The right time to learn: mechanisms and optimization of spaced learning.
review · Level V
Where this comes from
- Record sourced from PubMed, PMID 26806627.
- Also identified by DOI 10.1038/nrn.2015.18 and PMC identifier 5126970.
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Abstract
For many types of learning, spaced training, which involves repeated long inter-trial intervals, leads to more robust memory formation than does massed training, which involves short or no intervals. Several cognitive theories have been proposed to explain this superiority, but only recently have data begun to delineate the underlying cellular and molecular mechanisms of spaced training, and we review these theories and data here. Computational models of the implicated signalling cascades have predicted that spaced training with irregular inter-trial intervals can enhance learning. This strategy of using models to predict optimal spaced training protocols, combined with pharmacotherapy, suggests novel ways to rescue impaired synaptic plasticity and learning.
Medical subject headings
- Learning
- Memory, Long-Term
- Models, Biological
- Neuronal Plasticity