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Updated: Feb 11, 2026

Induction and Diverse Assessment Indicators of Experimental Autoimmune Encephalomyelitis
Published on: September 9, 2022
Experimental autoimmune encephalomyelitis (EAE) up-regulates the mitochondrial activity and manganese superoxide
Balamurugan Packialakshmi1, Xiaoming Zhou1
1Department of Medicine, Uniformed Services University of the Health Sciences, Bethesda, Maryland, United States of America.
Abstract:
Increases of the activity of mitochondrial electron transport chain generally lead to increases of production of ATP and reactive oxygen species (ROS) as by-products. MnSOD is the first line of defense against the stress induced by mitochondrial ROS. Our previous studies demonstrated that EAE progression increased Na,K-ATPase activity in the mouse kidney cortex. Since mitochondria are the major source of ATP, our present studies were sought to determine whether EAE progression increased mitochondrial activity. We found that severe EAE increased mitochondrial complex II and IV activities without significantly affecting complex I activity with corresponding increases of ROS in the isolated mitochondria and native kidney cortex. Severe EAE augmented both cytosolic and mitochondrial MnSOD protein levels and activities and decreased the specific activity of mitochondrial MnSOD when the total mitochondrial MnSOD activity was normalized to the protein level. Using HEK293 cells as a model free of interference from immune reactions, we found that activation of Na,K-ATPase by monensin for 24 hours increased complex II activity, mitochondrial ROS and MnSOD protein abundance, and decreased the specific activity of the mitochondrial MnSOD. Inhibition of Na,K-ATPase by ouabain or catalase attenuated the effects of monensin on the mitochondrial complex II activity, ROS, MnSOD protein level and specific activity. Kockdown of MnSOD by RNAi reduced the mitochondrial ability to generate ATP. In conclusion, EAE increases mitochondrial activity possibly to meet the energy demand from increased Na,K-ATPase activity. EAE increases mitochondrial MnSOD protein abundance to compensate for the loss of the specific activity of the enzyme, thus minimizing the harmful effects of ROS.
Insights
Experimental autoimmune encephalomyelitis (EAE) increases mitochondrial activity and reactive oxygen species (ROS) production. Enhanced mitochondrial manganese superoxide dismutase (MnSOD) protein levels help mitigate ROS damage during EAE.
Area of Science:
- Cellular biology
- Mitochondrial function
- Neuroimmunology
Background:
- Mitochondrial electron transport chain activity generates ATP and reactive oxygen species (ROS).
- Manganese superoxide dismutase (MnSOD) is crucial for combating mitochondrial ROS.
- Previous work showed EAE increases kidney Na,K-ATPase activity.
Purpose of the Study:
- To investigate if EAE progression elevates mitochondrial activity.
- To explore the relationship between Na,K-ATPase activity, mitochondrial function, and ROS production.
Main Methods:
- Assessed mitochondrial complex activities (I, II, IV) and ROS levels in EAE mouse kidneys.
- Quantified MnSOD protein levels and activity in cytosolic and mitochondrial fractions.
- Utilized HEK293 cells to model Na,K-ATPase activation/inhibition effects on mitochondrial parameters.
- Employed RNA interference (RNAi) to knock down MnSOD.
Main Results:
- Severe EAE elevated mitochondrial complex II and IV activities and increased ROS.
- EAE augmented both cytosolic and mitochondrial MnSOD levels but decreased specific mitochondrial MnSOD activity.
- Na,K-ATPase activation in HEK293 cells mimicked EAE effects on mitochondria, ROS, and MnSOD.
- MnSOD knockdown impaired mitochondrial ATP generation.
Conclusions:
- EAE likely increases mitochondrial activity to meet heightened energy demands from Na,K-ATPase.
- Elevated mitochondrial MnSOD protein in EAE compensates for reduced enzyme specific activity, reducing ROS harm.
- This suggests a compensatory mechanism in EAE to manage mitochondrial stress.
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