Bruyns-Haylett Michael, Luo Jingjing, Kennerley Aneurin J, Harris Sam, Boorman Luke, Milne Elizabeth, Vautrelle Nicolas, Hayashi Yurie, Whalley Benjamin J, Jones Myles, Berwick Jason, Riera Jorge, Zheng Ying
School of Systems Engineering, Whiteknights, University of Reading, Reading RG6 7AY, United Kingdom.
Department of Psychology, University of Sheffield, Sheffield S10 2TP, United Kingdom.
Neuroimage. 2017 Feb 1;146:575-588. doi: 10.1016/j.neuroimage.2016.09.034. Epub 2016 Sep 16.
It is generally recognised that event related potentials (ERPs) of electroencephalogram (EEG) primarily reflect summed post-synaptic activity of the local pyramidal neural population(s). However, it is still not understood how the positive and negative deflections (e.g. P1, N1 etc) observed in ERP recordings are related to the underlying excitatory and inhibitory post-synaptic activity. We investigated the neurogenesis of P1 and N1 in ERPs by pharmacologically manipulating inhibitory post-synaptic activity in the somatosensory cortex of rodent, and concurrently recording EEG and local field potentials (LFPs). We found that the P1 wave in the ERP and LFP of the supragranular layers is determined solely by the excitatory post-synaptic activity of the local pyramidal neural population, as is the initial segment of the N1 wave across cortical depth. The later part of the N1 wave was modulated by inhibitory post-synaptic activity, with its peak and the pulse width increasing as inhibition was reduced. These findings suggest that the temporal delay of inhibition with respect to excitation observed in intracellular recordings is also reflected in extracellular field potentials (FPs), resulting in a temporal window during which only excitatory post-synaptic activity and leak channel activity are recorded in the ERP and evoked LFP time series. Based on these findings, we provide clarification on the interpretation of P1 and N1 in terms of the excitatory and inhibitory post-synaptic activities of the local pyramidal neural population(s).
人们普遍认为,脑电图(EEG)的事件相关电位(ERP)主要反映局部锥体神经群体的突触后活动总和。然而,目前仍不清楚在ERP记录中观察到的正向和负向偏转(如P1、N1等)与潜在的兴奋性和抑制性突触后活动之间的关系。我们通过药理学方法操纵啮齿动物体感皮层的抑制性突触后活动,并同时记录EEG和局部场电位(LFP),研究了ERP中P1和N1的神经发生。我们发现,颗粒上层的ERP和LFP中的P1波仅由局部锥体神经群体的兴奋性突触后活动决定,N1波在整个皮层深度的初始段也是如此。N1波的后期部分受抑制性突触后活动调节,随着抑制作用减弱,其峰值和脉冲宽度增加。这些发现表明,细胞内记录中观察到的抑制相对于兴奋的时间延迟也反映在细胞外场电位(FP)中,导致在一个时间窗口内,ERP和诱发的LFP时间序列中仅记录兴奋性突触后活动和漏通道活动。基于这些发现,我们从局部锥体神经群体的兴奋性和抑制性突触后活动方面对P1和N1的解释进行了澄清。