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滤波信号的方差:线性反应网络的特征化及其在神经递质动力学中的应用。

Variance of filtered signals: Characterization for linear reaction networks and application to neurotransmission dynamics.

机构信息

Zuse Institute Berlin, Berlin, Germany.

Zuse Institute Berlin, Berlin, Germany; Freie Universität Berlin, Faculty of Mathematics and Computer Science, Berlin, Germany.

出版信息

Math Biosci. 2022 Jan;343:108760. doi: 10.1016/j.mbs.2021.108760. Epub 2021 Dec 6.

Abstract

Neurotransmission at chemical synapses relies on the calcium-induced fusion of synaptic vesicles with the presynaptic membrane. The distance of the synaptic vesicle to the calcium channels determines the release probability and consequently the postsynaptic signal. Suitable models of the process need to capture both the mean and the variance observed in electrophysiological measurements of the postsynaptic current. In this work, we propose a method to directly compute the exact first- and second-order moments for signals generated by a linear reaction network under convolution with an impulse response function, rendering computationally expensive numerical simulations of the underlying stochastic counting process obsolete. We show that the autocorrelation of the process is central for the calculation of the filtered signal's second-order moments, and derive a system of PDEs for the cross-correlation functions (including the autocorrelations) of linear reaction networks with time-dependent rates. Finally, we employ our method to efficiently compare different spatial coarse graining approaches for a specific model of synaptic vesicle fusion. Beyond the application to neurotransmission processes, the developed theory can be applied to any linear reaction system that produces a filtered stochastic signal.

摘要

神经递质在化学突触中的传递依赖于钙离子诱导突触小泡与突触前膜融合。突触小泡与钙离子通道的距离决定了释放概率,进而决定了突触后信号。合适的过程模型需要同时捕捉到突触后电流的电生理测量中观察到的平均值和方差。在这项工作中,我们提出了一种方法,可以直接计算在线性反应网络与脉冲响应函数卷积生成的信号的精确一阶和二阶矩,从而使基础随机计数过程的计算成本高昂的数值模拟变得过时。我们表明,过程的自相关对于过滤信号二阶矩的计算至关重要,并为具有时变速率的线性反应网络的互相关函数(包括自相关函数)推导出了一个偏微分方程组。最后,我们利用我们的方法来有效地比较特定的突触小泡融合模型的不同空间粗粒化方法。除了在神经递质传递过程中的应用之外,所开发的理论还可以应用于产生滤波随机信号的任何线性反应系统。

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