Related Experiment Video
Updated: Feb 24, 2026

Preparation and Immunostaining of Myelinating Organotypic Cerebellar Slice Cultures
Published on: March 20, 2019
Intrinsic and adaptive myelination-A sequential mechanism for smart wiring in the brain
Marie E Bechler1, Matthew Swire1, Charles Ffrench-Constant1
1MRC Centre for Regenerative Medicine and MS Society Edinburgh Centre for MS Research, The University of Edinburgh, 5 Little France Drive, Edinburgh, EH16 4UU, United Kingdom.
None:
The concept of adaptive myelination-myelin plasticity regulated by activity-is an important advance for the field. What signals set up the adaptable pattern in the first place? Here we review work that demonstrates an intrinsic pathway within oligodendrocytes requiring only an axon-shaped substrate to generate multilayered and compacted myelin sheaths of a physiological length. Based on this, we discuss a model we proposed in 2015 which argues that myelination has two phases-intrinsic and then adaptive-which together generate "smart wiring," in which active axons become more myelinated. This model explains why prior studies have failed to identify a signal necessary for central nervous system myelination and argues that myelination, like synapses, might contribute to learning by the activity-dependent modification of an initially hard-wired pattern. © 2017 The Authors. Developmental Neurobiology Published by Wiley Periodicals, Inc. Develop Neurobiol 78: 68-79, 2018.
More Related Videos
04:08Coherent Anti-Stokes Raman Spectroscopy CARS Application for Imaging Myelination in Brain Slices
Published on: July 22, 2022
10:28Assessment of Ultrastructural Neuroplasticity Parameters After In Utero Transduction of the Developing Mouse Brain and Spinal Cord
Published on: February 26, 2019
Related Concept Videos
Nervous Tissue: Myelin
Schwann cells begin to form myelin sheaths around axons during fetal development. They wrap around a small...
Neuroplasticity
Assembly of Complex Microtubule Structures
Neurogenesis and Regeneration of Nervous Tissue
Neuronal Communication
Action Potentials