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Spatiotemporal oscillatory dynamics during the encoding and maintenancephases of a visual working memory task

机译:编码和维护期间的时空振荡动力学视觉工作记忆任务的各个阶段

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摘要

Many electrophysiology studies have examined neural oscillatory activity during the encoding, maintenance, and/or retrieval phases of various working memory tasks. Together, these studies have helped illuminate the underlying neural dynamics, although much remains to be discovered and some findings have not replicated in subsequent work. In this study, we examined the oscillatory dynamics that serve visual working memory operations using high-density magnetoencephalography (MEG) and advanced time-frequency and beamforming methodology. Specifically, we recorded healthy adults while they performed a high-load, Sternberg-type working memory task, and focused on the encoding and maintenance phases. We found significant 9–16 Hz desynchronizations in the bilateral occipital cortices, left dorsolateral prefrontal cortex (DLPFC), and left superior temporal areas throughout the encoding phase. Our analysis of the dynamics showed that the left DLPFC and superior temporal desynchronization became stronger as a function of time during the encoding period, and was sustained throughout most of the maintenance phase until sharply decreasing in the milliseconds preceding retrieval. In contrast, desynchronization in occipital areas became weaker as a function of time during encoding and eventually evolved into a strong synchronization during the maintenance period, consistent with previous studies. These results provide clear evidence of dynamic network-level processes duringthe encoding and maintenance phases of working memory, and support the notion of a dynamicpattern of functionally-discrete subprocesses within each working memory phase. Thepresence of such dynamic oscillatory networks may be a potential source of inconsistentfindings in this literature, as neural activity within these networks changes dramaticallywith time.
机译:许多电生理学研究已经检查了各种工作记忆任务的编码,维护和/或检索阶段的神经振荡活动。这些研究在一起,有助于阐明潜在的神经动力学,尽管还有很多地方有待发现,并且一些发现在以后的工作中没有重复。在这项研究中,我们检查了使用高密度脑磁图(MEG)以及先进的时频和波束形成方法为视觉工作记忆操作服务的振荡动力学。具体来说,我们记录了健康的成年人在执行高负荷的Sternberg型工作记忆任务时的情况,并专注于编码和维护阶段。我们发现在整个编码阶段,双侧枕叶皮质,左背外侧前额叶皮层(DLPFC)和左上颞叶区域均出现明显的9–16 Hz失步。我们对动力学的分析表明,在编码期间,左DLPFC和上级时间失步随着时间的变化而变得更强,并且在整个维护阶段一直持续到直到检索前的毫秒数急剧下降为止。相反,与以前的研究一致,在编码过程中,枕骨区的去同步随时间的变化变弱,并最终在维持期间演变为强同步。这些结果提供了动态的网络级流程的清晰证据。工作记忆的编码和维护阶段,并支持动态概念每个工作存储阶段内功能离散子流程的模式。的这种动态振荡网络的存在可能是不一致的潜在原因这些文献中的发现,因为这些网络中的神经活动发生了巨大变化随着时间的推移。

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