Laboratory of Cognitive and Computational Neuroscience, Centre for Biomedical Technology, Technical University of Madrid and Complutense University of Madrid, 28223 Madrid, Spain.
J Neurosci. 2011 May 11;31(19):7038-42. doi: 10.1523/JNEUROSCI.6305-10.2011.
There is now growing evidence that the hippocampus generates theta rhythms that can phase bias fast neural oscillations in the neocortex, allowing coordination of widespread fast oscillatory populations outside limbic areas. A recent magnetoencephalographic study showed that maintenance of configural-relational scene information in a delayed match-to-sample (DMS) task was associated with replay of that information during the delay period. The periodicity of the replay was coordinated by the phase of the ongoing theta rhythm, and the degree of theta coordination during the delay period was positively correlated with DMS performance. Here, we reanalyzed these data to investigate which brain regions were involved in generating the theta oscillations that coordinated the periodic replay of configural-relational information. We used a beamformer algorithm to produce estimates of regional theta rhythms and constructed volumetric images of the phase-locking between the local theta cycle and the instances of replay (in the 13-80 Hz band). We found that individual differences in DMS performance for configural-relational associations were related to the degree of phase coupling of instances of cortical reactivations to theta oscillations generated in the right posterior hippocampus and the right inferior frontal gyrus. This demonstrates that the timing of memory reactivations in humans is biased toward hippocampal theta phase.
现在有越来越多的证据表明,海马体产生的θ节律可以对新皮层中的快速神经振荡进行相位偏置,从而协调边缘区域以外的广泛快速振荡群体。最近的一项脑磁图研究表明,在延迟匹配样本(DMS)任务中保持模式相关场景信息与该信息在延迟期间的重放有关。重放的周期性由正在进行的θ节律的相位协调,并且在延迟期间的θ协调程度与 DMS 性能呈正相关。在这里,我们重新分析了这些数据,以研究哪些脑区参与产生协调模式相关信息周期性重放的θ振荡。我们使用波束形成算法生成局部θ节律的估计,并构建局部θ周期与重放实例(在 13-80 Hz 频带内)之间的相位锁定的体积图像。我们发现,个体在 DMS 上的表现与皮质再激活实例与右后海马体和右下额叶中产生的θ振荡的相位耦合程度相关,而这些实例与模式相关的关联有关。这表明人类记忆再激活的时间偏向于海马体的θ相位。