Completed Brain & Nervous System Psychology & Behaviour

The development of neural circuits for episodic and general memories

In plain English

AI plain-English summary

Babies soak up general knowledge about the world—what a dog is, how gravity works—yet they cannot recall specific events from their own lives. This research uses live brain imaging in developing rodents to resolve that paradox: how the brain’s memory systems mature in opposite directions. The problem is a fundamental gap in neuroscience. In adults, the hippocampus encodes detailed episodic memories (a birthday party), while the neocortex slowly extracts general knowledge (what a party is). But early development flips this pattern—infants learn general facts rapidly despite being amnesic for specific episodes. Even more striking, early-life damage to the hippocampus leaves general learning largely intact while destroying episodic recall. The team will track neural activity in real time to see how hippocampal and cortical circuits actually develop, and which alternative networks compensate after injury. This is fundamental science with no immediate clinical application. However, understanding how the developing brain builds and preserves general knowledge despite hippocampal damage could eventually inform strategies for children with early brain injuries or developmental amnesia. Similar foundational work on memory circuits in rodents has already shaped treatments for adult memory disorders.

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This proposal aims to understand how neural networks for memory emerge during post-natal development, both during normal development and following early-life brain damage. Episodic memories (memories of events and their spatio-temporal context), and generalised learning such as semantic memories (factual world-knowledge) are supported by different brain networks. Episodic memories are thought to be encoded initially by the hippocampus, whilst general knowledge would be extracted by integrating across experiences via hippocampus-neocortical interactions. However, the ontogenetic unfolding of memory runs counter to this framework. Early development is characterised by the rapid acquisition of general knowledge, despite amnesia for specific events. Furthermore, sustaining early-life hippocampal damage results in dense amnesia for specific episodes, but general learning is relatively preserved. We aim to resolve this apparent paradox by studying neural circuit activity in vivo, in conjunction with behaviour, in developing rodents. Our goals are to: 1) Understand the development of hippocampal mechanisms supporting the generation of memory traces of specific events; 2) Understand the neural mechanisms that enable the association of items with their spatio-temporal context (episodic memory processing); 3) Discover how neural coding for generalised knowledge emerges across cortical-hippocampal networks during normal development, and identify networks supporting preserved learning after early-life hippocampal damage.

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Researchers

Thomas Wills (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Learning to remember: the development of the neural mechanisms supporting memory processing.
The post-natal development of hippocampal memory networks
All-optical interrogation of the hippocampal neural code underlying episodic memory
Unravelling the circuit changes mediating the development of episodic memory
Circuit and stage specific rules for activity in neuronal wiring

Original classification

Senior Research Fellowship

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