The Brain Institute, University of Utah, Salt Lake City, UT, United States.
Behav Brain Res. 2011 Dec 1;225(2):389-95. doi: 10.1016/j.bbr.2011.07.045. Epub 2011 Aug 3.
Memory processes may be independent, compete, operate in parallel, or interact. In accordance with this view, behavioral studies suggest that the hippocampus (HPC) and prefrontal cortex (PFC) may act as an integrated circuit during performance of tasks that require working memory over longer delays, whereas during short delays the HPC and PFC may operate in parallel or have completely dissociable functions. In the present investigation we tested rats in a spatial delayed non-match to sample working memory task using short and long time delays to evaluate the hypothesis that intermediate CA1 region of the HPC (iCA1) and medial PFC (mPFC) interact and operate in parallel under different temporal working memory constraints. In order to assess the functional role of these structures, we used an inactivation strategy in which each subject received bilateral chronic cannula implantation of the iCA1 and mPFC, allowing us to perform bilateral, contralateral, ipsilateral, and combined bilateral inactivation of structures and structure pairs within each subject. This novel approach allowed us to test for circuit-level systems interactions, as well as independent parallel processing, while we simultaneously parametrically manipulated the temporal dimension of the task. The current results suggest that, at longer delays, iCA1 and mPFC interact to coordinate retrospective and prospective memory processes in anticipation of obtaining a remote goal, whereas at short delays either structure may independently represent spatial information sufficient to successfully complete the task.
记忆过程可能是独立的、竞争的、并行运作的或相互作用的。根据这一观点,行为研究表明,在需要长时间延迟工作记忆的任务中,海马体(HPC)和前额叶皮层(PFC)可能作为一个集成电路发挥作用,而在短时间延迟下,HPC 和 PFC 可能并行运作或具有完全不同的功能。在本研究中,我们使用空间延迟非匹配样本工作记忆任务测试大鼠,使用短时间和长时间延迟来评估以下假设:即 HPC 的中间 CA1 区(iCA1)和内侧前额叶皮层(mPFC)在不同的时间工作记忆约束下相互作用并并行运作。为了评估这些结构的功能作用,我们使用了一种失活策略,每个被试都接受双侧慢性 iCA1 和 mPFC 套管植入,允许我们在每个被试中进行双侧、对侧、同侧和双侧联合失活结构和结构对。这种新方法允许我们测试电路级系统交互作用,以及独立的并行处理,同时我们参数化地操纵任务的时间维度。当前的结果表明,在较长的延迟下,iCA1 和 mPFC 相互作用,以协调回溯和前瞻记忆过程,为获得远程目标做准备,而在短时间延迟下,任一结构都可以独立地表示足够的空间信息,以成功完成任务。