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Updated: Jun 20, 2026

Experimental Demyelination and Remyelination of Murine Spinal Cord by Focal Injection of Lysolecithin
Published on: March 26, 2015
Axonal response of mitochondria to demyelination and complex IV activity within demyelinated axons in experimental
Simon Licht-Mayer1, Graham R Campbell1, Arpan R Mehta1,2
1Centre for Clinical Brain Sciences, University of Edinburgh, Edinburgh, UK.
Aims:
Axonal injury in multiple sclerosis (MS) and experimental models is most frequently detected in acutely demyelinating lesions. We recently reported a compensatory neuronal response, where mitochondria move to the acutely demyelinated axon and increase the mitochondrial content following lysolecithin-induced demyelination. We termed this homeostatic phenomenon, which is also evident in MS, the axonal response of mitochondria to demyelination (ARMD). The aim of this study is to determine whether ARMD is consistently evident in experimental demyelination and how its perturbation relates to axonal injury.
Methods:
In the present study, we assessed axonal mitochondrial content as well as axonal mitochondrial respiratory chain complex IV activity (cytochrome c oxidase or COX) of axons and related these to axonal injury in nine different experimental disease models. We used immunofluorescent histochemistry as well as sequential COX histochemistry followed by immunofluorescent labelling of mitochondria and axons.
Results:
We found ARMD a consistent and robust phenomenon in all experimental disease models. The increase in mitochondrial content within demyelinated axons, however, was not always accompanied by a proportionate increase in complex IV activity, particularly in highly inflammatory models such as experimental autoimmune encephalomyelitis (EAE). Axonal complex IV activity inversely correlated with the extent of axonal injury in experimental disease models.
Conclusions:
Our findings indicate that ARMD is a consistent and prominent feature and emphasise the importance of complex IV activity in the context of ARMD, especially in autoimmune inflammatory demyelination, paving the way for the development of novel neuroprotective therapies.
Insights
The axonal response of mitochondria to demyelination (ARMD) is a consistent finding in experimental models, but impaired complex IV activity correlates with axonal injury, suggesting a therapeutic target for neuroprotection.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Axonal injury is a hallmark of demyelinating diseases like multiple sclerosis (MS).
- A compensatory mitochondrial increase in demyelinated axons, termed the axonal response of mitochondria to demyelination (ARMD), has been observed.
- ARMD is also present in human MS lesions.
Purpose of the Study:
- To investigate the consistency of ARMD across various experimental demyelination models.
- To determine the relationship between ARMD and axonal injury.
- To assess the role of mitochondrial respiratory chain complex IV activity in ARMD and axonal damage.
Main Methods:
- Assessed axonal mitochondrial content and complex IV (cytochrome c oxidase) activity in nine experimental demyelination models.
- Utilized immunofluorescent histochemistry and sequential COX histochemistry.
- Correlated mitochondrial parameters with axonal injury markers.
Main Results:
- ARMD was consistently observed in all tested experimental models.
- Increased mitochondrial content did not always correlate with proportionate complex IV activity, especially in inflammatory models (e.g., EAE).
- Axonal complex IV activity showed an inverse correlation with the degree of axonal injury.
Conclusions:
- ARMD is a robust phenomenon in experimental demyelination.
- Complex IV activity is crucial in ARMD, particularly in autoimmune inflammatory demyelination.
- These findings highlight potential therapeutic strategies for neuroprotection in demyelinating diseases.
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