Completed Brain & Nervous System Psychology & Behaviour

Dynamics of cell assemblies underlying adaptive and mal-adaptive memories

In plain English

AI plain-English summary

Nerve cells in the hippocampus and nucleus accumbens fire in coordinated patterns—waves and rhythms—that encode memories of where and when important events happen, and this programme will manipulate those patterns with light to see how they go wrong in disorders like drug addiction. Current knowledge cannot explain exactly how these electrical rhythms emerge from the activity of different cell types, or why they break down in maladaptive memories—such as the learned link between a place and a drug reward. This research fills that gap by combining rodent behaviour, brain recordings, and optogenetics to experimentally test which cell assemblies produce accurate memory representations and which produce abnormal ones. If successful, the work will reveal the fundamental neural choreography behind everyday memory, with no immediate practical application. However, understanding how cell assemblies coordinate to guide behaviour could eventually inform therapies for conditions where memory goes awry—such as post-traumatic stress disorder or substance-use disorders—by identifying specific rhythms or cell types that could be targeted to weaken harmful associations.

View original technical description
Learning and memory processes rely on the fine coordination of nerve cell activity in several brain regions including the hippocampus and the nucleus accumbens. In this programme we aim to explain how and why nerve activity is organised, not only for understanding normal brain function but also for explaining what goes wrong during memory disorders, including those associating an environment with drugs of abuse. We seek to explain how nerve cells in these brain regions produce accurate patterns of electrical activity that are essential for our memory representations of environments in which salient life events have been experienced. In this work we use cutting edge technologies, ranging from the combined use of rodent behavioural paradigms and brain recordings to light-based manipulation of nerve cell activity. In so doing we place special emphasis on explaining when, why and how special patterns of electrical activity, such as waves or rhythms in different types of nerve cell assist brain operations during normal behaviours. By using light-based tools to experimentally interact with different cell types in these brain circuits we identify patterns of electrical activity that might support abnormal behaviours. In conclusion, this programme of research will allow us to provide novel insights into how nerve cells in the brain coordinate their activity to guide so much of our daily behaviour in both health and disease.

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Researchers

David Dupret (Principal Investigator)

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Original classification

Intramural

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