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Influence of extracellular oscillations on neural communication: a computational perspective

机译:细胞外振荡对神经通讯的影响:计算的角度

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摘要

Neural communication generates oscillations of electric potential in the extracellular medium. In feedback, these oscillations affect the electrochemical processes within the neurons, influencing the timing and the number of action potentials. It is unclear whether this influence should be considered only as noise or it has some functional role in neural communication. Through computer simulations we investigated the effect of various sinusoidal extracellular oscillations on the timing and number of action potentials. Each simulation is based on a multicompartment model of a single neuron, which is stimulated through spatially distributed synaptic activations. A thorough analysis is conducted on a large number of simulations with different models of CA3 and CA1 pyramidal neurons which are modeled using realistic morphologies and active ion conductances. We demonstrated that the influence of the weak extracellular oscillations, which are commonly present in the brain, is rather stochastic and modest. We found that the stronger fields, which are spontaneously present in the brain only in some particular cases (e.g., during seizures) or that can be induced externally, could significantly modulate spike timings.
机译:神经通讯在细胞外介质中产生电势振荡。在反馈中,这些振荡会影响神经元内的电化学过程,从而影响动作电位的时间和数量。尚不清楚这种影响是否应仅视为噪声,或在神经沟通中是否具有某些功能。通过计算机模拟,我们研究了各种正弦形细胞外振荡对动作电位的时间和数量的影响。每个模拟都基于单个神经元的多室模型,该模型通过空间分布的突触激活来刺激。使用大量不同的CA3和CA1锥体神经元模型对大量模拟进行了全面分析,这些模型使用逼真的形态和活性离子电导率进行建模。我们证明了通常在大脑中存在的弱的细胞外振荡的影响是相当随机和适度的。我们发现仅在某些特定情况下(例如在癫痫发作期间)自发地存在于大脑中或可以在外部诱发的更强的磁场可以显着调节尖峰时间。

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