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Peroxiredoxin 2 mediates redox-stimulated adaptations to oxidative phosphorylation induced by contractile activity in human skeletal muscle myotubes

肌发生 骨骼肌 氧化磷酸化 细胞生物学 磷酸化 化学 氧化还原 心肌细胞 过氧化物还原蛋白 内分泌学 生物化学 生物 过氧化物酶 有机化学
作者
Robert Alexander Heaton,Sam T M Ball,Caroline A. Staunton,Vincent Mouly,Samantha Jones,Anne McArdle,Malcolm J. Jackson
出处
期刊: [Cold Spring Harbor Laboratory]
被引量:1
标识
DOI:10.1101/2024.09.23.611634
摘要

Abstract Skeletal muscle generates superoxide during contractions, which is converted to hydrogen peroxide (H 2 O 2 ). H 2 O 2 has been proposed to activate signalling pathways and transcription factors that regulate adaptive responses to exercise, but the concentration required to oxidize and activate key redox-sensitive signalling proteins in vitro is much higher than the typical intracellular levels seen in muscle after exercise. We hypothesized that 2-Cys-peroxiredoxins (PRDX), which rapidly oxidize in the presence of physiological concentrations of H 2 O 2 , serve as intermediary signalling molecules and play a crucial role in activating adaptive pathways following muscle contractions. This study has examined the human muscle myotube responses to contractile activity, or exposure to low extracellular concentrations (2.5-5 µM) of H 2 O 2 and whether knock down of muscle PRDX2 alters the differential gene expression (DEG) that results from these stresses. Exposure of human skeletal muscle myotubes to a 15 min period of aerobic electrically stimulated isometric contractions or 5μM H 2 O 2 induced substantial changes in DEG with modification of many genes associated with adaptations of skeletal muscle to contractile activity. Common DEG in these conditions included upregulation of genes associated with increased mitochondrial oxidative phosphorylation, including COX1, COX2, COX3 and ATP6 . In myotubes with PRDX2 knock down (94% decrease in PRDX2 mRNA), the upregulation of genes associated with increased mitochondrial oxidative phosphorylation was abolished following contractile activity or exposure to H 2 O 2 . These data indicate that a common effect of contractile activity and exposure to “physiological” levels of H 2 O 2 in human myotubes is to increase the expression of multiple genes associated with increased mitochondrial oxidative phosphorylation. Furthermore, these effects were abolished in PRDX2 knock down myotubes indicating that adaptations to upregulate multiple genes related to increased mitochondrial capacity in human muscle myotubes in response to exercise is both redox regulated and requires PRDX2 as an essential mediator of the effects of H 2 O 2 .
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