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噪声积分发放神经元发放概率的动态变化

Dynamics of the firing probability of noisy integrate-and-fire neurons.

作者信息

Fourcaud Nicolas, Brunel Nicolas

机构信息

Laboratoire de Physique Statistique, Ecole Normale Supérieure, 75231 Paris Cedex 05, France.

出版信息

Neural Comput. 2002 Sep;14(9):2057-110. doi: 10.1162/089976602320264015.

Abstract

Cortical neurons in vivo undergo a continuous bombardment due to synaptic activity, which acts as a major source of noise. Here, we investigate the effects of the noise filtering by synapses with various levels of realism on integrate-and-fire neuron dynamics. The noise input is modeled by white (for instantaneous synapses) or colored (for synapses with a finite relaxation time) noise. Analytical results for the modulation of firing probability in response to an oscillatory input current are obtained by expanding a Fokker-Planck equation for small parameters of the problem - when both the amplitude of the modulation is small compared to the background firing rate and the synaptic time constant is small compared to the membrane time constant. We report here the detailed calculations showing that if a synaptic decay time constant is included in the synaptic current model, the firing-rate modulation of the neuron due to an oscillatory input remains finite in the high-frequency limit with no phase lag. In addition, we characterize the low-frequency behavior and the behavior of the high-frequency limit for intermediate decay times. We also characterize the effects of introducing a rise time to the synaptic currents and the presence of several synaptic receptors with different kinetics. In both cases, we determine, using numerical simulations, an effective decay time constant that describes the neuronal response completely.

摘要

体内的皮层神经元由于突触活动而受到持续的轰击,突触活动是主要的噪声源。在此,我们研究具有不同逼真程度的突触对噪声滤波对积分发放神经元动力学的影响。噪声输入由白噪声(用于瞬时突触)或有色噪声(用于具有有限弛豫时间的突触)建模。通过针对问题的小参数展开福克 - 普朗克方程,得到了响应振荡输入电流时发放概率调制的解析结果——当调制幅度相对于背景发放率较小时,且突触时间常数相对于膜时间常数较小时。我们在此报告详细的计算结果,表明如果在突触电流模型中包含突触衰减时间常数,由于振荡输入导致的神经元发放率调制在高频极限下保持有限且无相移。此外,我们描述了中间衰减时间的低频行为和高频极限行为。我们还描述了给突触电流引入上升时间以及存在几种具有不同动力学的突触受体的影响。在这两种情况下,我们通过数值模拟确定了一个有效衰减时间常数,该常数能完全描述神经元的响应。

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