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Published on: February 17, 2016
mTOR Signaling Regulates Metabolic Function in Oligodendrocyte Precursor Cells and Promotes Efficient Brain
Marisa A Jeffries1, Lauren E McLane1, Luipa Khandker1
1Department of Pharmacology, Physiology, and Neuroscience and Center for Cell Signaling, Rutgers New Jersey Medical School, Newark, New Jersey 07103.
Abstract:
In demyelinating diseases, such as multiple sclerosis, primary loss of myelin and subsequent neuronal degeneration throughout the CNS impair patient functionality. While the importance of mechanistic target of rapamycin (mTOR) signaling during developmental myelination is known, no studies have yet directly examined the function of mTOR signaling specifically in the oligodendrocyte (OL) lineage during remyelination. Here, we conditionally deleted Mtor from adult oligodendrocyte precursor cells (OPCs) using Ng2-Cre in male adult mice to test its function in new OLs responsible for remyelination. During early remyelination after cuprizone-induced demyelination, mice lacking mTOR in adult OPCs had unchanged OL numbers but thinner myelin. Myelin thickness recovered by late-stage repair, suggesting a delay in myelin production when Mtor is deleted from adult OPCs. Surprisingly, loss of mTOR in OPCs had no effect on efficiency of remyelination after lysophosphatidylcholine lesions in either the spinal cord or corpus callosum, suggesting that mTOR signaling functions specifically in a pathway dysregulated by cuprizone to promote remyelination efficiency. We further determined that cuprizone and inhibition of mTOR cooperatively compromise metabolic function in primary rat OLs undergoing differentiation. Together, our results support the conclusion that mTOR signaling in OPCs is required to overcome the metabolic dysfunction in the cuprizone-demyelinated adult brain.SIGNIFICANCE STATEMENT Impaired remyelination by oligodendrocytes contributes to the progressive pathology in multiple sclerosis, so it is critical to identify mechanisms of improving remyelination. The goal of this study was to examine mechanistic target of rapamycin (mTOR) signaling in remyelination. Here, we provide evidence that mTOR signaling promotes efficient remyelination of the brain after cuprizone-mediated demyelination but has no effect on remyelination after lysophosphatidylcholine demyelination in the spinal cord or brain. We also present novel data revealing that mTOR inhibition and cuprizone treatment additively affect the metabolic profile of differentiating oligodendrocytes, supporting a mechanism for the observed remyelination delay. These data suggest that altered metabolic function may underlie failure of remyelination in multiple sclerosis lesions and that mTOR signaling may be of therapeutic potential for promoting remyelination.
Insights
Mechanistic target of rapamycin (mTOR) signaling is crucial for efficient remyelination in the brain after cuprizone-induced demyelination. Loss of mTOR in oligodendrocytes delays myelin repair by impairing metabolic function, highlighting its therapeutic potential.
Area of Science:
- Neuroscience
- Cell Biology
- Demyelinating Diseases
Background:
- Multiple sclerosis (MS) involves myelin loss and neuronal damage, impairing function.
- Oligodendrocyte (OL) dysfunction hinders remyelination in MS.
- Mechanistic target of rapamycin (mTOR) signaling is vital for developmental myelination but its role in remyelination is unexplored.
Purpose of the Study:
- To investigate the function of mTOR signaling in adult oligodendrocyte precursor cells (OPCs) during remyelination.
- To determine if mTOR signaling is essential for efficient myelin repair in demyelinating diseases.
Main Methods:
- Conditional deletion of mTOR in adult OPCs using Ng2-Cre in male mice.
- Induction of demyelination using cuprizone and lysophosphatidylcholine (LPC).
- Assessment of OL numbers, myelin thickness, and remyelination efficiency.
- Evaluation of metabolic function in primary rat OLs.
Main Results:
- Loss of mTOR in adult OPCs delayed early remyelination and reduced myelin thickness after cuprizone treatment.
- mTOR deletion did not affect remyelination efficiency after LPC-induced lesions.
- Cuprizone and mTOR inhibition synergistically impaired metabolic function in differentiating OLs.
Conclusions:
- mTOR signaling in OPCs is critical for overcoming metabolic dysfunction during cuprizone-induced demyelination.
- mTOR promotes efficient remyelination specifically in pathways affected by cuprizone.
- Altered oligodendrocyte metabolism may contribute to remyelination failure in MS, suggesting mTOR as a therapeutic target.
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