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Updated: May 29, 2025

Assessing Mitochondrial Function in Sciatic Nerve by High-Resolution Respirometry
Published on: May 5, 2022
Charcot Marie Tooth disease pathology is associated with mitochondrial dysfunction and lower glutathione production
Nafisa R Komilova1,2, Plamena R Angelova3, Elisa Cali3
1Department of Biophysics, National University of Uzbekistan, Tashkent, Uzbekistan.
Abstract:
Charcot Marie Tooth (CMT) or hereditary motor and sensory neuropathy is a heterogeneous neurological disorder leading to nerve damage and muscle weakness. Although multiple mutations associated with CMT were identified, the cellular and molecular mechanisms of this pathology are still unclear, although most of the subtype of this disease involve mitochondrial dysfunction and oxidative stress in the mechanism of pathology. Using patients' fibroblasts of autosomal recessive, predominantly demyelinating form of CMT-CMT4B3 subtype, we studied the effect of these mutations on mitochondrial metabolism and redox balance. We have found that CMT4B3-associated mutations decrease mitochondrial membrane potential and mitochondrial NADH redox index suggesting an increase rate of mitochondrial respiration in these cells. However, mitochondrial dysfunction had no profound effect on the overall levels of ATP and on the energy capacity of these cells. Although the rate of reactive oxygen species production in mitochondria and cytosol in fibroblasts with CMT4B3 pathology was not significantly higher than in control, the level of GSH was significantly lower. Lower level of glutathione was most likely induced by the lower level of NADPH production, which was used for a GSH cycling, however, expression levels and activity of the major NADPH producing enzyme Glucose-6-Phosphate Dehydrogenase (G6PDH) was not altered. Low level of GSH renders the fibroblast with CMT4B3 pathology more sensitive to oxidative stress and further treatment of cells with hydroperoxide increases CMT patients' fibroblast death rates compared to control. Thus, CMT4B3 pathology makes cells vulnerable to oxidative stress due to the lack of major endogenous antioxidant GSH.
Insights
Charcot Marie Tooth (CMT) pathology, specifically CMT4B3, impairs cellular antioxidant defenses by lowering glutathione levels. This makes CMT patient cells more vulnerable to oxidative stress and damage.
Area of Science:
- Neurology
- Cellular Biology
- Biochemistry
Background:
- Charcot Marie Tooth (CMT) is a heterogeneous neurological disorder causing nerve damage and muscle weakness.
- While mutations are known, the precise cellular mechanisms, particularly mitochondrial dysfunction and oxidative stress, remain unclear.
- CMT4B3 is a demyelinating subtype with unclear pathological pathways.
Purpose of the Study:
- To investigate the impact of CMT4B3 mutations on mitochondrial metabolism and redox balance in patient fibroblasts.
- To elucidate the role of oxidative stress and antioxidant defenses in CMT4B3 pathogenesis.
Main Methods:
- Utilized fibroblasts from CMT4B3 patients.
- Assessed mitochondrial membrane potential, NADH redox index, ATP levels, and reactive oxygen species (ROS) production.
- Quantified glutathione (GSH) and NADPH levels.
- Examined Glucose-6-Phosphate Dehydrogenase (G6PDH) activity.
- Exposed cells to hydroperoxide to evaluate oxidative stress sensitivity.
Main Results:
- CMT4B3 mutations reduced mitochondrial membrane potential and NADH redox index, indicating increased respiration.
- Cellular ATP levels and energy capacity were not significantly affected.
- ROS production was not elevated, but glutathione (GSH) levels were significantly lower.
- Lower GSH was linked to reduced NADPH production, despite normal G6PDH activity.
- CMT4B3 fibroblasts showed increased sensitivity to oxidative stress, with higher cell death rates upon hydroperoxide treatment.
Conclusions:
- CMT4B3 pathology compromises cellular antioxidant capacity by depleting GSH.
- This depletion increases vulnerability to oxidative stress, contributing to disease pathogenesis.
- The findings highlight the critical role of the GSH/NADPH system in CMT4B3 and suggest therapeutic targets.
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