Kayser Christoph, König Peter
Institute of Neuroinformatics, University & ETH Zürich, Winterthurerstrasse 190, 8057 Zürich, Switzerland.
Eur J Neurosci. 2004 Jan;19(2):485-9. doi: 10.1111/j.0953-816x.2003.03122.x.
The local field potential (LFP) is a population measure of neuronal activity complementary to spike trains. Whereas the response properties of the spiking activity in the visual cortex have been characterized extensively, the responses of the LFP have not been well explored. No coherent picture exists about which frequency ranges exhibit feature tuning or show stimulus locked activity. Addressing this, we recorded LFP in the primary visual cortex of alert cats and calculated the tuning indices for orientation, spatial and temporal frequency. Furthermore, we quantified the locking of the power in different LFP frequency bands to the velocity profile of artificial and natural stimuli. We found that the LFP in alert animals is well tuned with similar specificity to orientation, spatial frequency and temporal frequency. Tuning to these features is most prominent in two frequency bands (8-23 Hz and 39-109 Hz). In two complementary frequency bands (23-39 Hz and above 109 Hz) the dynamics of the LFP power is locked tightly to the temporal structure of the stimulus. This locking is furthermore independent of the spatial structure of the stimulus. Together these four frequency bands cover the whole frequency range investigated. In contrast to previous studies, which often reported correlates of visual processing only in a limited frequency range of the LFP, the present results suggest that the entire frequency range of the LFP can be assigned a role in visual processing.
局部场电位(LFP)是一种与峰电位序列互补的神经元活动群体测量指标。虽然视觉皮层中峰电位活动的响应特性已得到广泛研究,但LFP的响应尚未得到充分探索。对于哪些频率范围表现出特征调谐或显示刺激锁定活动,目前尚无统一的认识。为了解决这个问题,我们在警觉猫的初级视觉皮层中记录了LFP,并计算了方向、空间和时间频率的调谐指数。此外,我们量化了不同LFP频段功率对人工和自然刺激速度分布的锁定情况。我们发现,警觉动物的LFP对方向、空间频率和时间频率具有良好的调谐,且特异性相似。在两个频段(8 - 23Hz和39 - 109Hz)中,对这些特征的调谐最为显著。在两个互补频段(23 - 39Hz和109Hz以上)中,LFP功率的动态变化与刺激的时间结构紧密锁定。而且这种锁定与刺激的空间结构无关。这四个频段共同覆盖了所研究的整个频率范围。与以往通常仅在LFP的有限频率范围内报道视觉处理相关性的研究不同,本研究结果表明,LFP的整个频率范围在视觉处理中都可发挥作用。