Cold Spring Harbor Laboratory, Cold Spring Harbor, NY, USA.
Department of Biological Structure, University of Washington, Seattle, WA, USA.
Nat Commun. 2022 Jan 10;13(1):44. doi: 10.1038/s41467-021-27724-4.
Correlated activity fluctuations in the neocortex influence sensory responses and behavior. Neural correlations reflect anatomical connectivity but also change dynamically with cognitive states such as attention. Yet, the network mechanisms defining the population structure of correlations remain unknown. We measured correlations within columns in the visual cortex. We show that the magnitude of correlations, their attentional modulation, and dependence on lateral distance are explained by columnar On-Off dynamics, which are synchronous activity fluctuations reflecting cortical state. We developed a network model in which the On-Off dynamics propagate across nearby columns generating spatial correlations with the extent controlled by attentional inputs. This mechanism, unlike previous proposals, predicts spatially non-uniform changes in correlations during attention. We confirm this prediction in our columnar recordings by showing that in superficial layers the largest changes in correlations occur at intermediate lateral distances. Our results reveal how spatially structured patterns of correlated variability emerge through interactions of cortical state dynamics, anatomical connectivity, and attention.
大脑新皮层中的相关活动波动会影响感官反应和行为。神经相关性反映了解剖连接,但也会随着注意力等认知状态动态变化。然而,定义相关性群体结构的网络机制尚不清楚。我们在视觉皮层的柱内测量了相关性。我们表明,相关性的幅度、它们对注意力的调制以及对侧向距离的依赖性,可以用柱内 On-Off 动力学来解释,On-Off 动力学是反映皮质状态的同步活动波动。我们开发了一个网络模型,其中 On-Off 动力学在附近的柱间传播,产生具有由注意力输入控制的程度的空间相关性。与之前的提议不同,这种机制预测了注意力期间相关性的空间非均匀变化。我们通过在柱状记录中显示在浅层中相关性的最大变化发生在中间的侧向距离,证实了这一预测。我们的结果揭示了如何通过皮质状态动力学、解剖连接和注意力的相互作用,产生具有空间结构的相关性变化模式。