Zugaro Michaël B, Monconduit Lénaïc, Buzsáki György
Center for Molecular and Behavioral Neuroscience, Rutgers, The State University of New Jersey, Newark, New Jersey 07102, USA.
Nat Neurosci. 2005 Jan;8(1):67-71. doi: 10.1038/nn1369. Epub 2004 Dec 12.
Oscillatory spike timing in the hippocampus is regarded as a temporal coding mechanism for space, but the underlying mechanisms are poorly understood. To contrast the predictions of the different models of phase precession, we transiently turned off neuronal discharges for up to 250 ms and reset the phase of theta oscillations by stimulating the commissural pathway in rats. After recovery from silence, phase precession continued. The phase of spikes for the first theta cycle after the perturbation was more advanced than the phase of spikes for the last theta cycle just before the perturbation. These findings indicate that phase advancement that emerges within hippocampal circuitry may be updated at the beginning of each theta cycle by extrahippocampal inputs.
海马体中的振荡尖峰时间被视为空间的一种时间编码机制,但其潜在机制却知之甚少。为了对比不同相位进动模型的预测结果,我们短暂关闭神经元放电长达250毫秒,并通过刺激大鼠的连合通路来重置θ振荡的相位。从沉默状态恢复后,相位进动仍在继续。扰动后第一个θ周期的尖峰相位比扰动前最后一个θ周期的尖峰相位更超前。这些发现表明,海马体回路中出现的相位超前可能在每个θ周期开始时由海马体外输入进行更新。