Tanaka Hiroki, Tamura Hiroshi, Ohzawa Izumi
Graduate School of Frontier Biosciences, Osaka University, Yamadaoka, Suita, Osaka, Japan; and Faculty of Computer Science and Engineering, Kyoto Sangyo University, Motoyama, Kamigamo, Kita-ku, Kyoto, Japan
Graduate School of Frontier Biosciences, Osaka University, Yamadaoka, Suita, Osaka, Japan; and.
J Neurophysiol. 2014 Aug 1;112(3):705-18. doi: 10.1152/jn.00652.2013. Epub 2014 May 14.
Activities of nearby cortical cells show temporal correlation on many timescales. In particular, previous studies of primary visual cortex (V1) indicate precise correlation on a timescale of milliseconds and loose correlation on a timescale of tens of milliseconds. To characterize cortical organization of these correlations, we investigated their spatial extent, laminar organization, and dependence on receptive field (RF) similarities. By simultaneously recording neuronal activity across layers within a horizontal distance of 1.2 mm, we found that loose correlation was widely observed for neuronal pairs horizontally or vertically separated over the whole distance range regardless of the layers. The incidence of loose correlation tended to be lower in layer 4 than in other layers. Loose correlation also accompanied a consistent delay in firing that was monotonically related to the vertical, but not horizontal, distance between the paired neurons. In contrast, the spatial range in which precise correlation was observed was more limited, with its incidence dropping sharply within 0.4 mm in both vertical and horizontal directions for all layers. With these spatial ranges, precise correlation was typically observed for pairs of neurons in the same layers, while loose correlation was often present even for pairs of neurons in widely separated layers. Furthermore, precise correlation was predominantly seen for pairs with similar RF properties, whereas loose correlation was seen even in pairs showing dissimilar properties. Our results show that neuronal correlations in V1 show markedly different structures for horizontal and vertical dimensions depending on correlation timescales.
附近皮质细胞的活动在许多时间尺度上显示出时间相关性。特别是,先前对初级视觉皮层(V1)的研究表明,在毫秒级时间尺度上存在精确相关性,而在几十毫秒级时间尺度上存在松散相关性。为了表征这些相关性的皮质组织,我们研究了它们的空间范围、分层组织以及对感受野(RF)相似性的依赖性。通过在1.2毫米水平距离内跨层同时记录神经元活动,我们发现,无论在哪一层,在整个距离范围内水平或垂直分离的神经元对都广泛存在松散相关性。第4层中松散相关性的发生率往往低于其他层。松散相关性还伴随着放电的一致延迟,该延迟与配对神经元之间的垂直距离而非水平距离呈单调相关。相比之下,观察到精确相关性的空间范围更有限,所有层在垂直和水平方向上在0.4毫米内其发生率均急剧下降。在这些空间范围内,通常在同一层的神经元对中观察到精确相关性,而即使在广泛分离层中的神经元对之间也经常存在松散相关性。此外,精确相关性主要出现在具有相似RF特性的神经元对中,而即使在显示不同特性的神经元对中也能看到松散相关性。我们的结果表明,根据相关时间尺度,V1中的神经元相关性在水平和垂直维度上呈现出明显不同的结构。