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作为非线性振荡器的皮质锥体细胞:实验与峰电位生成理论

Cortical pyramidal cells as non-linear oscillators: experiment and spike-generation theory.

作者信息

Brumberg Joshua C, Gutkin Boris S

机构信息

Department of Psychology, Queens College of the City University of New York, Flushing, NY 11367, USA.

出版信息

Brain Res. 2007 Sep 26;1171:122-37. doi: 10.1016/j.brainres.2007.07.028. Epub 2007 Jul 20.

Abstract

Cortical neurons are capable of generating trains of action potentials in response to current injections. These discharges can take different forms, e.g., repetitive firing that adapts during the period of current injection or bursting behaviors. We have used a combined experimental and computational approach to characterize the dynamics leading to action potential responses in single neurons. Specifically we investigated the origin of complex firing patterns in response to sinusoidal current injections. Using a reduced model, the theta-neuron, alongside recordings from cortical pyramidal cells we show that both real and simulated neurons show phase-locking to sine wave stimuli up to a critical frequency, above which period skipping and 1-to-x phase-locking occurs. The locking behavior follows a complex "devil's staircase" phenomena, where locked modes are interleaved with irregular firing. We further show that the critical frequency depends on the time scale of spike generation and on the level of spike frequency adaptation. These results suggest that phase-locking of neuronal responses to complex input patterns can be explained by basic properties of the spike-generating machinery.

摘要

皮层神经元能够在电流注入时产生一系列动作电位。这些放电可以采取不同的形式,例如在电流注入期间适应的重复放电或爆发行为。我们采用了实验与计算相结合的方法来表征单个神经元中导致动作电位反应的动力学。具体而言,我们研究了响应正弦电流注入时复杂放电模式的起源。使用简化模型——θ神经元,结合皮层锥体细胞的记录,我们表明真实神经元和模拟神经元在高达临界频率时都表现出对正弦波刺激的锁相,高于该临界频率会出现周期跳跃和1到x锁相。锁相行为遵循复杂的“魔鬼阶梯”现象,其中锁定模式与不规则放电交错出现。我们进一步表明,临界频率取决于动作电位产生的时间尺度以及动作电位频率适应的水平。这些结果表明,神经元对复杂输入模式的反应锁相可以通过动作电位产生机制的基本特性来解释。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/937d/2045506/bbb588436f5b/nihms31924f1.jpg

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