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Published on: May 10, 2017
Mitochondrial Impairment in Oligodendroglial Cells Induces Cytokine Expression and Signaling
Miriam Scheld1, Athanassios Fragoulis2, Stella Nyamoya3,4
1Institute of Neuroanatomy, Faculty of Medicine, RWTH Aachen University, Wendlingweg 2, 52074, Aachen, Germany. mscheld@ukaachen.de.
Abstract:
Widespread inflammatory lesions within the central nervous system grey and white matter are major hallmarks of multiple sclerosis. The development of full-blown demyelinating multiple sclerosis lesions might be preceded by preactive lesions which are characterized by focal microglia activation in close spatial relation to apoptotic oligodendrocytes. In this study, we investigated the expression of signaling molecules of oligodendrocytes that might be involved in initial microglia activation during preactive lesion formation. Sodium azide was used to trigger mitochondrial impairment and cellular stress in oligodendroglial cells in vitro. Among various chemokines and cytokines, IL6 was identified as a possible oligodendroglial cell-derived signaling molecule in response to cellular stress. Relevance of this finding for lesion development was further explored in the cuprizone model by applying short-term cuprizone feeding (2-4 days) on male C57BL/6 mice and subsequent analysis of gene expression, in situ hybridization and histology. Additionally, we analyzed the possible signaling of stressed oligodendroglial cells in vitro as well as in the cuprizone mouse model. In vitro, conditioned medium of stressed oligodendroglial cells triggered the activation of microglia cells. In cuprizone-fed animals, IL6 expression in oligodendrocytes was found in close vicinity of activated microglia cells. Taken together, our data support the view that stressed oligodendrocytes have the potential to activate microglia cells through a specific cocktail of chemokines and cytokines among IL6. Further studies will have to identify the temporal activation pattern of these signaling molecules, their cellular sources, and impact on neuroinflammation.
Insights
Stressed oligodendrocytes, the cells forming myelin in the brain, can activate microglia, immune cells implicated in multiple sclerosis, by releasing signaling molecules like interleukin-6 (IL6). This discovery sheds light on early multiple sclerosis lesion formation.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Multiple sclerosis is characterized by inflammatory lesions in the central nervous system.
- Preactive lesions, featuring microglia activation near apoptotic oligodendrocytes, may precede full demyelination.
- Understanding early signaling events in lesion formation is crucial for therapeutic development.
Purpose of the Study:
- To investigate signaling molecules from oligodendrocytes involved in initial microglia activation during preactive lesion formation.
- To explore the role of stressed oligodendrocytes in initiating neuroinflammation.
Main Methods:
- Oligodendroglial cells were stressed in vitro using sodium azide to induce mitochondrial impairment.
- Gene expression, in situ hybridization, and histology were analyzed in the cuprizone mouse model.
- Conditioned media from stressed oligodendroglial cells were used to assess microglia activation.
Main Results:
- Interleukin-6 (IL6) was identified as a key oligodendroglial cell-derived signaling molecule in response to cellular stress.
- Stressed oligodendroglial cells in vitro activated microglia.
- In the cuprizone model, IL6 expression in oligodendrocytes was observed near activated microglia.
Conclusions:
- Stressed oligodendrocytes can activate microglia through signaling molecules, including IL6.
- This pathway is relevant to the early stages of multiple sclerosis lesion development.
- Further research is needed to elucidate the precise signaling patterns and impact on neuroinflammation.
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