Pharmacological reduction of lipid hydroperoxides as a potential modulator of sarcopenia
Jacob L Brown1,2, Hongyang Xu1, Elizabeth Duggan1,2
1Aging and Metabolism Research Program, Oklahoma Medical Research Foundation, Oklahoma City, OK, USA.
Abstract:
We previously reported that elevated expression of phospholipid hydroperoxide glutathione peroxidase 4, an enzyme that regulates membrane lipid hydroperoxides, can mitigate sarcopenia in mice. However, it is still unknown whether a pharmacological intervention designed to modulate lipid hydroperoxides might be an effective strategy to reduce sarcopenia in aged mice. Here we asked whether a newly developed compound, CMD-35647 (CMD), can reduce muscle atrophy induced by sciatic nerve transection. We treated mice daily with vehicle or CMD (15 mg/kg, i.p. injection) starting 1 day prior to denervation. CMD treatment reduced hydroperoxide generation and blunted muscle atrophy by over 17% in denervated muscle. To test whether CMD can reduce ageing-induced muscle atrophy and weakness, we treated mice with either vehicle or CMD (15 mg/kg, i.p. injection) 3 days per week for 8 months, starting at 18 months of age until 26 months of age. We measured muscle mass, functional status of neuromuscular junctions, muscle contractile function and mitochondrial function in control and CMD-treated 26-month-old female mice. Treatment with CMD conferred protection against muscle atrophy in both tibialis anterior and extensor digitorum longus that was associated with maintenance of fibre size of MHC 2b and 2x fibres. Mitochondrial respiration was also protected in CMD-treated mice. We also found that muscle force generation was protected with CMD treatment despite denervation in ∼25% of the muscle fibres. Overall, this study shows that pharmacological interventions designed to reduce lipid hydroperoxides might be effective for preventing sarcopenia. KEY POINTS: Sarcopenia in aged mice is associated with muscle loss, contractile dysfunction, denervation, and reduced mitochondrial respiration. CMD-35647 is a pharmocological compound that can neutralize lipid hydroperoxides. 8 month treatment of CMD-35647 mitigated muscle atrophy in tibialis anterior and extensor digitorum longus. 8 month treatment of CMD-35647 improved muscle function in aged mice independent of the neuromuscular junction. Aged mice treated with CMD-35647 had greater respiration in red gastrocnemius muscle when compared to vehicle treated mice.
Insights
Pharmacological reduction of lipid hydroperoxides with CMD-35647 mitigated age-related muscle loss and weakness in mice. This compound protected muscle mass, fiber size, and function, offering a potential strategy against sarcopenia.
Area of Science:
- Gerontology
- Muscle Physiology
- Pharmacology
Background:
- Sarcopenia, characterized by muscle loss and weakness, is a hallmark of aging.
- Elevated lipid hydroperoxides are implicated in sarcopenia.
- Phospholipid hydroperoxide glutathione peroxidase 4 (GPx4) mitigates sarcopenia in mice.
Purpose of the Study:
- To investigate if pharmacological modulation of lipid hydroperoxides can prevent sarcopenia in aged mice.
- To evaluate the efficacy of CMD-35647 (CMD) in reducing muscle atrophy and dysfunction.
Main Methods:
- Mice were treated with vehicle or CMD (15 mg/kg) via intraperitoneal injection.
- Sciatic nerve transection model: daily treatment starting 1 day prior to denervation.
- Aging model: 8-month treatment (3 days/week) starting at 18 months of age.
- Assessed muscle mass, neuromuscular junction function, muscle contractile function, and mitochondrial respiration.
Main Results:
- CMD treatment reduced hydroperoxide generation and blunted muscle atrophy by over 17% in denervated muscle.
- CMD conferred protection against muscle atrophy in tibialis anterior and extensor digitorum longus, maintaining fiber size.
- CMD treatment preserved muscle force generation and improved mitochondrial respiration in aged mice.
Conclusions:
- Pharmacological interventions targeting lipid hydroperoxides, such as CMD-35647, show promise in preventing sarcopenia.
- CMD-35647 mitigates muscle atrophy and dysfunction in aged mice, independent of neuromuscular junction integrity.
- Modulating lipid hydroperoxides may be a viable therapeutic strategy for age-related muscle decline.
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