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Published on: September 28, 2019
Mitochondrial dysfunction in skeletal muscle of amyloid precursor protein-overexpressing mice
Simona Boncompagni1, Charbel E-H Moussa, Ezra Levy
1CeSI-Centro Scienze dell'Invecchiamento and DNI-Department of Neuroscience and Imaging, University Gabriele d'Annunzio, I-66100 Chieti, Italy.
Abstract:
Inclusion body myositis, the most common muscle disorder in the elderly, is partly characterized by abnormal expression of amyloid precursor protein (APP) and intracellular accumulation of its proteolytic fragments collectively known as β-amyloid. The present study examined the effects of β-amyloid accumulation on mitochondrial structure and function of skeletal muscle from transgenic mice (MCK-βAPP) engineered to accumulate intramyofiber β-amyloid. Electron microscopic analysis revealed that a large fraction of myofibers from 2-3-month-old MCK-βAPP mice contained numerous, heterogeneous alterations in mitochondria, and other cellular organelles. [(1)H-decoupled](13)C NMR spectroscopy showed a substantial reduction in TCA cycle activity and indicated a switch from aerobic to anaerobic glucose metabolism in the MCK-βAPP muscle. Isolated muscle fibers from the MCK-βAPP mice also exhibited a reduction in cytoplasmic pH, an increased rate of ROS production, and a partially depolarized plasmalemma. Treatment of MCK-βAPP muscle cells with Ru360, a mitochondrial Ca(2+) uniporter antagonist, reversed alterations in the plasmalemmal membrane potential (V(m)) and pH. Consistent with altered redox state of the cells, treatment of MCK-βAPP muscle cells with glutathione reversed the effects of β-amyloid accumulation on Ca(2+) transient amplitudes. We conclude that structural and functional alterations in mitochondria precede the reported appearance of histopathological and clinical features in the MCK-βAPP mice and may represent key early events in the pathogenesis of inclusion body myositis.
Insights
Beta-amyloid accumulation in inclusion body myositis causes mitochondrial dysfunction in skeletal muscle. These early mitochondrial changes may drive disease development in elderly patients.
Area of Science:
- Biochemistry
- Cell Biology
- Neurology
Background:
- Inclusion body myositis (IBM) is the most common muscle disorder in the elderly.
- Abnormal amyloid precursor protein (APP) expression and beta-amyloid accumulation characterize IBM.
- Mitochondrial dysfunction is implicated in IBM pathogenesis.
Purpose of the Study:
- To investigate the effects of beta-amyloid accumulation on skeletal muscle mitochondrial structure and function.
- To identify early molecular events in IBM pathogenesis.
Main Methods:
- Utilized transgenic mice (MCK-βAPP) engineered for intramyofiber beta-amyloid accumulation.
- Employed electron microscopy for mitochondrial structure analysis.
- Applied 13C NMR spectroscopy to assess metabolic activity.
- Measured cytoplasmic pH, ROS production, and membrane potential in isolated muscle fibers.
Main Results:
- MCK-βAPP mice exhibited significant mitochondrial and organelle alterations.
- Reduced TCA cycle activity and a shift to anaerobic metabolism were observed.
- Muscle fibers showed decreased pH, increased ROS, and altered membrane potential.
- Treatment with Ru360 and glutathione partially reversed these effects.
Conclusions:
- Mitochondrial structural and functional changes precede IBM histopathology and clinical symptoms.
- These early mitochondrial alterations are key events in IBM pathogenesis.
- Targeting mitochondrial dysfunction may offer therapeutic strategies for IBM.
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