Physiological Laboratory, Department of Physiology, Development and Neuroscience, University of Cambridge, Downing Street, Cambridge CB2 3EG, UK.
J Physiol. 2010 Mar 1;588(Pt 5):785-97. doi: 10.1113/jphysiol.2009.180851. Epub 2010 Jan 5.
Gamma frequency oscillations (30-100 Hz) are prominent in the hippocampal EEG signal during active network states. An intrahippocampal gamma generator has been identified in the CA3 region. To understand the mechanism of oscillation generation, both the rhythm and the current generators must be identified. While earlier work has elucidated mechanisms of rhythm generation, little attention has been given to identifying the CA3 gamma current generator. Here, we aimed to identify a current generator underlying cholinergically induced gamma frequency oscillations in vitro. To this end, we analysed the instantaneous fluctuations in the wavelet amplitude of the field potential oscillation recorded in the stratum pyramidale, and concomitantly recorded action potentials and synaptic input in individual, anatomically identified neurons. The data revealed that perisomatic inhibitory currents in pyramidal cells generated the majority of the field potential. Pyramidal cell action currents also contributed to the field. In contrast, we found no evidence that excitatory currents contribute significantly to the field oscillations in this model. The moment-by-moment analysis of the dynamics of the field potential presented here provides insight into the distinct contributions of synaptic and action currents to the EEG signal and sheds light on the changing balance of excitation and inhibition during cholinergically induced gamma frequency oscillations.
γ 频带振荡(30-100Hz)在活跃网络状态下的海马 EEG 信号中表现明显。已经在 CA3 区域确定了海马内 γ 发生器。为了理解振荡产生的机制,必须识别节律和电流发生器。虽然早期的工作已经阐明了节律产生的机制,但很少关注 CA3 γ 电流发生器的识别。在这里,我们旨在确定体外胆碱能诱导的 γ 频带振荡的电流发生器。为此,我们分析了在单个解剖学上确定的神经元中记录的在棘突层中记录的场电位振荡的小波幅度的瞬时波动,以及同时记录的动作电位和突触输入。数据表明,在锥体细胞中的胞体抑制电流产生了大部分的场电位。锥体细胞动作电流也对场产生贡献。相比之下,我们没有发现证据表明在这个模型中兴奋性电流对场振荡有显著贡献。此处呈现的场电位动力学的逐点分析提供了对突触和动作电流对 EEG 信号的不同贡献的深入了解,并阐明了在胆碱能诱导的 γ 频带振荡期间兴奋和抑制之间平衡的变化。