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Updated: Feb 18, 2026

Rapid and Specific Immunomagnetic Isolation of Mouse Primary Oligodendrocytes
Published on: May 21, 2018
Origin and dynamics of oligodendrocytes in the developing brain: Implications for perinatal white matter injury
Erik van Tilborg1, Caroline G M de Theije1, Maurik van Hal1
1Laboratory of Neuroimmunology and Developmental Origins of Disease, University Medical Center Utrecht, Utrecht University, Utrecht, The Netherlands.
Insights
Premature infants face high risks of white matter injury (WMI) due to perinatal insults. Understanding oligodendrocyte precursor cell (OPC) development is key to preventing WMI and improving treatments for preterm infants.
Area of Science:
- Neuroscience
- Developmental Biology
- Pathophysiology
Background:
- Premature infants are susceptible to white matter injury (WMI) from hypoxic and inflammatory insults.
- These insults impair oligodendrocyte (OL) maturation, leading to myelination deficits.
- Understanding normal white matter development is crucial for elucidating WMI pathophysiology.
Purpose of the Study:
- To explore the cellular mechanisms of healthy white matter development.
- To investigate the role of oligodendrocyte precursor cells (OPCs) in myelination.
- To provide insights into potential treatments for WMI in preterm infants.
Main Methods:
- Review of recent studies on OL lineage development.
- Analysis of OPC heterogeneity and developmental waves.
- Comparison of myelination patterns in rodents and humans.
Main Results:
- OLs develop from neural stem cells via OPCs.
- OPCs exhibit dynamic, multi-wave development and potential heterogeneity.
- Myelination is a plastic process involving OPC generation and elimination.
Conclusions:
- Understanding OPC biology offers insights into preterm WMI.
- Rodent and human myelination share similarities, supporting experimental models.
- Further research into OL biology may reveal new therapeutic strategies for WMI.
Abstract:
Infants born prematurely are at high risk to develop white matter injury (WMI), due to exposure to hypoxic and/or inflammatory insults. Such perinatal insults negatively impact the maturation of oligodendrocytes (OLs), thereby causing deficits in myelination. To elucidate the precise pathophysiology underlying perinatal WMI, it is essential to fully understand the cellular mechanisms contributing to healthy/normal white matter development. OLs are responsible for myelination of axons. During brain development, OLs are generally derived from neuroepithelial zones, where neural stem cells committed to the OL lineage differentiate into OL precursor cells (OPCs). OPCs, in turn, develop into premyelinating OLs and finally mature into myelinating OLs. Recent studies revealed that OPCs develop in multiple waves and form potentially heterogeneous populations. Furthermore, it has been shown that myelination is a dynamic and plastic process with an excess of OPCs being generated and then abolished if not integrated into neural circuits. Myelination patterns between rodents and humans show high spatial and temporal similarity. Therefore, experimental studies on OL biology may provide novel insights into the pathophysiology of WMI in the preterm infant and offers new perspectives on potential treatments for these patients.
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