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Published on: October 4, 2017
Oxidant production and SOD1 protein expression in single skeletal myofibers from Down syndrome mice
Patrick M Cowley1, Divya R Nair2, Lara R DeRuisseau3
1Syracuse University, Department of Exercise Science, Syracuse, NY, USA; University of California and Veterans Affairs Medical Center, San Francisco, CA, USA.
Abstract:
Down syndrome (DS) is a genetic condition caused by the triplication of chromosome 21. Persons with DS exhibit pronounced muscle weakness, which also occurs in the Ts65Dn mouse model of DS. Oxidative stress is thought to be an underlying factor in the development of DS-related pathologies including muscle dysfunction. High-levels of oxidative stress have been attributed to triplication and elevated expression of superoxide dismutase 1 (SOD1); a gene located on chromosome 21. The elevated expression of SOD1 is postulated to increase production of hydrogen peroxide and cause oxidative injury and cell death. However, it is unknown whether SOD1 protein expression is associated with greater oxidant production in skeletal muscle from Ts65Dn mice. Thus, our objective was to assess levels of SOD1 expression and oxidant production in skeletal myofibers from the flexor digitorum brevis obtained from Ts65Dn and control mice. Measurements of oxidant production were obtained from myofibers loaded with 2',7'-dichlorodihydrofluorescein diacetate (DCFH2-DA) in the basal state and following 15min of stimulated unloaded contraction. Ts65Dn myofibers exhibited a significant decrease in basal DCF emissions (p < 0.05) that was associated with an approximate 3-fold increase in SOD1 (p < 0.05). DCF emissions were not affected by stimulating contraction of Ts65Dn or wild-type myofibers (p > 0.05). Myofibers from Ts65Dn mice tended to be smaller and myonuclear domain was lower (p < 0.05). In summary, myofibers from Ts65Dn mice exhibited decreased basal DCF emissions that were coupled with elevated protein expression of SOD1. Stimulated contraction in isolated myofibers did not affect DCF emissions in either group. These findings suggest the skeletal muscle dysfunction in the adult Ts65Dn mouse is not associated with skeletal muscle oxidative stress.
Insights
Down syndrome muscle weakness is not linked to increased oxidative stress. Ts65Dn mice, a Down syndrome model, show lower basal oxidant levels despite higher SOD1 expression, suggesting other factors cause muscle dysfunction.
Area of Science:
- Genetics
- Molecular Biology
- Physiology
Background:
- Down syndrome (DS) is characterized by muscle weakness, potentially linked to oxidative stress.
- Superoxide dismutase 1 (SOD1) gene triplication on chromosome 21 is implicated in elevated SOD1 expression and oxidative stress in DS.
- The Ts65Dn mouse is a model for DS, exhibiting muscle weakness, but the role of oxidative stress in its skeletal muscle is unclear.
Purpose of the Study:
- To investigate the association between SOD1 protein expression and oxidant production in skeletal muscle of Ts65Dn mice.
- To determine if elevated SOD1 in Ts65Dn mice leads to increased oxidative stress in skeletal myofibers.
Main Methods:
- Skeletal myofibers from the flexor digitorum brevis of Ts65Dn and control mice were analyzed.
- Oxidant production was measured using 2',7'-dichlorodihydrofluorescein diacetate (DCFH2-DA) in basal and stimulated states.
- SOD1 protein levels were assessed in conjunction with oxidant measurements.
Main Results:
- Ts65Dn myofibers showed significantly decreased basal oxidant levels (DCF emissions) despite a threefold increase in SOD1 protein expression.
- Stimulated contraction did not alter oxidant levels in myofibers from either Ts65Dn or control mice.
- Myofibers from Ts65Dn mice exhibited smaller size and reduced myonuclear domain.
Conclusions:
- Elevated SOD1 protein expression in Ts65Dn mouse skeletal muscle is not associated with increased basal oxidative stress.
- The observed skeletal muscle dysfunction in the Ts65Dn mouse model is likely not driven by oxidative stress.
- Further research is needed to identify the specific mechanisms underlying skeletal muscle dysfunction in Down syndrome.
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