Yu Yuguo, Shu Yousheng, McCormick David A
Department of Neurobiology, Kavli Institute of Neuroscience, Yale University School of Medicine, New Haven, Connecticut 06510, USA.
J Neurosci. 2008 Jul 16;28(29):7260-72. doi: 10.1523/JNEUROSCI.1613-08.2008.
Neocortical action potential responses in vivo are characterized by considerable threshold variability, and thus timing and rate variability, even under seemingly identical conditions. This finding suggests that cortical ensembles are required for accurate sensorimotor integration and processing. Intracellularly, trial-to-trial variability results not only from variation in synaptic activities, but also in the transformation of these into patterns of action potentials. Through simultaneous axonal and somatic recordings and computational simulations, we demonstrate that the initiation of action potentials in the axon initial segment followed by backpropagation of these spikes throughout the neuron results in a distortion of the relationship between the timing of synaptic and action potential events. In addition, this backpropagation also results in an unusually high rate of rise of membrane potential at the foot of the action potential. The distortion of the relationship between the amplitude time course of synaptic inputs and action potential output caused by spike backpropagation results in the appearance of high spike threshold variability at the level of the soma. At the point of spike initiation, the axon initial segment, threshold variability is considerably less. Our results indicate that spike generation in cortical neurons is largely as expected by Hodgkin-Huxley theory and is more precise than previously thought.
在体内,新皮层动作电位反应的特征是具有相当大的阈值变异性,因此即使在看似相同的条件下,也存在时间和频率变异性。这一发现表明,准确的感觉运动整合和处理需要皮层神经元集群。在细胞内,每次试验的变异性不仅源于突触活动的变化,还源于这些变化转化为动作电位模式的过程。通过同时进行轴突和胞体记录以及计算模拟,我们证明轴突起始段动作电位的引发以及这些尖峰在整个神经元中的反向传播会导致突触和动作电位事件时间关系的扭曲。此外,这种反向传播还会导致动作电位底部膜电位的上升速率异常高。由尖峰反向传播引起的突触输入幅度时间进程与动作电位输出之间关系的扭曲,导致在胞体水平出现高尖峰阈值变异性。在尖峰起始点,即轴突起始段,阈值变异性要小得多。我们的结果表明,皮层神经元中的尖峰产生在很大程度上符合霍奇金-赫胥黎理论,并且比之前认为的更精确。