Digital imaging microscopy of fluo-3 fluorescence was used to study the velocity and shape of intracellular Ca2+ waves in isolated rat cardiomyocytes as a function of temperature. Decreasing the temperature from 37 to 17 degrees C reduced the longitudinal wave velocity by a factor of 1.8 and remarkably slowed the decay of [Ca2+]i in the trailing flank of a wave. Using image analysis, rise times, and half-maximum decay times of local Ca2+ transients, which characterize the processes of local Ca2+ release and removal, were determined as a function of temperature. Apparent activation energies for wave front propagation, local Ca2+ release, and local Ca2+ removal were derived from Arrhenius plots and amounted to -23, -28, and -46 kJ/mol, respec...
Propagating intr~cellular Ca2+ waves in cardiac myocytes occur as a consequence of the overloaded st...
The fire-diffuse-fire model provides an idealised model of Ca2+ release within living cells. The eff...
Objective: The aim of this study was to characterize the spatio-temporal dynamics of slow Ca2+ waves...
Digital imaging microscopy of fluor-3 fluorescence was used to study the propagation of intracellula...
Spontaneous sarcoplasmic reticulum (SR) Ca2+-release and propagated intracellular Ca2+ waves are a c...
Spontaneous calcium waves in enzymatically isolated rat cardiac myocytes were investigated by confoc...
AbstractOf the many ongoing controversies regarding the workings of the sarcoplasmic reticulum (SR) ...
Objective: Cellular Ca2+ waves are understood as reaction-diffusion systems sustained by Ca2+-induce...
AbstractThe time course and magnitude of the Ca2+ fluxes underlying spontaneous Ca2+ waves in single...
AbstractTo elucidate the temperature dependence and underlying thermodynamic determinants of the ele...
The time course and magnitude of the Ca2+ fluxes underlying spontaneous Ca2+ waves in single permeab...
Cytosolic Ca2+ waves occur in a number of cell types either spontaneously or after stimulation by ho...
Spontaneous sarcoplasmic reticulum (SR) Ca<sup>2+</sup> release and propagated intracell...
Colliding spherical calcium waves in enzymatically isolated rat cardiac myocytes develop new wavefro...
The regenerative Ca(2+)-induced Ca2+ release mechanism is an important amplifier of signal transduct...
Propagating intr~cellular Ca2+ waves in cardiac myocytes occur as a consequence of the overloaded st...
The fire-diffuse-fire model provides an idealised model of Ca2+ release within living cells. The eff...
Objective: The aim of this study was to characterize the spatio-temporal dynamics of slow Ca2+ waves...
Digital imaging microscopy of fluor-3 fluorescence was used to study the propagation of intracellula...
Spontaneous sarcoplasmic reticulum (SR) Ca2+-release and propagated intracellular Ca2+ waves are a c...
Spontaneous calcium waves in enzymatically isolated rat cardiac myocytes were investigated by confoc...
AbstractOf the many ongoing controversies regarding the workings of the sarcoplasmic reticulum (SR) ...
Objective: Cellular Ca2+ waves are understood as reaction-diffusion systems sustained by Ca2+-induce...
AbstractThe time course and magnitude of the Ca2+ fluxes underlying spontaneous Ca2+ waves in single...
AbstractTo elucidate the temperature dependence and underlying thermodynamic determinants of the ele...
The time course and magnitude of the Ca2+ fluxes underlying spontaneous Ca2+ waves in single permeab...
Cytosolic Ca2+ waves occur in a number of cell types either spontaneously or after stimulation by ho...
Spontaneous sarcoplasmic reticulum (SR) Ca<sup>2+</sup> release and propagated intracell...
Colliding spherical calcium waves in enzymatically isolated rat cardiac myocytes develop new wavefro...
The regenerative Ca(2+)-induced Ca2+ release mechanism is an important amplifier of signal transduct...
Propagating intr~cellular Ca2+ waves in cardiac myocytes occur as a consequence of the overloaded st...
The fire-diffuse-fire model provides an idealised model of Ca2+ release within living cells. The eff...
Objective: The aim of this study was to characterize the spatio-temporal dynamics of slow Ca2+ waves...