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bioRxiv · 10.1101/2024.02.26.581526

Disentangling Mnemonic Metacognition from Confidence by Communication between the Precuneus and Hippocampus

Abstract

Metacognition, the ability to introspectively monitor ones own performance, remains an area with poorly understood neural mechanisms, particularly regarding the intercommunication among various brain regions. Recent studies have identified the precuneus as a key region in mnemonic metacognitive tasks, while the hippocampus is recognized for its role in memory function. This study aimed to investigate the role of the precuneus and hippocampus in mnemonic metacognition by utilizing intracranial electrode recordings from patients with intractable epilepsy to analyze the correlational dynamics between these regions. Our findings revealed that high gamma activity serve as a key feature in both the precuneus and hippocampus for confidence judgment. Based on signal detection theory (SDT), we discovered that high gamma activity in the precuneus is significantly linked to type 2 sensitivity (meta-d), while hippocampal high gamma activity was primarily linked to type 1 sensitivity (d). Additionally, the correlation between high gamma activity in the hippocampus and precuneus was exclusively related to type 2 sensitivity (meta-d). Temporal analysis indicated that the hippocampus is initially engaged for the memory process, followed by its joint engagement together with the precuneus for confidence generation. These findings elucidate the distinct electrophysiological roles of the hippocampus and precuneus in mnemonic metacognition, providing deeper insights into the neural mechanisms underlying this cognitive process.

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BibTeXRIS

Pan, K., Guo, X., Zheng, Z., Zhu, Z., Wu, H., Zhu, J., Santos-Pata, D., Zhang, J., Kwok, S. C., Jiang, H.. 2024-02-28. Disentangling Mnemonic Metacognition from Confidence by Communication between the Precuneus and Hippocampus. https://doi.org/10.1101/2024.02.26.581526

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