Lyon Neuroscience Research Center, INSERM U1028, CNRS UMR5292, Brain Dynamics and Cognition Team, F-69500 Lyon-Bron, France.
J Neurosci. 2011 Oct 12;31(41):14521-30. doi: 10.1523/JNEUROSCI.2483-11.2011.
Task performance is associated with increased brain metabolism but also with prominent deactivation in specific brain structures known as the default-mode network (DMN). The role of DMN deactivation remains enigmatic in part because its electrophysiological correlates, temporal dynamics, and link to behavior are poorly understood. Using extensive depth electrode recordings in humans, we provide first electrophysiological evidence for a direct correlation between the dynamics of power decreases in the DMN and individual subject behavior. We found that all DMN areas displayed transient suppressions of broadband gamma (60-140 Hz) power during performance of a visual search task and, critically, we show for the first time that the millisecond range duration and extent of the transient gamma suppressions are correlated with task complexity and subject performance. In addition, trial-by-trial correlations revealed that spatially distributed gamma power increases and decreases formed distinct anticorrelated large-scale networks. Beyond unraveling the electrophysiological basis of DMN dynamics, our results suggest that, rather than indicating a mere switch to a global exteroceptive mode, DMN deactivation encodes the extent and efficiency of our engagement with the external world. Furthermore, our findings reveal a pivotal role for broadband gamma modulations in the interplay between task-positive and task-negative networks mediating efficient goal-directed behavior and facilitate our understanding of the relationship between electrophysiology and neuroimaging studies of intrinsic brain networks.
任务表现与大脑代谢的增加有关,但也与被称为默认模式网络 (DMN) 的特定大脑结构的显著去激活有关。DMN 去激活的作用仍然是个谜,部分原因是其电生理相关性、时间动态以及与行为的联系还了解甚少。我们使用人类广泛的深度电极记录,提供了 DMN 中功率降低的动力学与个体行为之间直接相关性的第一个电生理证据。我们发现,所有 DMN 区域在执行视觉搜索任务时都会短暂抑制宽带伽马(60-140Hz)功率,而且重要的是,我们首次表明,短暂伽马抑制的毫秒范围持续时间和程度与任务复杂性和个体表现相关。此外,逐次试验相关性表明,空间分布的伽马功率增加和减少形成了不同的反相关的大规模网络。除了揭示 DMN 动力学的电生理基础外,我们的结果表明,DMN 去激活不是仅仅表示向全局外部模式的转变,而是编码了我们与外部世界的接触程度和效率。此外,我们的发现揭示了宽带伽马调制在介导有效目标导向行为的任务正性和任务负性网络之间相互作用中的关键作用,并有助于我们理解电生理学和内在脑网络的神经影像学研究之间的关系。