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CA1 锥体神经元的尖峰相位锁定依赖于背景电导和放电率。

Spike phase locking in CA1 pyramidal neurons depends on background conductance and firing rate.

机构信息

Brain Institute, Department of Bioengineering, University of Utah, Salt Lake City, Utah 84112, USA.

出版信息

J Neurosci. 2012 Oct 10;32(41):14374-88. doi: 10.1523/JNEUROSCI.0842-12.2012.

Abstract

Oscillatory activity in neuronal networks correlates with different behavioral states throughout the nervous system, and the frequency-response characteristics of individual neurons are believed to be critical for network oscillations. Recent in vivo studies suggest that neurons experience periods of high membrane conductance, and that action potentials are often driven by membrane potential fluctuations in the living animal. To investigate the frequency-response characteristics of CA1 pyramidal neurons in the presence of high conductance and voltage fluctuations, we performed dynamic-clamp experiments in rat hippocampal brain slices. We drove neurons with noisy stimuli that included a sinusoidal component ranging, in different trials, from 0.1 to 500 Hz. In subsequent data analysis, we determined action potential phase-locking profiles with respect to background conductance, average firing rate, and frequency of the sinusoidal component. We found that background conductance and firing rate qualitatively change the phase-locking profiles of CA1 pyramidal neurons versus frequency. In particular, higher average spiking rates promoted bandpass profiles, and the high-conductance state promoted phase-locking at frequencies well above what would be predicted from changes in the membrane time constant. Mechanistically, spike rate adaptation and frequency resonance in the spike-generating mechanism are implicated in shaping the different phase-locking profiles. Our results demonstrate that CA1 pyramidal cells can actively change their synchronization properties in response to global changes in activity associated with different behavioral states.

摘要

神经元网络中的振荡活动与神经系统中的不同行为状态相关,并且个体神经元的频率响应特征被认为对网络振荡至关重要。最近的活体研究表明,神经元经历高膜电导期,并且在活体动物中,动作电位通常由膜电位波动驱动。为了研究在高电导和电压波动存在下 CA1 锥体神经元的频率响应特征,我们在大鼠海马脑片上进行了动态钳实验。我们用包含正弦分量的噪声刺激驱动神经元,在不同的试验中,正弦分量的频率范围从 0.1 到 500 Hz。在后续的数据分析中,我们确定了动作电位相对于背景电导、平均发放率和正弦分量频率的锁相谱。我们发现,背景电导和发放率定性地改变了 CA1 锥体神经元相对于频率的锁相谱。特别是,较高的平均放电率促进了带通谱,而高电导状态促进了频率锁定,其频率远高于膜时间常数变化所预测的频率。从机制上讲,在产生机制中的尖峰率适应和频率共振涉及到形成不同锁相谱的形状。我们的结果表明,CA1 锥体细胞可以主动改变其同步特性,以响应与不同行为状态相关的整体活动变化。

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