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Involvement of oxidative stress, nuclear factor kappa B and the ubiquitin proteasomal pathway in dysferlinopathy
Dhanarajan Rajakumar1, Senthilnathan Senguttuvan2, Mathew Alexander3
1Section of Neurochemistry, Department of Neurological Sciences, Christian Medical College, Vellore, Tamil Nadu, India.
Aims:
Dysferlinopathies are autosomal recessive neuromuscular disorders arising from mutations of the protein dysferlin that preferentially affect the limbs which waste and weaken. The pathomechanisms of the diseases are not known and effective treatment is not available. Although free radicals and upstream signaling by the redox sensitive transcription factor, NF-κB, in activation of the ubiquitin pathway are shown to occur in several muscle wasting disorders, their involvement in dysferlinopathy is not known. This study analyzed the role of oxidative stress, NF-κB and the ubiquitin pathway in dysferlinopathic muscle and in dysferlin knockdown human myoblasts and myotubes.
Main Methods:
Fourteen dysferlinopathic muscle biopsies and 8 healthy control muscle biopsies were analyzed for oxidative stress, NF-κB activation and protein ubiquitinylation and human primary myoblasts and myotubes knocked down for dysferlin were studied for their state of oxidative stress.
Key Findings:
Dysferlinopathic muscle biopsies showed NF-κB p65 signaling induced protein ubiquitinylation in response to oxidative stress. Dysferlin knock down primary muscle cell cultures confirmed that oxidative stress is induced in the absence of dysferlin in muscle.
Significance:
Anti-oxidants that also inhibit nitrosative stress and NF-κB activation, might prove to be of therapeutic benefit in slowing the progression of muscle wasting that occurs with dysferlinopathy.
Insights
Oxidative stress and NF-κB signaling drive muscle wasting in dysferlinopathies. Antioxidants may offer therapeutic benefits for this neuromuscular disorder.
Area of Science:
- Neuromuscular Disorders
- Molecular Mechanisms of Muscle Wasting
- Oxidative Stress Biology
Background:
- Dysferlinopathies are genetic disorders causing progressive limb muscle weakness.
- The underlying mechanisms of muscle degeneration in dysferlinopathies remain unclear.
- Oxidative stress and NF-κB pathways are implicated in other muscle wasting conditions.
Purpose of the Study:
- To investigate the role of oxidative stress, NF-κB signaling, and protein ubiquitinylation in dysferlinopathy.
- To analyze these pathways in patient muscle biopsies and cell cultures with reduced dysferlin.
Main Methods:
- Analysis of 14 dysferlinopathic and 8 control muscle biopsies.
- Assessment of oxidative stress, NF-κB activation, and protein ubiquitinylation.
- Study of oxidative stress in human myoblasts and myotubes with dysferlin knockdown.
Main Results:
- Dysferlinopathic muscle showed NF-κB p65 signaling-induced protein ubiquitinylation.
- Oxidative stress was confirmed in muscle cells lacking dysferlin.
- These findings link oxidative stress and ubiquitin pathways to dysferlin deficiency.
Conclusions:
- Oxidative stress and NF-κB activation are key contributors to muscle pathology in dysferlinopathies.
- Antioxidants targeting nitrosative stress and NF-κB may be a viable therapeutic strategy.
- This research provides insights into potential treatments for slowing disease progression.
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