Ciacciarelli Evan J, Dunn Scott D, Gohar Taqdees, Joseph Sloand T, Niedringhaus Mark, West Elizabeth A
Department of Cell Biology and Neuroscience, Rowan-Virtua School of Translational Biomedical Engineering and Sciences, United States; Rowan-Virtua School of Osteopathic Medicine, Virtua Health College of Medicine and Life Sciences of Rowan University, Stratford, NJ, 08084, United States.
Rowan-Virtua School of Osteopathic Medicine, Virtua Health College of Medicine and Life Sciences of Rowan University, Stratford, NJ, 08084, United States.
Neurobiol Learn Mem. 2025 Jan;217:108007. doi: 10.1016/j.nlm.2024.108007. Epub 2024 Nov 23.
Working memory refers to the temporary retention of a small amount of information used in the execution of a cognitive task. The prefrontal cortex and its connections with thalamic subregions are thought to mediate specific aspects of working memory, including engaging with the hippocampus to mediate memory retrieval. We used an operant delayed-non match to position task, which does not require the hippocampus, to determine roles of the rodent medial prefrontal cortex (mPFC), the nucleus reuniens thalamic region (RE), and their connection. We found that transient inactivation of the mPFC and RE using the GABA-A agonist muscimol led to a delay-independent reduction in behavioral performance in the delayed non-match to position paradigm. We used a chemogenetic approach to determine the directionality of the necessary circuitry for behavioral performance reliant on working memory. Specifically, when we targeted mPFC neurons that project to the RE (mPFC-RE) we found a delay-independent reduction in the delayed non-match to position task, but not when we targeted RE neurons that project to the mPFC (RE-mPFC). Our results suggest a broader role for the mPFC-RE circuit in mediating working memory beyond the connection with the hippocampus.
工作记忆是指在执行认知任务时对少量信息的临时保留。前额叶皮层及其与丘脑亚区域的连接被认为介导工作记忆的特定方面,包括与海马体协同作用以介导记忆检索。我们使用了一种不需要海马体参与的操作式延迟非匹配位置任务,来确定啮齿动物内侧前额叶皮层(mPFC)、丘脑 reunions 核区域(RE)及其连接的作用。我们发现,使用 GABA-A 激动剂蝇蕈醇对 mPFC 和 RE 进行短暂失活,会导致在延迟非匹配位置范式中行为表现出现与延迟无关的下降。我们采用化学遗传学方法来确定依赖工作记忆的行为表现所需神经回路的方向性。具体而言,当我们靶向投射到 RE 的 mPFC 神经元(mPFC-RE)时,发现延迟非匹配位置任务的表现出现与延迟无关的下降,但当我们靶向投射到 mPFC 的 RE 神经元(RE-mPFC)时则未出现这种情况。我们的结果表明,mPFC-RE 回路在介导工作记忆方面具有比与海马体连接更广泛的作用。