AbstractTonic rabbit femoral artery and phasic rabbit ileum smooth muscles permeabilized with Triton X-100 were activated either by increasing [Ca2+] from pCa>8.0 to pCa 6.0 (calcium-ascending protocol) or contracted at pCa 6.0 before lowering [Ca2+] (calcium-descending protocol). The effects of, respectively, high [MgATP]/low [MgADP] [10mM MgATP+creatine phosphate (CP)+creatine kinase (CK)] or low [MgATP]/[MgADP] (2mM MgATP, 0 CP, 0 CK) on the “force-[Ca]” relationships were determined. In femoral artery at low, but not at high, [MgATP]/[MgADP] the force and the ratio of stiffness/force at pCa 7.2 were significantly higher under the calcium-descending than calcium-ascending protocols (54% vs. 3% of Po, the force at pCa 6.0) (force hysteres...
AbstractThe present study examined the effects of Ca2+ and strongly bound cross-bridges on tension d...
Inorganic phosphate (Pi) decreases maximal tension in contracted skeletal and heart muscle fibers. W...
Rationale: Calcium (Ca2+) activation of the thin filament cannot solely explain force regulation in ...
The effect of [MgADP] on relaxation from isometric tension, initiated by reducing free [Ca2+] throug...
AbstractPhotolytic release of MgADP (25–300μM) from caged ADP in permeabilized tonic (rabbit femoral...
AbstractPhotolytic release of MgADP (25–300μM) from caged ADP in permeabilized tonic (rabbit femoral...
Myosin cross-bridges dissociate from actin following Mg2+-adenosine triphosphate (MgATP) binding. My...
Myosin cross-bridges dissociate from actin following Mg2+-adenosine triphosphate (MgATP) binding. My...
The goal of this study was to compare the effects of Ca(2+) and MgADP activation on force developmen...
The goal of this study was to compare the effects of Ca2+ and MgADP activation on force development ...
AbstractThe mechanical characteristics of smooth muscle can be broadly defined as either phasic, or ...
AbstractThe present study examined the effects of Ca2+ and strongly bound cross-bridges on tension d...
The contractile state of vascular smooth muscle (VSM) plays a key role in blood pressure regulation....
To explore the molecular mechanisms responsible for the variation in smooth muscle contractile kinet...
Abstract—Ca2 ion is a universal intracellular messenger that regulates numerous biological function...
AbstractThe present study examined the effects of Ca2+ and strongly bound cross-bridges on tension d...
Inorganic phosphate (Pi) decreases maximal tension in contracted skeletal and heart muscle fibers. W...
Rationale: Calcium (Ca2+) activation of the thin filament cannot solely explain force regulation in ...
The effect of [MgADP] on relaxation from isometric tension, initiated by reducing free [Ca2+] throug...
AbstractPhotolytic release of MgADP (25–300μM) from caged ADP in permeabilized tonic (rabbit femoral...
AbstractPhotolytic release of MgADP (25–300μM) from caged ADP in permeabilized tonic (rabbit femoral...
Myosin cross-bridges dissociate from actin following Mg2+-adenosine triphosphate (MgATP) binding. My...
Myosin cross-bridges dissociate from actin following Mg2+-adenosine triphosphate (MgATP) binding. My...
The goal of this study was to compare the effects of Ca(2+) and MgADP activation on force developmen...
The goal of this study was to compare the effects of Ca2+ and MgADP activation on force development ...
AbstractThe mechanical characteristics of smooth muscle can be broadly defined as either phasic, or ...
AbstractThe present study examined the effects of Ca2+ and strongly bound cross-bridges on tension d...
The contractile state of vascular smooth muscle (VSM) plays a key role in blood pressure regulation....
To explore the molecular mechanisms responsible for the variation in smooth muscle contractile kinet...
Abstract—Ca2 ion is a universal intracellular messenger that regulates numerous biological function...
AbstractThe present study examined the effects of Ca2+ and strongly bound cross-bridges on tension d...
Inorganic phosphate (Pi) decreases maximal tension in contracted skeletal and heart muscle fibers. W...
Rationale: Calcium (Ca2+) activation of the thin filament cannot solely explain force regulation in ...