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Hippocampal-prefrontal theta-gamma coupling during performance of a spatial working memory task

机译:在执行空间工作记忆任务期间海马-前额叶theta-γ耦合

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摘要

Cross-frequency coupling supports the organization of brain rhythms and is present during a range of cognitive functions. However, little is known about whether and how long-range cross-frequency coupling across distant brain regions subserves working memory. Here we report that theta–slow gamma coupling between the hippocampus and medial prefrontal cortex (mPFC) is augmented in a genetic mouse model of cognitive dysfunction. This increased cross-frequency coupling is observed specifically when the mice successfully perform a spatial working memory task. In wild-type mice, increasing task difficulty by introducing a long delay or by optogenetically interfering with encoding, also increases theta–gamma coupling during correct trials. Finally, epochs of high hippocampal theta–prefrontal slow gamma coupling are associated with increased synchronization of neurons within the mPFC. These findings suggest that enhancement of theta–slow gamma coupling reflects a compensatory mechanism to maintain spatial working memory performance in the setting of increased difficulty.
机译:跨频耦合支持脑节律的组织,并存在于一系列认知功能中。但是,关于跨大脑区域的远程跨频耦合是否以及如何为工作记忆服务的了解很少。在这里,我们报告说,在认知功能障碍的遗传小鼠模型中,海马体与内侧前额叶皮层(mPFC)之间的theta-慢伽马耦合得以增强。特别是当小鼠成功执行空间工作记忆任务时,观察到这种增加的跨频耦合。在野生型小鼠中,由于引入了较长的延迟或通过光遗传学干扰编码而增加了工作难度,在正确的试验过程中也增加了θ-γ偶联。最后,高海马θ-前额叶慢伽玛耦合的时代与mPFC中神经元同步性的增加有关。这些发现表明,θ-慢伽马耦合的增强反映了一种补偿机制,可以在难度增加的情况下保持空间工作记忆性能。

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