Redox modulation of contractile function in respiratory and limb skeletal muscle.
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Summary
These principles provide a foundation for ongoing research to identify the mechanisms of ROS and NO action and develop interventions that protect muscle function.
- Type
- review
- Published
- 2006-04-28
- Cited by
- 175
- References
- 102
- OpenAlex
- https://openalex.org/W1974061713
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:21026000
Keywords
Reactive oxygen species, Nitric oxide, Skeletal muscle, Homeostasis, Oxidative stress
References
- Cellular mechanisms of skeletal muscle fatigue.
- Expression of nitric oxide synthases and GTP cyclohydrolase I in the ventilatory and limb muscles during endotoxemia.
- Extracellular calcium modulates generation of reactive oxygen species by the contracting diaphragm.
- Reactive metabolites of oxygen and nitrogen in biology and medicine
- Vander, Sherman, Luciano's Human Physiology: The Mechanisms of Body Function
- Formation of reactive oxygen species by the contracting diaphragm is PLA(2) dependent.
- Formation of inter- and intramolecular disulfide bonds can activate cardiac troponin C.
- Intra- and extracellular measurement of reactive oxygen species produced during heat stress in diaphragm muscle.
- Physiology of nitric oxide in skeletal muscle.
- Vitamin E deficiency and vitamin C supplements: exercise and mitochondrial oxidation.
- Effects of N‐acetylcysteine on glutathione oxidation and fatigue during handgrip exercise
- Release of reactive oxygen and nitrogen species from contracting skeletal muscle cells.
- Dithiothreitol improves recovery from in vitro diaphragm fatigue.
- Cellular reducing equivalents and oxidative stress.
- Reduced effect of pH on skinned rabbit psoas muscle mechanics at high temperatures: implications for fatigue.
- Accumulation of nitrotyrosine on the SERCA2a isoform of SR Ca‐ATPase of rat skeletal muscle during aging: a peroxynitrite‐mediated process?
- Effect of nitric oxide on single skeletal muscle fibres from the mouse
- Nitric oxide in skeletal muscle
- Nitric oxide protects against cellular damage and cytotoxicity from reactive oxygen species.
- N-acetylcysteine inhibits muscle fatigue in humans.
Cited by
- An investigation of NADPH oxidase in normal and diseased skeletal muscle
- Acute exercise markedly increases blood oxidative stress in boys and girls.
- S‐Glutathionylation of troponin I (fast) increases contractile apparatus Ca2+ sensitivity in fast‐twitch muscle fibres of rats and humans
- Junctophilin Damage Contributes to Early Force Deficits and Excitation-Contraction Coupling Failure after Performing Eccentric Contractions
- N-Acetylcysteine's attenuation of fatigue after repeated bouts of intermittent exercise: practical implications for tournament situations.
- Anti-oxidant treatment in obstructive sleep apnoea syndrome.
- Etude des voies de signalisation impliquées dans la sarcopénie : rôle du stress oxydant et de l'inactivité physique
- Mechanisms of skeletal muscle weakness.
- Investigation of the intracellular signalling pathway for interleukin-6 gene expression in skeletal muscle
- Intensive care Muscle Wasting and Weakness : Underlying Mechanisms, Muscle Specific Differences and a Specific Intervention Strategy
- A change of heart: oxidative stress in governing muscle function?
- The impact of antioxidant supplements and endurance exercise on genes of the carbohydrate and lipid metabolism in skeletal muscle of mice
- A perspective on early mobilization for adult patients with respiratory failure: Lessons for the pediatric population
- Efeitos do treinamento físico sobre a miopatia esquelética em modelo experimental de sepse
- Up‐regulation of the peroxiredoxin‐6 related metabolism of reactive oxygen species in skeletal muscle of mice lacking neuronal nitric oxide synthase
- Mechanisms Modulating Skeletal Muscle Phenotype
- Reactive oxygen species and fatigue‐induced prolonged low‐frequency force depression in skeletal muscle fibres of rats, mice and SOD2 overexpressing mice
- Oxidative Stress: aging and disuse.
- REACTIVE OXYGEN SPECIES: IMPACT ON SKELETAL MUSCLE
- The Molecular Bases of Training Adaptation
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