Biology

Brain Maps New Knowledge Networks in Two Distinct Memory Regions

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Neural encodingCognitive mapsSemantic memory

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Researchers used fMRI to investigate how the human brain represents abstract knowledge networks. Participants learned connections between fictional alien planets and were scanned the next day while viewing the stimuli. The study found that shortest-path distances between nodes were encoded in the posterior hippocampus and right retrosplenial complex, while global network connectivity measures were represented in the left retrosplenial complex.


This research demonstrates that brain regions typically associated with spatial navigation also process abstract relational knowledge using similar mapping principles. The findings could inform our understanding of how the brain organizes complex information networks and may have implications for educational strategies and treatments for memory disorders.


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Neural encoding 6 articles Explore Concept → Cognitive maps Concept coming soon Semantic memory Concept coming soon

⚠️ Preprint – Noch nicht peer-reviewed

Dieser Artikel wurde noch nicht von unabhängigen Experten begutachtet. Die Ergebnisse sind vorläufig und sollten mit Vorsicht interpretiert werden.

Much of our knowledge is structured in networks, but how the brain represents such networks remains unclear. In most nested knowledge structures a subset of the nodes will be highly connected to other nodes in the network. High levels of connection can exist either locally (high degree centrality) or at a global level (high closeness/betweenness centrality). Here, we explored how the human brain represents network structure using functional magnetic resonance imaging (fMRI) and a novel learning paradigm. During training, participants learned the transition structure for travel between a set of fictious partially connected alien planets. Despite encountering only individual connections, participants choices indicated they could infer the broader network structure. Next day, they viewed each stimulus during a cover task while undergoing fMRI. Representational-similarity analysis showed that shortest-path distances within the learned graph were encoded in the posterior hippocampus and right retrosplenial complex, whereas global connectivity (closeness/ betweenness centrality) was represented in the left retrosplenial complex. These findings extend the view that brain networks associated with spatial navigation also process abstract relational knowledge using principles akin to mapping physical space. The results are also consistent with proposals that the hippocampus represents distance information and that the retrosplenial cortex acts as hub for integrating recently acquired knowledge.

Source: Global structure of new relational knowledge networks is represented in retrosplenial complex, and node-distance in hippocampus