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Regenerative Capacity of Macrophages for Remyelination
Khalil S Rawji1, Manoj K Mishra1, V Wee Yong1
1Hotchkiss Brain Institute and the Department of Clinical Neurosciences, University of Calgary Calgary, AB, Canada.
Abstract:
White matter injury, consisting of loss of axons, myelin, and oligodendrocytes, is common in many neurological disorders and is believed to underlie several motor and sensory deficits. Remyelination is the process in which the insulative myelin sheath is restored to axons, thereby facilitating recovery from functional loss. Remyelination proceeds with oligodendrocyte precursor cells (OPCs) that differentiate into oligodendrocytes to synthesize the new myelin sheath after demyelination. This process is influenced by several factors, including trophic factors, inhibitory molecules in the lesion microenvironment, age of the subject, as well as the inflammatory response. Currently studied strategies that enhance remyelination consist of pharmacological approaches that directly induce OPC differentiation or using agents to neutralize the inhibitory microenvironment. Another strategy is to harness a reparative inflammatory response. This response, coordinated by central nervous system resident microglia and peripherally-derived infiltrating macrophages, has been shown to be important in the remyelination process. These innate immune cells perform important functions in remyelination, including the proteolysis and phagocytosis of inhibitory molecules present in the lesion microenvironment, the provision of trophic and metabolic factors to OPCs, in addition to iron handling capacity. Additionally, an initial pro-inflammatory phase followed by a regulatory/anti-inflammatory phase has been shown to be important for OPC proliferation and differentiation, respectively. This review will discuss the beneficial roles of macrophages/microglia in remyelination and discuss therapeutic strategies to obtain the optimal regenerative macrophage phenotype for enhanced remyelination.
Insights
Remyelination restores myelin after white matter injury, aided by immune cells. Harnessing reparative macrophages and microglia offers a promising therapeutic strategy for neurological recovery.
Area of Science:
- Neuroscience
- Immunology
- Regenerative Medicine
Background:
- White matter injury leads to myelin loss and neurological deficits.
- Remyelination, the restoration of myelin, is crucial for functional recovery.
- Oligodendrocyte precursor cells (OPCs) differentiate to remyelinate axons.
Purpose of the Study:
- To review the beneficial roles of macrophages and microglia in remyelination.
- To discuss therapeutic strategies for optimizing macrophage phenotypes for enhanced remyelination.
Main Methods:
- Literature review of studies on white matter injury, remyelination, and immune cell function.
- Analysis of the mechanisms by which macrophages/microglia influence OPCs and the lesion microenvironment.
- Discussion of current and potential therapeutic strategies targeting immune cells for remyelination.
Main Results:
- Macrophages and microglia play critical roles in remyelination.
- These immune cells clear inhibitory molecules, provide trophic support to OPCs, and manage iron.
- An inflammatory response with distinct pro-inflammatory and anti-inflammatory phases is vital for OPC proliferation and differentiation.
Conclusions:
- Macrophages and microglia are key players in the natural remyelination process.
- Therapeutic strategies aimed at modulating immune cell function hold significant potential for promoting myelin repair.
- Optimizing the regenerative macrophage phenotype could enhance recovery from white matter injury.

