Key result
Systemic AV.RSV.MCAT increases exhaustive treadmill running distance in mice.
Why the study?
Generic antioxidants have failed to improve exercise performance possibly due to inability to eliminate free radicals at their mitochondrial site of generation.
Does mitochondria-targeted catalase gene delivery improve exercise performance in mice?
Does mitochondria-targeted catalase gene delivery improve exercise performance in mice?
p-value: p=0.0242 (male), 0.0004 (female)
Ectopic catalase expression in mitochondria via AAV delivery enhances exercise performance in mice, suggesting a potential strategy for mitigating oxidative stress in muscle diseases.
Mitochondrial catalase delivery may enhance exercise capacity in mice; leaves open translation to human muscle disease therapies.
Oxidative stress is thought to compromise muscle contractility. However, administration of generic antioxidants has failed to convincingly improve performance during exhaustive exercise. One possible explanation may relate to the inability of the supplemented antioxidants to effectively eliminate excessive free radicals at the site of generation. Here, we tested whether delivering catalase to the mitochondria, a site of free radical production in contracting muscle, could improve treadmill performance in C57Bl/6 mice. Recombinant adeno-associated virus serotype-9 (AV.RSV.MCAT) was generated to express a mitochondria-targeted catalase gene. AV.RSV.MCAT was delivered to newborn C57Bl/6 mouse circulation at the dose of 10(12) vector genome particles per mouse. Three months later, we observed a approximately 2 to 10-fold increase of catalase protein and activity in skeletal muscle and the heart. Subcellular fractionation western blot and double immunofluorescence staining confirmed ectopic catalase expression in the mitochondria. Compared with untreated control mice, absolute running distance and body weight normalized running distance were significantly improved in AV.RSV.MCAT infected mice during exhaustive treadmill running. Interestingly, ex vivo contractility of the extensor digitorum longus muscle was not altered. Taken together, we have demonstrated that forced catalase expression in the mitochondria enhances exercise performance. Our result provides a framework for further elucidating the underlying mechanism. It also raises the hope of applying similar strategies to remove excessive, pathogenic free radicals in certain muscle diseases (such as Duchenne muscular dystrophy) and ameliorate muscle disease.
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Li et al. (2009) studied Normal mice (exercise performance) (n=45). AV.RSV.MCAT (mitochondria-targeted catalase gene) vs. Uninfected control mice was evaluated on Body weight-normalized running distance (m/g) (p=0.0242 (male), 0.0004 (female)). Systemic delivery of AV.RSV.MCAT significantly increased body weight-normalized running distance in both male (from 23.55 to 30.04 m/g) and female (from 30.38 to 46.28 m/g) mice during exhaustive treadmill running.
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