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Author Spotlight: Advanced Integrated Model for Sepsis-Induced Myopathy and Single-Cell Metabolic Analysis
Published on: June 14, 2024
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Mitoquinone mesylate (MitoQ) prevents sepsis-induced diaphragm dysfunction
Gerald S Supinski1, Elizabeth A Schroder1, Lin Wang1
1Division of Pulmonary, Critical Care and Sleep Medicine, Department of Internal Medicine, University of Kentucky, Lexington, Kentucky.
Journal of Applied Physiology (Bethesda, Md. : 1985)
|July 1, 2021
Summary
Mitoquinone mesylate (MitoQ), a targeted antioxidant, prevented sepsis-induced diaphragm dysfunction in mice by preserving muscle force and mitochondrial function. This suggests MitoQ could be a novel therapeutic for sepsis patients with respiratory failure.
Area of Science:
- Mitochondrial Medicine
- Sepsis Pathophysiology
- Respiratory Physiology
Background:
- Sepsis frequently causes diaphragm dysfunction, leading to respiratory failure in mechanically ventilated patients.
- Diaphragm weakness in sepsis is linked to mitochondrial free radical generation.
- No pharmacological treatments currently exist for sepsis-induced diaphragm dysfunction.
Purpose of the Study:
- To investigate if mitoquinone mesylate (MitoQ), a mitochondrially targeted antioxidant, can prevent sepsis-induced diaphragm dysfunction.
- To assess the effects of MitoQ on diaphragm force generation, mitochondrial function, and oxidative stress markers in a mouse model of sepsis.
Main Methods:
- Male mice underwent cecal ligation and puncture (CLP) to induce sepsis or sham surgery.
- Mice received either saline or MitoQ (3.5 mg/kg/day) intraperitoneally.
- Diaphragm force, myosin heavy chain content, mitochondrial oxygen consumption (OCR), and aconitase activity were measured 48 hours post-surgery. Studies were also conducted in female mice and with endotoxin-induced sepsis.
Main Results:
- CLP significantly decreased diaphragm specific force generation, which was prevented by MitoQ treatment.
- MitoQ administration preserved mitochondrial oxygen consumption and aconitase activity, which were reduced by CLP.
- Similar protective effects of MitoQ were observed in female mice, endotoxin-induced sepsis, and with delayed treatment initiation.
Conclusions:
- MitoQ effectively prevents sepsis-induced diaphragm dysfunction in mice, preserving muscle force and mitochondrial integrity.
- MitoQ's ability to scavenge mitochondrial free radicals appears key to its protective effects.
- MitoQ shows potential as a therapeutic agent for preserving diaphragm function in critically ill sepsis patients.

