Su Minghong, Hu Kejia, Liu Wei, Wu Yunhao, Wang Tao, Cao Chunyan, Sun Bomin, Zhan Shikun, Ye Zheng
Institute of Psychology, Chinese Academy of Sciences, Beijing, 100101, China.
Department of Psychology, University of Chinese Academy of Sciences, Beijing, 100049, China.
Neurosci Bull. 2024 Feb;40(2):147-156. doi: 10.1007/s12264-023-01134-6. Epub 2023 Oct 17.
The prefrontal cortex and hippocampus may support sequential working memory beyond episodic memory and spatial navigation. This stereoelectroencephalography (SEEG) study investigated how the dorsolateral prefrontal cortex (DLPFC) interacts with the hippocampus in the online processing of sequential information. Twenty patients with epilepsy (eight women, age 27.6 ± 8.2 years) completed a line ordering task with SEEG recordings over the DLPFC and the hippocampus. Participants showed longer thinking times and more recall errors when asked to arrange random lines clockwise (random trials) than to maintain ordered lines (ordered trials) before recalling the orientation of a particular line. First, the ordering-related increase in thinking time and recall error was associated with a transient theta power increase in the hippocampus and a sustained theta power increase in the DLPFC (3-10 Hz). In particular, the hippocampal theta power increase correlated with the memory precision of line orientation. Second, theta phase coherences between the DLPFC and hippocampus were enhanced for ordering, especially for more precisely memorized lines. Third, the theta band DLPFC → hippocampus influence was selectively enhanced for ordering, especially for more precisely memorized lines. This study suggests that theta oscillations may support DLPFC-hippocampal interactions in the online processing of sequential information.
前额叶皮质和海马体可能支持除情景记忆和空间导航之外的序列工作记忆。这项立体脑电图(SEEG)研究调查了背外侧前额叶皮质(DLPFC)在序列信息的在线处理过程中如何与海马体相互作用。20名癫痫患者(8名女性,年龄27.6±8.2岁)在DLPFC和海马体上进行SEEG记录的同时完成了一项线条排序任务。与在回忆特定线条的方向之前保持有序线条(有序试验)相比,参与者在被要求顺时针排列随机线条(随机试验)时表现出更长的思考时间和更多的回忆错误。首先,与排序相关的思考时间增加和回忆错误与海马体中θ波功率的短暂增加以及DLPFC中θ波功率的持续增加(3 - 10赫兹)有关。特别是,海马体中θ波功率的增加与线条方向的记忆精度相关。其次,DLPFC和海马体之间的θ相位相干性在排序时增强,尤其是对于记忆更精确的线条。第三,θ频段的DLPFC→海马体影响在排序时选择性增强,尤其是对于记忆更精确的线条。这项研究表明,θ振荡可能在序列信息的在线处理中支持DLPFC - 海马体的相互作用。