Completed Brain & Nervous System Psychology & Behaviour

Adaptive myelination in learning and memory

In plain English

AI plain-English summary

A newly discovered type of brain cell—the oligodendrocyte—must be produced within hours of learning a new motor skill, and its failure may explain why some memories fade. The brain was long thought to harden its connections by wrapping active nerve fibres in insulating myelin, a slow process taking days. This research overturns that view. The team found that mice learning a motor task require new oligodendrocytes within two to three hours—too fast for full insulation. The cells may instead support learning through temporary contacts or by feeding energy to active nerve fibres. The same process appears necessary for non-motor, cognitive learning in a T-maze test, suggesting a general role in goal-directed memory. This is fundamental science. It asks how the brain physically encodes new information at the cellular level. If the team proves that oligodendrocytes are required for early learning and long-term memory storage, it would rewrite the textbook on memory formation. A deeper understanding of this mechanism could eventually inform treatments for conditions where learning or memory fails—such as dementia, stroke recovery, or developmental disorders—but no immediate application is being pursued.

View original technical description
We found that production of new oligodendrocytes (OLs) is stimulated by, and required for, motor skill learning in mice. New OL production was required within 2-3 hours of mice engaging with the motor task, seemingly too soon for full myelin wrapping. We will therefore investigate how, at the cellular level, OLs contribute to early-stage learning, by interfering genetically with pre-myelinating functions of OLs including process outgrowth and ensheathment, or metabolic coupling between OLs and axons. We will also investigate signalling between axons and OLs to ask whether AMPA receptor-mediated synaptic input to OLs selects electrically active axons for myelination over their inactive or less-active neighbours, and whether this contributes to learning. Recently, we found that active OL generation is required for non-motor, "cognitive" learning in a T-maze test, which relies on short-term working memory and longer-term reference memory in a spatial context. We will use additional maze tests to dissociate working and reference memory and test the hypothesis that adult OL genesis is a general requirement for goal-directed learning and memory processes. We will also perform a genetic test of the idea that myelinating OLs, which are extremely long-lived, are required for preserving long-term memories.

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Researchers

William Richardson (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

How does Adaptive Myelination Re-shape Neural Circuits During Learning?
Transcriptional control of CNS myelination in development and maturity.
Teaching old mice a new trick: the role of new myelin in learning in the aged brain
Mapping Lifetime Myelin Changes in the Brain
Mechanisms of Myelination – Elucidating the Diversity of Oligodendroglial Precursors and their Local Axon-Glia Interactions

Original classification

Investigator Award in Science

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