Contains fulltext : 191001.pdf (Publisher’s version ) (Open Access)Muscle function depends on an adequate ATP supply to sustain the energy consumption associated with Ca(2+) cycling and actomyosin sliding during contraction. In this regulation of energy homeostasis, the creatine kinase (CK) circuit for high energy phosphoryl transfer between ATP and phosphocreatine plays an important role. We earlier established a functional connection between the activity of the CK system and Ca(2+) homeostasis during depolarization and contractile activity of muscle. Here, we show how CK activity is coupled to the kinetics of spontaneous and electrically induced Ca(2+) transients in the sarcoplasm of myotubes. Using the UV ratiometric Ca...
Since the progressive degeneration characteristic of dystrophic disease is governed by the Ca2+-indu...
The energy required for muscle contraction is provided by the breakdown of ATP but the amount of ATP...
Item does not contain fulltextThe physiological process by which Ca2+ is released from the sarcoplas...
Muscle function depends on an adequate ATP supply to sustain the energy consumption associated with ...
Highly purified fractions of sarcoplasmic reticulum (SR) were prepared from chicken pectoralis muscl...
AbstractWe have blocked creatine kinase (CK)-mediated phosphocreatine (PCr) ⇃ ATP transphosphorylati...
Optimal balancing of production, distribution and consumption of cellular energy is of pivotal impor...
Item does not contain fulltextTo assess the significance of energy supply routes in cellular energet...
Creatine kinase (CK) is an essential phosphoryl transferase enzyme in cellular energy homeostasis. I...
Contains fulltext : 186282.pdf (Publisher’s version ) (Open Access)Previously we d...
ATP provides the energy in our muscles to generate force, through its use by myosin ATPases, and hel...
The balance between ATP energy demand and supply is essential in muscle cells. The creatine kinase s...
Skeletal muscle contraction relies on both high-fidelity calcium (Ca2+) signals and robust capacity ...
During intense physical activity the maximal power output of skeletal muscles is reduced, a conditio...
Calcium release during skeletal muscle excitation-contraction (EC) coupling occurs at the junctions ...
Since the progressive degeneration characteristic of dystrophic disease is governed by the Ca2+-indu...
The energy required for muscle contraction is provided by the breakdown of ATP but the amount of ATP...
Item does not contain fulltextThe physiological process by which Ca2+ is released from the sarcoplas...
Muscle function depends on an adequate ATP supply to sustain the energy consumption associated with ...
Highly purified fractions of sarcoplasmic reticulum (SR) were prepared from chicken pectoralis muscl...
AbstractWe have blocked creatine kinase (CK)-mediated phosphocreatine (PCr) ⇃ ATP transphosphorylati...
Optimal balancing of production, distribution and consumption of cellular energy is of pivotal impor...
Item does not contain fulltextTo assess the significance of energy supply routes in cellular energet...
Creatine kinase (CK) is an essential phosphoryl transferase enzyme in cellular energy homeostasis. I...
Contains fulltext : 186282.pdf (Publisher’s version ) (Open Access)Previously we d...
ATP provides the energy in our muscles to generate force, through its use by myosin ATPases, and hel...
The balance between ATP energy demand and supply is essential in muscle cells. The creatine kinase s...
Skeletal muscle contraction relies on both high-fidelity calcium (Ca2+) signals and robust capacity ...
During intense physical activity the maximal power output of skeletal muscles is reduced, a conditio...
Calcium release during skeletal muscle excitation-contraction (EC) coupling occurs at the junctions ...
Since the progressive degeneration characteristic of dystrophic disease is governed by the Ca2+-indu...
The energy required for muscle contraction is provided by the breakdown of ATP but the amount of ATP...
Item does not contain fulltextThe physiological process by which Ca2+ is released from the sarcoplas...