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Updated: Jan 30, 2026

Ex Vivo Assessment of Contractility, Fatigability and Alternans in Isolated Skeletal Muscles
Published on: November 1, 2012
Mitochondrial oxidative stress impairs contractile function but paradoxically increases muscle mass via fibre
Bumsoo Ahn1, Rojina Ranjit1, Pavithra Premkumar1
1Aging and Metabolism Research Program, Oklahoma Medical Research Foundation, Oklahoma City, USA.
Background:
Excess reactive oxygen species (ROS) and muscle weakness occur in parallel in multiple pathological conditions. However, the causative role of skeletal muscle mitochondrial ROS (mtROS) on neuromuscular junction (NMJ) morphology and function and muscle weakness has not been directly investigated.
Methods:
We generated mice lacking skeletal muscle-specific manganese-superoxide dismutase (mSod2KO) to increase mtROS using a cre-Lox approach driven by human skeletal actin. We determined primary functional parameters of skeletal muscle mitochondrial function (respiration, ROS, and calcium retention capacity) using permeabilized muscle fibres and isolated muscle mitochondria. We assessed contractile properties of isolated skeletal muscle using in situ and in vitro preparations and whole lumbrical muscles to elucidate the mechanisms of contractile dysfunction.
Results:
The mSod2KO mice, contrary to our prediction, exhibit a 10-15% increase in muscle mass associated with an ~50% increase in central nuclei and ~35% increase in branched fibres (P < 0.05). Despite the increase in muscle mass of gastrocnemius and quadriceps, in situ sciatic nerve-stimulated isometric maximum-specific force (N/cm2 ), force per cross-sectional area, is impaired by ~60% and associated with increased NMJ fragmentation and size by ~40% (P < 0.05). Intrinsic alterations of components of the contractile machinery show elevated markers of oxidative stress, for example, lipid peroxidation is increased by ~100%, oxidized glutathione is elevated by ~50%, and oxidative modifications of myofibrillar proteins are increased by ~30% (P < 0.05). We also find an approximate 20% decrease in the intracellular calcium transient that is associated with specific force deficit. Excess superoxide generation from the mitochondrial complexes causes a deficiency of succinate dehydrogenase and reduced complex-II-mediated respiration and adenosine triphosphate generation rates leading to severe exercise intolerance (~10 min vs. ~2 h in wild type, P < 0.05).
Conclusions:
Increased skeletal muscle mtROS is sufficient to elicit NMJ disruption and contractile abnormalities, but not muscle atrophy, suggesting new roles for mitochondrial oxidative stress in maintenance of muscle mass through increased fibre branching.
Insights
Mitochondrial reactive oxygen species (ROS) cause neuromuscular junction damage and muscle weakness, despite increasing muscle mass. This suggests mitochondrial oxidative stress impacts muscle maintenance and function.
Area of Science:
- Muscle physiology
- Mitochondrial biology
- Neuromuscular research
Background:
- Muscle weakness and excess reactive oxygen species (ROS) are common in diseases.
- The specific role of skeletal muscle mitochondrial ROS (mtROS) in neuromuscular junction (NMJ) function and muscle weakness was unclear.
Purpose of the Study:
- To investigate the direct impact of skeletal muscle mtROS on NMJ morphology and function.
- To determine the role of mtROS in muscle weakness and contractile dysfunction.
Main Methods:
- Generated mice with skeletal muscle-specific knockout of manganese-superoxide dismutase (mSod2KO) to increase mtROS.
- Assessed mitochondrial function, muscle contractile properties, and NMJ integrity.
Main Results:
- mSod2KO mice showed increased muscle mass but impaired muscle force (~60%) and NMJ fragmentation (~40%).
- Elevated oxidative stress markers, reduced mitochondrial respiration, and severe exercise intolerance were observed.
- A decrease in intracellular calcium transient was linked to force deficits.
Conclusions:
- Increased skeletal muscle mtROS is sufficient to disrupt NMJs and cause contractile abnormalities.
- mtROS does not cause muscle atrophy but may play a role in muscle mass maintenance via fibre branching.
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