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一种用于峰频率适应的通用模型。

A universal model for spike-frequency adaptation.

作者信息

Benda Jan, Herz Andreas V M

机构信息

Department of Physics, University of Ottawa, Ottawa, Ontario, K1N 6N5, Canada.

出版信息

Neural Comput. 2003 Nov;15(11):2523-64. doi: 10.1162/089976603322385063.

DOI:10.1162/089976603322385063
PMID:14577853
Abstract

Spike-frequency adaptation is a prominent feature of neural dynamics. Among other mechanisms, various ionic currents modulating spike generation cause this type of neural adaptation. Prominent examples are voltage-gated potassium currents (M-type currents), the interplay of calcium currents and intracellular calcium dynamics with calcium-gated potassium channels (AHP-type currents), and the slow recovery from inactivation of the fast sodium current. While recent modeling studies have focused on the effects of specific adaptation currents, we derive a universal model for the firing-frequency dynamics of an adapting neuron that is independent of the specific adaptation process and spike generator. The model is completely defined by the neuron's onset f-I curve, the steady-state f-I curve, and the time constant of adaptation. For a specific neuron, these parameters can be easily determined from electrophysiological measurements without any pharmacological manipulations. At the same time, the simplicity of the model allows one to analyze mathematically how adaptation influences signal processing on the single-neuron level. In particular, we elucidate the specific nature of high-pass filter properties caused by spike-frequency adaptation. The model is limited to firing frequencies higher than the reciprocal adaptation time constant and to moderate fluctuations of the adaptation and the input current. As an extension of the model, we introduce a framework for combining an arbitrary spike generator with a generalized adaptation current.

摘要

峰频率适应是神经动力学的一个显著特征。在其他机制中,各种调节峰电位产生的离子电流会导致这种类型的神经适应。突出的例子包括电压门控钾电流(M型电流)、钙电流与细胞内钙动力学以及钙门控钾通道之间的相互作用(AHP型电流),以及快速钠电流失活后的缓慢恢复。虽然最近的建模研究集中在特定适应电流的影响上,但我们推导了一个适用于适应神经元放电频率动力学的通用模型,该模型独立于特定的适应过程和峰电位发生器。该模型完全由神经元的起始f-I曲线、稳态f-I曲线和适应时间常数定义。对于特定的神经元,这些参数可以通过电生理测量轻松确定,无需任何药理学操作。同时,该模型的简单性使人们能够从数学上分析适应如何在单神经元水平上影响信号处理。特别是,我们阐明了由峰频率适应引起的高通滤波器特性的具体性质。该模型限于高于倒数适应时间常数的放电频率以及适应和输入电流的适度波动。作为该模型的扩展,我们引入了一个框架,用于将任意峰电位发生器与广义适应电流相结合。

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