Centre for Signal Processing in Neuroimaging and Systems Neuroscience, Department of Psychology, University of Sheffield, S10 2TP, UK.
Neuroimage. 2012 Oct 15;63(1):81-94. doi: 10.1016/j.neuroimage.2012.06.040. Epub 2012 Jun 30.
We have developed a model of the local field potential (LFP) based on the conservation of charge, the independence principle of ionic flows and the classical Hodgkin-Huxley (HH) type intracellular model of synaptic activity. Insights were gained through the simulation of the HH intracellular model on the nonlinear relationship between the balance of synaptic conductances and that of post-synaptic currents. The latter is dependent not only on the former, but also on the temporal lag between the excitatory and inhibitory conductances, as well as the strength of the afferent signal. The proposed LFP model provides a method for decomposing the LFP recordings near the soma of layer IV pyramidal neurons in the barrel cortex of anaesthetised rats into two highly correlated components with opposite polarity. The temporal dynamics and the proportional balance of the two components are comparable to the excitatory and inhibitory post-synaptic currents computed from the HH model. This suggests that the two components of the LFP reflect the underlying excitatory and inhibitory post-synaptic currents of the local neural population. We further used the model to decompose a sequence of evoked LFP responses under repetitive electrical stimulation (5Hz) of the whisker pad. We found that as neural responses adapted, the excitatory and inhibitory components also adapted proportionately, while the temporal lag between the onsets of the two components increased during frequency adaptation. Our results demonstrated that the balance between neural excitation and inhibition can be investigated using extracellular recordings. Extension of the model to incorporate multiple compartments should allow more quantitative interpretations of surface Electroencephalography (EEG) recordings into components reflecting the excitatory, inhibitory and passive ionic current flows generated by local neural populations.
我们基于电荷守恒、离子流独立性原理以及经典 Hodgkin-Huxley(HH)型突触活动的细胞内模型,开发了一种局部场电位(LFP)模型。通过对 HH 细胞内模型的模拟,我们深入了解了突触电导和突触后电流之间的非线性关系。后者不仅取决于前者,还取决于兴奋性和抑制性电导之间的时间滞后以及传入信号的强度。所提出的 LFP 模型为在麻醉大鼠皮层 IV 层锥体神经元的胞体附近的 LFP 记录分解成两个具有相反极性的高度相关的分量提供了一种方法。这两个分量的时间动态和比例平衡与从 HH 模型计算出的兴奋性和抑制性突触后电流相当。这表明 LFP 的两个分量反映了局部神经群体的潜在兴奋性和抑制性突触后电流。我们进一步使用该模型对胡须垫的重复电刺激(5Hz)下诱发的 LFP 响应序列进行了分解。我们发现,随着神经响应的适应,兴奋性和抑制性分量也相应地适应,而在频率适应过程中,两个分量的起始时间之间的时间滞后增加。我们的结果表明,使用细胞外记录可以研究神经兴奋和抑制之间的平衡。该模型的扩展,纳入多个隔室,应该允许对表面脑电图(EEG)记录进行更定量的解释,以反映局部神经群体产生的兴奋性、抑制性和被动离子电流分量。