Henrie J Andrew, Shapley Robert
Center for Neural Science, New York University, 4 Washington Place, Rm 809, New York, New York 10003, USA.
J Neurophysiol. 2005 Jul;94(1):479-90. doi: 10.1152/jn.00919.2004. Epub 2005 Feb 9.
We recorded local field potentials (LFPs) and single-unit activity simultaneously in the macaque primary visual cortex (V1) and studied their responses to drifting sinusoidal gratings that were chosen to be "optimal" for the single units. Over all stimulus conditions, the LFP spectra have much greater power in the low-frequency band (< or = 10 Hz) than higher frequencies and can be described as "1/f." Analysis of the total power limited to the low, gamma (25-90 Hz), or broad (8-240 Hz) frequency bands of the LFP as a function of stimulus contrast indicates that the LFP power gradually increases with stimulus strength across a wide band in a manner roughly comparable to the increase in the simultaneously recorded spike activity. However, the low-frequency band power remains approximately constant across all stimulus contrasts. More specifically the gamma-band LFP power increases differentially more with respect to baseline than either higher or lower bands as stimulus contrast increases. At the highest stimulus contrasts, we report as others have previously, that the power spectrum of the LFP typically contains an obvious peak in the gamma-frequency band. The gamma-band peak emerges from the overall broadband enhancement in LFP power at stimulus contrasts where most single units' responses have begun to saturate. The temporal/spectral structures of the LFP located in the gamma band-which become most evident at the highest contrasts-provide additional constraints on potential mechanisms underlying the stimulus response properties of spiking neurons in V1.
我们在猕猴初级视觉皮层(V1)中同时记录了局部场电位(LFP)和单神经元活动,并研究了它们对选定为单神经元“最佳”的漂移正弦光栅的反应。在所有刺激条件下,LFP频谱在低频带(≤10Hz)中的功率比高频带大得多,并且可以描述为“1/f”。将LFP的总功率分析限制在低频、γ(25 - 90Hz)或宽频(8 - 240Hz)频段,并作为刺激对比度的函数,结果表明,LFP功率在宽频带内随着刺激强度逐渐增加,其方式大致与同时记录的尖峰活动的增加相当。然而,低频带功率在所有刺激对比度下大致保持恒定。更具体地说,随着刺激对比度增加,γ频段LFP功率相对于基线的增加幅度比更高或更低频段的增加幅度更大。在最高刺激对比度下,正如其他人之前所报道的,LFP的功率谱通常在γ频段包含一个明显的峰值。γ频段峰值出现在刺激对比度下LFP功率的整体宽带增强中,此时大多数单神经元的反应已开始饱和。位于γ频段的LFP的时间/频谱结构——在最高对比度下最为明显——为V1中尖峰神经元的刺激反应特性的潜在机制提供了额外的限制。