论文标题
具有突触MC中的通用三态受体的信号接收
Signal Reception With Generic Three-State Receptors in Synaptic MC
论文作者
论文摘要
通信工程师研究突触通信的原因有两个。一种是启用需要与神经元接口的新型神经工程应用。另一个原因是为合成分子通信系统的设计汲取灵感。这两个目标都需要了解如何在突触接收器(RX)上感测和转导的化学突触信号。尽管突触分子通信(SMC)中的信号接收在很大程度上取决于突触RXS使用的受体的动力学,但SMC的现有通道模型过于简化受体动力学或采用了限于特定受体类型的复杂,高维动力。两种方法都不促进对不同类型的自然突触的比较分析。在本文中,我们提出了一种新型的SMC确定性通道模型,该模型采用了通用的三态受体模型,该模型捕获了SMC中最重要的受体类型的特征。该模型基于Fick扩散方程的传递函数扩展,并解释了神经递质的释放,扩散和降解以及它们可逆结合到有限的许多通用后突触受体。提出的SMC模型是允许研究主要突触后受体类型对突触信号传播的特征动力学影响的第一个模型。数值结果表明,当专门针对特定的自然受体类型时,所提出的模型确实表现出广泛的生物学上合理的动力学。
Synaptic communication is studied by communication engineers for two main reasons. One is to enable novel neuroengineering applications that require interfacing with neurons. The other reason is to draw inspiration for the design of synthetic molecular communication systems. Both of these goals require understanding of how the chemical synaptic signal is sensed and transduced at the synaptic receiver (Rx). While signal reception in synaptic molecular communication (SMC) depends heavily on the kinetics of the receptors employed by the synaptic Rxs, existing channel models for SMC either oversimplify the receptor kinetics or employ complex, high-dimensional kinetic schemes limited to specific types of receptors. Both approaches do not facilitate a comparative analysis of different types of natural synapses. In this paper, we propose a novel deterministic channel model for SMC which employs a generic three-state receptor model that captures the characteristics of the most important receptor types in SMC. The model is based on a transfer function expansion of Fick's diffusion equation and accounts for release, diffusion, and degradation of neurotransmitters as well as their reversible binding to finitely many generic postsynaptic receptors. The proposed SMC model is the first that allows studying the impact of the characteristic dynamics of the main postsynaptic receptor types on synaptic signal transmission. Numerical results indicate that the proposed model indeed exhibits a wide range of biologically plausible dynamics when specialized to specific natural receptor types.