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Role of the thalamic nucleus reuniens in mediating interactions between the hippocampus and medial prefrontal cortex during spatial working memory

机译:丘脑核在空间工作记忆过程中介导海马体与前额叶内侧皮层相互作用的作用

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Despite decades of research, the neural mechanisms of spatial working memory remain poorly understood. Although the dorsal hippocampus is known to be critical for memory-guided behavior, experimental evidence suggests that spatial working memory depends not only on the hippocampus itself, but also on the circuit comprised of the hippocampus and the medial prefrontal cortex (mPFC). Disruption of hippocampal-mPFC interactions may result in failed transfer of spatial and contextual information processed by the hippocampus to the circuitry in mPFC responsible for decision making and goal-directed behavior. Oscillatory synchrony between the hippocampus and mPFC has been shown to increase in tasks with high spatial working memory demand. However, the mechanisms and circuitry supporting hippocampal-mPFC interactions during these tasks is unknown. The midline thalamic nucleus reuniens (RE) is reciprocally connected to both the hippocampus and the mPFC and has been shown to be critical for a variety of working memory tasks. Therefore, it is likely that hippocampal-mPFC oscillatory synchrony is modulated by RE activity. This article will review the anatomical connections between the hippocampus, mPFC and RE along with the behavioral studies that have investigated the effects of RE disruption on working memory task performance. The article will conclude with suggestions for future directions aimed at identifying the specific role of the RE in regulating functional interactions between the hippocampus and the PFC and investigating the degree to which these interactions contribute to spatial working memory.
机译:尽管进行了数十年的研究,但对空间工作记忆的神经机制仍然知之甚少。尽管已知背海马对记忆引导行为至关重要,但实验证据表明,空间工作记忆不仅取决于海马本身,还取决于海马和前额内侧皮层(mPFC)组成的回路。海马-mPFC相互作用的中断可能导致海马处理的空间和上下文信息无法传递到负责决策和目标定向行为的mPFC中的电路。海马和mPFC之间的振荡同步已显示出在具有较高空间工作记忆需求的任务中增加。然而,在这些任务期间支持海马-mPFC相互作用的机制和电路是未知的。中线丘脑核仁(RE)与海马和mPFC相互连接,并且已被证明对多种工作记忆任务至关重要。因此,海马-mPFC振荡同步很可能受到RE活性的调节。本文将回顾海马,mPFC和RE之间的解剖学联系,以及调查RE中断对工作记忆任务绩效影响的行为研究。本文将为未来的方向提出建议,以期确定RE在调节海马和PFC之间的功能性相互作用中的具体作用,并研究这些相互作用对空间工作记忆的贡献程度。

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