Donders Institute for Brain, Cognition, and Behaviour, Radboud University Nijmegen, 6525 EN Nijmegen, The Netherlands.
J Neurosci. 2010 Jan 27;30(4):1250-7. doi: 10.1523/JNEUROSCI.1623-09.2010.
Gamma-band synchronization is abundant in nervous systems. Typically, the strength or precision of gamma-band synchronization is studied. However, the precise phase with which individual neurons are synchronized to the gamma-band rhythm might have interesting consequences for their impact on further processing and for spike timing-dependent plasticity. Therefore, we investigated whether the spike times of individual neurons shift systematically in the gamma cycle as a function of the neuronal activation strength. We found that stronger neuronal activation leads to spikes earlier in the gamma cycle, i.e., we observed gamma-phase shifting. Gamma-phase shifting occurred on very rapid timescales. It was particularly pronounced for periods in which gamma-band synchronization was relatively weak and for neurons that were only weakly coupled to the gamma rhythm. We suggest that gamma-phase shifting is brought about by an interplay between overall excitation and gamma-rhythmic synaptic input and has interesting consequences for neuronal coding, competition, and plasticity.
伽马波段同步在神经系统中很丰富。通常,研究的是伽马波段同步的强度或精度。然而,个体神经元与伽马波段节律同步的确切相位可能对其对进一步处理的影响以及对尖峰时间依赖性可塑性具有有趣的后果。因此,我们研究了个体神经元的尖峰时间是否会随着神经元激活强度的函数在伽马周期中系统地移动。我们发现,较强的神经元激活会导致伽马周期中的尖峰提前,即我们观察到伽马相位移动。伽马相位移动发生在非常快速的时间尺度内。对于伽马波段同步相对较弱且仅与伽马节律弱耦合的神经元,这种现象尤为明显。我们认为,伽马相位移动是由整体兴奋和伽马节律突触输入的相互作用引起的,这对神经元编码、竞争和可塑性具有有趣的影响。