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Hippocampal-Prefrontal Circuit and Disrupted Functional Connectivity in Psychiatric and Neurodegenerative Disorders

机译:海马-前额叶回路和精神病和神经退行性疾病中功能连接中断

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In rodents, the hippocampus has been studied extensively as part of a brain system responsible for learning and memory, and the prefrontal cortex (PFC) participates in numerous cognitive functions including working memory, flexibility, decision making, and rewarding learning. The neuronal projections from the hippocampus, either directly or indirectly, to the PFC, referred to as the hippocampal-prefrontal cortex (Hip-PFC) circuit, play a critical role in cognitive and emotional regulation and memory consolidation. Although in certain psychiatric and neurodegenerative diseases, structural connectivity viewed by imaging techniques has been consistently found to be associated with clinical phenotype and disease severity, the focus has moved towards the investigation of connectivity correlates of molecular pathology and coupling of oscillation. Moreover, functional and structural connectivity measures have been emerging as potential intermediate biomarkers for neuronal disorders. In this review, we summarize progress on the anatomic, molecular, and electrophysiological characters of the Hip-PFC circuit in cognition and emotion processes with an emphasis on oscillation and functional connectivity, revealing a disrupted Hip-PFC connectivity and electrical activity in psychiatric and neurodegenerative disorders as a promising candidate of neural marker for neuronal disorders.
机译:在啮齿动物中,作为负责学习和记忆的大脑系统的一部分,对海马进行了广泛的研究,前额叶皮层(PFC)参与了许多认知功能,包括工作记忆,灵活性,决策能力和奖励性学习。从海马直接或间接到PFC的神经元投射,称为海马前额叶皮层(Hip-PFC)回路,在认知和情绪调节以及记忆巩固中起关键作用。尽管在某些精神病和神经退行性疾病中,通过成像技术观察到的结构连通性一直被发现与临床表型和疾病严重程度有关,但焦点已转向研究分子病理学和振动耦合的连通性相关性。此外,功能和结构连接性措施已成为神经元疾病的潜在中间生物标志物。在这篇综述中,我们总结了Hip-PFC电路在认知和情感过程中的解剖,分子和电生理特征的进展,重点是振荡和功能连接性,揭示了精神和神经退行性疾病中Hip-PFC连接性和电活动的破坏作为神经元疾病的神经标志物的有前途的候选人。

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