ArticleAmerican journal of physiology. Cell physiology2025
Acute mitochondrial reactive oxygen species emissions drive mitochondrial dysfunction after traumatic muscle injury in male mice.
Article in American journal of physiology. Cell physiology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 4 papers.
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Who cites it
4 citing papers in PubMed.
- 17β-Estradiol mitigates ovariectomy-induced defects in mitochondrial bioenergetics and redox balance after VML injury in female mice.American journal of physiology. Cell physiology · 2026Article
- When rehabilitation is not enough, how targeting metabolism can overcome the limited plasticity of skeletal muscle after traumatic injury.Experimental physiology · 2026Review
- Peripheral blood mononuclear cell mitochondrial bioenergetics are related to vascular endothelial function in young and older adults.American journal of physiology. Regulatory, integrative and comparative physiology · 2026Article
- Retrospective transcriptomic analysis indicates temporal dysregulation of mitochondrial genes and metabolic pathways after volumetric muscle loss injury.Physiological reports · 2025Article
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9 authors.
Funding
Abstract
Volumetric muscle loss (VML) is characterized by contractile weakness, dysfunctional mitochondrial bioenergetics, and poor rehabilitation plasticity. A hyperpolarized mitochondrial membrane potential is one attribute of the dysfunction bioenergetics and can lead to excessive reactive oxygen species (ROS) emissions. The primary objective of this study was to define the role of acute ROS emissions after VML injury. Male C57BL/6J mice were randomized into experimental and control groups. A time course of ROS emissions and antioxidant buffering capacity (AoxBC) for VML-injured muscles was established across the first 60 days postinjury (dpi). SS-31, a mitochondrial-targeted peptide, was administered subcutaneously (8 mg/kg/day) for upto 14 dpi, and specific electron transport chain complex ROS emissions and mitochondrial bioenergetics were investigated. SS-31 and wheel running were combined in a regenerative rehabilitation model to determine whether attenuating acute ROS emissions improved adaptive capability of the remaining muscle. Lipidomic and proteomic analyses were conducted to explore mechanisms of SS-31 benefit after VML. ROS emissions were greater and AoxBC was less during the first 14 dpi and this was associated with dysfunctional mitochondrial bioenergetics regardless of carbohydrate or fat fuel substrate. Complexes I, II, and III were identified as the primary sources of ROS emissions. SS-31 attenuated ROS emissions at both 7 and 14dpi and led to greater mitochondrial respiratory conductance and efficiency out to 30 dpi. Regenerative rehabilitation did not produce greater contractile adaptations, but there was modest evidence of greater metabolic adaptations compared with rehabilitation alone. Lipidomic and proteomic analyses suggest that SS-31 contributes to redox protein abundance alterations after VML injury.
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