Completed Brain & Nervous System Psychology & Behaviour

The mammillary bodies and memory: from encoding to consolidation

In plain English

AI plain-English summary

The mammillary bodies—tiny, almond-shaped clusters of neurons deep in the brain—are being put under a dual microscope in rats and humans to settle a long-standing debate about whether they simply help form new memories or also actively solidify them during sleep. For decades, these structures were thought to be involved only in memory encoding, the initial moment of learning. But recent rodent work from this team suggests they may play a second, unexplored role in memory consolidation—the process that stabilises and stores memories after they are formed. This matters because damage to the mammillary bodies is common in conditions like Korsakoff syndrome and some forms of dementia, yet current models of memory cannot explain why such damage causes severe amnesia. Without knowing what the mammillary bodies actually do, treatments remain blunt. This project is fundamental science. It will combine calcium imaging and electrophysiology in rats with fMRI in humans to track mammillary body activity during wakefulness and sleep, both in healthy brains and after targeted disruption. If successful, it will produce the first comprehensive model of how these structures contribute to post-encoding memory processing. That model could eventually inform diagnostic markers for amnesic disorders or guide rehabilitation strategies, but the immediate payoff is a clearer understanding of a core, unsolved piece of the memory puzzle.

View original technical description
The mammillary bodies (MBs) are critical for memory but their specific functions have remained largely elusive. Historically, the MBs were associated with memory encoding, however, our recent findings suggest an as yet unexplored role in memory consolidation, both at the cellular and at the systems level. The proposed research will use multi-level, comparative approaches to investigate the contribution of the MBs to post-encoding processing, during wakefulness and sleep. The combined rodent/human methodologies will take advantage of the unique benefits provided by each line of research. The application of convergent techniques with rodents (inactivation, calcium-imaging, electrophysiology, behaviour) will interrogate the contributions of the MBs to different stages of memory processing, both in an intact system and when the system is disrupted. Complementary research with humans will address similar questions. fMRI will help to assess diencephalic contributions in the intact system. The impact of damage to the MB system on aspects of sleep-related consolidation will also be assessed. Together, this research will provide a comprehensive analysis of post-encoding memory processes and support the development of wide-reaching models of MB function.

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Researchers

Seralynne Vann (EPMC Awardee)

Related Research

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Original classification

Senior Research Fellowship Basic Renewal

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