A decrease in skeletal muscle contractile activity or its complete cessation (muscle unloading or disuse) leads to muscle fibers’ atrophy and to alterations in muscle performance. These changes negatively affect the quality of life of people who, for one reason or another, are forced to face a limitation of physical activity. One of the key regulatory events leading to the muscle disuse-induced changes is an impairment of calcium homeostasis, which leads to the excessive accumulation of calcium ions in the sarcoplasm. This review aimed to analyze the triggering mechanisms of calcium homeostasis impairment (including those associated with the accumulation of high-energy phosphates) under various types of muscle unloading. Here we proposed a ...
Repeated contractions of skeletal muscle lead to a decline of force known as fatigue. The exact caus...
Skeletal muscle contraction relies on both high-fidelity calcium (Ca2+) signals and robust capacity ...
Calcium release during skeletal muscle excitation-contraction (EC) coupling occurs at the junctions ...
Abstract As a key regulator of cellular calcium homeostasis, the Sarcoendoplasmic Reticulum Calcium ...
Item does not contain fulltextChanges in intracellular Ca2+-concentration play an important role in ...
Calcium (Ca2+) plays a pivotal role in almost all cellular processes and ensures the functionality o...
Calcium is known to play a prominent regulatory role in skeletal muscle cells and is amongst others ...
Calcium (Ca2+) plays a pivotal role in almost all cellular processes and ensures the functionality o...
Mechanotransduction is a process where cells sense their surroundings and convert the physical force...
Calcium is the most ubiquitous second messenger. Its concentration inside the cell is tightly regula...
Regular endurance exercise remodels skeletal muscle, largely through the peroxisome proliferator-act...
Prolonged periods of skeletal muscle inactivity or mechanical unloading (bed rest, hindlimb unloadin...
Skeletal muscle-specific stem cells are pivotal for tissue development and regeneration. Muscle plas...
Regular endurance exercise remodels skeletal muscle, largely through the peroxisome proliferator-act...
Duchenne muscular dystrophy (DMD) is a neuromuscular disease caused by mutations in the dystrophin g...
Repeated contractions of skeletal muscle lead to a decline of force known as fatigue. The exact caus...
Skeletal muscle contraction relies on both high-fidelity calcium (Ca2+) signals and robust capacity ...
Calcium release during skeletal muscle excitation-contraction (EC) coupling occurs at the junctions ...
Abstract As a key regulator of cellular calcium homeostasis, the Sarcoendoplasmic Reticulum Calcium ...
Item does not contain fulltextChanges in intracellular Ca2+-concentration play an important role in ...
Calcium (Ca2+) plays a pivotal role in almost all cellular processes and ensures the functionality o...
Calcium is known to play a prominent regulatory role in skeletal muscle cells and is amongst others ...
Calcium (Ca2+) plays a pivotal role in almost all cellular processes and ensures the functionality o...
Mechanotransduction is a process where cells sense their surroundings and convert the physical force...
Calcium is the most ubiquitous second messenger. Its concentration inside the cell is tightly regula...
Regular endurance exercise remodels skeletal muscle, largely through the peroxisome proliferator-act...
Prolonged periods of skeletal muscle inactivity or mechanical unloading (bed rest, hindlimb unloadin...
Skeletal muscle-specific stem cells are pivotal for tissue development and regeneration. Muscle plas...
Regular endurance exercise remodels skeletal muscle, largely through the peroxisome proliferator-act...
Duchenne muscular dystrophy (DMD) is a neuromuscular disease caused by mutations in the dystrophin g...
Repeated contractions of skeletal muscle lead to a decline of force known as fatigue. The exact caus...
Skeletal muscle contraction relies on both high-fidelity calcium (Ca2+) signals and robust capacity ...
Calcium release during skeletal muscle excitation-contraction (EC) coupling occurs at the junctions ...