Ray Supratim, Hsiao Steven S, Crone Nathan E, Franaszczuk Piotr J, Niebur Ernst
Department of Neurobiology, Harvard Medical School and Howard Hughes Medical Institute, Boston, Massachusetts 02115, USA.
J Neurosci. 2008 Jul 16;28(29):7334-43. doi: 10.1523/JNEUROSCI.1588-08.2008.
Neuronal oscillations in the gamma frequency range have been reported in many cortical areas, but the role they play in cortical processing remains unclear. We tested a recently proposed hypothesis that the intensity of sensory input is coded in the timing of action potentials relative to the phase of gamma oscillations, thus converting amplitude information to a temporal code. We recorded spikes and local field potential (LFP) from secondary somatosensory (SII) cortex in awake monkeys while presenting a vibratory stimulus at different amplitudes. We developed a novel technique based on matching pursuit to study the interaction between the highly transient gamma oscillations and spikes with high time-frequency resolution. We found that spikes were weakly coupled to LFP oscillations in the gamma frequency range (40-80 Hz), and strongly coupled to oscillations in higher gamma frequencies. However, the phase relationship of neither low-gamma nor high-gamma oscillations changed with stimulus intensity, even with a 10-fold increase. We conclude that, in SII, gamma oscillations are synchronized with spikes, but their phase does not vary with stimulus intensity. Furthermore, high-gamma oscillations (>60 Hz) appear to be closely linked to the occurrence of action potentials, suggesting that LFP high-gamma power could be a sensitive index of the population firing rate near the microelectrode.
许多皮层区域都报道过存在伽马频率范围内的神经元振荡,但其在皮层处理过程中所起的作用仍不清楚。我们测试了一个最近提出的假说,即感觉输入的强度是通过动作电位相对于伽马振荡相位的时间编码的,从而将幅度信息转换为时间编码。我们在清醒猴子的次级体感皮层(SII)记录了尖峰信号和局部场电位(LFP),同时以不同幅度施加振动刺激。我们开发了一种基于匹配追踪的新技术,以高时频分辨率研究高度瞬态的伽马振荡与尖峰信号之间的相互作用。我们发现,尖峰信号与伽马频率范围(40 - 80赫兹)内的LFP振荡弱耦合,而与更高伽马频率的振荡强耦合。然而,无论是低伽马振荡还是高伽马振荡的相位关系都不会随刺激强度变化,即使刺激强度增加了10倍。我们得出结论,在SII中,伽马振荡与尖峰信号同步,但其相位不会随刺激强度而变化。此外,高伽马振荡(>60赫兹)似乎与动作电位的发生密切相关,这表明LFP高伽马功率可能是微电极附近群体放电率的一个敏感指标。