From a cell signaling perspective, short-duration intense muscular work is typically associated with resistance training and linked to pathways that stimulate growth. However, brief repeated sessions of sprint or high-intensity interval exercise induce rapid phenotypic changes that resemble traditional endurance training. We tested the hypothesis that an acute session of intense intermittent cycle exercise would activate signaling cascades linked to mitochondrialbiogenesis in human skeletal muscle. Biopsies (vastus lateralis) were obtained from six young men who performed four 30-s "all out" exercise bouts interspersed with 4 min of rest (<80 kJ total work). Phosphorylation of AMP-ac...
Skeletal muscles adjust to the level of contractile activity by different biochemical alterations. C...
Reduced activation of exercise responsive signalling pathways have been reported in response to acut...
We examined the effect of short-termexercise training on skeletalmuscleAMP-activated protein\ud kina...
International audienceDuring transition from rest to exercise, metabolic reaction rates increase sub...
Low-volume, high-intensity interval training (HIT) increases skeletal muscle mitochondrial capacity,...
Purpose The effects of low-volume interval and continuous ‘all-out’ cycling, matched for total exerc...
The effect of exercise intensity on skeletal muscle AMP-activated protein kinase (AMPK) signaling an...
An acute bout of exercise increases skeletal muscle glucose uptake, improves glucose homeostasis and...
Sprint interval training has been reported to induce similar or greater mitochondrial adaptations to...
Exercise-induced adaptations in skeletal muscle are regulated by numerous signaling mechanisms. Howe...
Mitochondrial biogenesis in skeletal muscle results from the cumulative effect of transient increase...
Regular physical activity has many positive implications on health and performance, such as lowered ...
PURPOSE;: We investigated the effects of acute and chronic repeated-sprint exercise (RSE) on the ske...
It is well documented that regular endurance exercise induces skeletal muscle mitochondrial biogenes...
Purpose: High-intensity short-duration interval training (HIT) stimulates functional and metabolic a...
Skeletal muscles adjust to the level of contractile activity by different biochemical alterations. C...
Reduced activation of exercise responsive signalling pathways have been reported in response to acut...
We examined the effect of short-termexercise training on skeletalmuscleAMP-activated protein\ud kina...
International audienceDuring transition from rest to exercise, metabolic reaction rates increase sub...
Low-volume, high-intensity interval training (HIT) increases skeletal muscle mitochondrial capacity,...
Purpose The effects of low-volume interval and continuous ‘all-out’ cycling, matched for total exerc...
The effect of exercise intensity on skeletal muscle AMP-activated protein kinase (AMPK) signaling an...
An acute bout of exercise increases skeletal muscle glucose uptake, improves glucose homeostasis and...
Sprint interval training has been reported to induce similar or greater mitochondrial adaptations to...
Exercise-induced adaptations in skeletal muscle are regulated by numerous signaling mechanisms. Howe...
Mitochondrial biogenesis in skeletal muscle results from the cumulative effect of transient increase...
Regular physical activity has many positive implications on health and performance, such as lowered ...
PURPOSE;: We investigated the effects of acute and chronic repeated-sprint exercise (RSE) on the ske...
It is well documented that regular endurance exercise induces skeletal muscle mitochondrial biogenes...
Purpose: High-intensity short-duration interval training (HIT) stimulates functional and metabolic a...
Skeletal muscles adjust to the level of contractile activity by different biochemical alterations. C...
Reduced activation of exercise responsive signalling pathways have been reported in response to acut...
We examined the effect of short-termexercise training on skeletalmuscleAMP-activated protein\ud kina...