processing in the piezoelectric neuron driven by acoustic waves under noise is reproduced and explained. The physical energy of the piezoelectric neural circuit and Hamilton energy in the neuron driven by mixed signals are calculated to explain the biophysical mechanism of auditory neuron when external stimuli are applied. It is found that the neuron prefers to respond to the external stimulus with higher physical energy and the signal which can increase the Hamilton energy of the neuron. For example, stronger inputs used to inject higher energy and it is detected and responded more sensitively. The involvement of noise is helpful to detect the external signal under stochastic resonance, and the additive noise changes the excitability of neuron as the external stimulus. The results indicate that energy controls the firing patterns and mode selection in neurons, and it provides clues to control the neural activities by injecting appropriate energy into the neurons and network.

Abstract Image

如何在噪声下辨别压电神经元中的外部声波?
生物神经元对外界刺激保持敏感,可以触发适当的放电模式,对外界的化学和物理信号作出有效的反应。压电神经电路通过产生等效压电电压来感知外界声音和非线性振动,而等效压电电压产生等效跨膜电流,诱导神经活动中的多种放电模式。生物神经元可以同时接受来自多个离子通道和突触的外部刺激,但其进一步的编码和模式选择的优先级是竞争性的。特别是在多通道信号驱动下的神经元放电模式中,噪声干扰和电磁辐射给信号识别和模式选择带来了困难。本文采用两种不同周期的噪声信号来激励压电神经电路,再现并解释了噪声下声波驱动压电神经元的信号处理过程。通过计算压电神经回路的物理能量和混合信号驱动下神经元的Hamilton能量来解释外界刺激下听觉神经元的生物物理机制。研究发现,神经元更倾向于对具有较高物理能量的外部刺激和能增加神经元汉米尔顿能量的信号作出反应。例如,使用更强的输入来注入更高的能量,它被检测到并更敏感地响应。噪声的参与有助于在随机共振下检测外部信号,而加性噪声作为外部刺激改变了神经元的兴奋性。结果表明,能量控制着神经元的放电模式和模式选择,为通过向神经元和网络注入适当的能量来控制神经活动提供了线索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biological Physics
Journal of Biological Physics 生物-生物物理
CiteScore
3.00
自引率
5.60%
发文量
20
审稿时长
>12 weeks
期刊介绍: Many physicists are turning their attention to domains that were not traditionally part of physics and are applying the sophisticated tools of theoretical, computational and experimental physics to investigate biological processes, systems and materials. The Journal of Biological Physics provides a medium where this growing community of scientists can publish its results and discuss its aims and methods. It welcomes papers which use the tools of physics in an innovative way to study biological problems, as well as research aimed at providing a better understanding of the physical principles underlying biological processes.
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