Four key mechanisms, related to neuroplasticity, that support learning in the br
Four key mechanisms, related to neuroplasticity, that support learning in the brain are synaptogenesis, long-term potentiation, myelination, and sleep.
Synaptogenesis
Synaptogenesis [1] refers to the making of connections between brain cells (i.e. neurons). The connections between neurons are called synapses. Neurons that are activated together (i.e. co-activated) form and strengthen their connections (i.e. synapses). “Hebbian plasticity [2] occurs during memory formation among engram cells at the synapse level” (Kim, Choi & Kaang, 2018). “Synaptic potentiation and depression are key players in mediating the creation of memory traces or engrams” (Takeuchi, Duszkiewicz & Morris, 2014).
Long-term Potentiation
Long-term potentiation (LTP) refers to making connections more permanent. Learning is reflected by changes in the connections between our brain cells but not all connections are the same. Some connections are rapid and temporary and support STM. Others are more durable and can last hours, days, or even a lifetime (i.e. LTM). For durable learning, we want to focus on how the longer-term connections can be made. A key (biological-functional) ingredient that underlies the formation of durable connections is believed to be long-term potentiation or LTP [3] – which involves the process of synthesizing or creating proteins [4]. Research suggests that LTP can be triggered by a specific pattern of activation much like a recipe (Fields, 2005). From animal studies and from studies that involved brain cells in petri dishes, a pattern was discovered: 3 x 2. Three ‘activations’ separated by two 10-minute gaps. What was critical is that the breaks were at least 10-minutes. At 10-minutes, it is believed that each activation is treated as a unique experience by the brain. And the more frequent we experience something, the higher priority it becomes for consolidation. Thus, 3 x 2, three activations of the same brain networks (memories) separated by 10 minutes, was found to be the minimum recipe for LTP and LTM. This knowledge is what underlies the Spaced Learning teaching strategy (Kelley & Whatson, 2013).
Myelination
Myelination refers to making connections more efficient. “It is well appreciated that myelination increases conduction velocity across individual axons” (Pan et al, 2020). Although the role myelin plays in learning is far from clear, a line of thought is that myelination enables us to make our frequently used networks (schema) efficient so they draw on fewer resources. As early research in biology revealed, myelin sheath forms around the axon to insulate it so less energy is lost when activated. Recent hypotheses state that “myelination could be strengthening specific projections in a manner akin to Hebbian plasticity, facilitating communication between spatially distributed neuronal ensembles” (Pan et al, 2020).
Sleep
Finally, more recent research revealed the critical role sleep plays in learning. An important discovery showed a mechanism durin