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RNA-binding protein altered expression and mislocalization in MS
Katsuhisa Masaki1, Yoshifumi Sonobe1, Ghanashyam Ghadge1
1From the Department of Neurology (K.M., Y.S., G.G., R.P.R.) and Department of Pathology (P.P.), University of Chicago Medical Center, IL; Neuroimmunology Research Laboratory (P.L., S.Z., A.P.), Centre du Recherche du Centre Hospitalier de l'Université de Montréal (CRCHUM), QC, Canada; and Neuroimmunology Unit (F.P., Q.-L.C., J.P.A.), Montreal Neurological Institute, McGill University, QC, Canada.
Objective:
To determine whether there are nuclear depletion and cellular mislocalization of RNA-binding proteins (RBPs) transactivation response DNA-binding protein of 43 kDa (TDP-43), fused in sarcoma (FUS), and polypyrimidine tract-binding protein (PTB) in MS, as is the case in amyotrophic lateral sclerosis (ALS) and oligodendrocytes infected with Theiler murine encephalomyelitis virus (TMEV), we examined MS lesions and in vitro cultured primary human brain-derived oligodendrocytes.
Methods:
Nuclear depletion and mislocalization of TDP-43, FUS, and PTB are thought to contribute to the pathogenesis of ALS and TMEV demyelination. The latter findings prompted us to investigate these RBPs in the demyelinated lesions of MS and in in vitro cultured human brain-derived oligodendrocytes under metabolic stress conditions.
Results:
We found (1) mislocalized TDP-43 in oligodendrocytes in active lesions in some patients with MS; (2) decreased PTB1 expression in oligodendrocytes in mixed active/inactive demyelinating lesions; (3) decreased nuclear expression of PTB2 in neurons in cortical demyelinating lesions; and (4) nuclear depletion of TDP-43 in oligodendrocytes under metabolic stress induced by low glucose/low nutrient conditions compared with optimal culture conditions.
Conclusion:
TDP-43 has been found to have a key role in oligodendrocyte function and viability, whereas PTB is important in neuronal differentiation, suggesting that altered expression and mislocalization of these RBPs in MS lesions may contribute to the pathogenesis of demyelination and neurodegeneration. Our findings also identify nucleocytoplasmic transport as a target for treatment.
Insights
RNA-binding proteins (RBPs) like TDP-43 and PTB show altered localization in multiple sclerosis (MS) lesions. These changes in oligodendrocytes and neurons may contribute to MS pathogenesis and neurodegeneration.
Area of Science:
- Neuroscience
- Molecular Biology
- Pathology
Background:
- Altered nuclear localization of RNA-binding proteins (RBPs) is implicated in neurodegenerative diseases like ALS.
- Specific RBPs, including TDP-43 and PTB, are crucial for cellular function and neuronal development.
- Theiler murine encephalomyelitis virus (TMEV) infection in oligodendrocytes causes demyelination associated with RBP mislocalization.
Purpose of the Study:
- To investigate nuclear depletion and mislocalization of TDP-43, FUS, and PTB in MS lesions.
- To examine these RBPs in human oligodendrocytes under metabolic stress in vitro.
- To determine if RBP alterations in MS mirror those seen in ALS and TMEV infection.
Main Methods:
- Analysis of MS lesions for TDP-43, FUS, and PTB localization and expression.
- In vitro culture of primary human brain-derived oligodendrocytes.
- Induction of metabolic stress (low glucose/nutrients) in cultured oligodendrocytes.
Main Results:
- Mislocalized TDP-43 observed in oligodendrocytes within active MS lesions.
- Decreased PTB1 expression in oligodendrocytes and decreased nuclear PTB2 in neurons in MS lesions.
- Nuclear depletion of TDP-43 in oligodendrocytes under metabolic stress conditions.
- FUS mislocalization was not explicitly detailed in the provided results.
Conclusions:
- Altered expression and mislocalization of TDP-43 and PTB in MS lesions may contribute to demyelination and neurodegeneration.
- TDP-43 is vital for oligodendrocyte function, while PTB is important for neuronal differentiation.
- Targeting nucleocytoplasmic transport pathways could be a therapeutic strategy for MS.
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