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海马体CA1锥体神经元中相位进动的树突机制。

Dendritic mechanisms of phase precession in hippocampal CA1 pyramidal neurons.

作者信息

Magee J C

机构信息

Neuroscience Center, Louisiana State University Medical Center, New Orleans, Louisiana 70112, USA.

出版信息

J Neurophysiol. 2001 Jul;86(1):528-32. doi: 10.1152/jn.2001.86.1.528.

Abstract

Dual whole-cell patch clamp recordings from the soma and dendrites of CA1 pyramidal neurons located in hippocampal slices of adult rats were used to examine the potential mechanisms of phase precession. To mimic phasic synaptic input, 5-Hz sine wave current injections were simultaneously delivered both to the soma and apical dendrites (dendritic current was 180 degrees out-of-phase with soma). Increasing the amplitude of the dendritic current injection caused somatic action potential initiation to advance in time (move forward up to 180 degrees). The exact pattern of phase advancement is dependent on the dendritic location of input, with more distal input causing a more gradual temporal shift in spike initiation and a smaller increase in spike number. Patterned stimulation of Schaffer collateral/perforant path synaptic input can produce phase precession that is very similar to that observed with sine wave current injections. Finally, the exact amount of synaptic input required to produce phase advancement was found to be regulated by dendritic voltage-gated ion channels. Together, these data demonstrate that the summation of primarily proximal inhibition with an increasing amount of out-of-phase, primarily distal excitation can result in a form of phase advancement similar to that seen during theta activity in the intact hippocampus.

摘要

利用成年大鼠海马切片中CA1锥体神经元胞体和树突的双全细胞膜片钳记录来研究相位进动的潜在机制。为模拟相位性突触输入,向胞体和顶端树突同时施加5赫兹的正弦波电流注入(树突电流与胞体电流相位相差180度)。增加树突电流注入的幅度会使胞体动作电位的起始时间提前(向前移动多达180度)。相位提前的确切模式取决于输入的树突位置,更远处的输入会导致动作电位起始时间的逐渐变化以及动作电位数量的较小增加。对海马伞/穿通通路突触输入进行模式化刺激可产生与正弦波电流注入所观察到的非常相似的相位进动。最后,发现产生相位提前所需的精确突触输入量受树突电压门控离子通道的调节。总之,这些数据表明,主要近端抑制与逐渐增加的异相、主要远端兴奋的总和可导致一种类似于完整海马体中θ活动期间所见的相位提前形式。

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