Individual cardiac Ca2+ channels cycle slowly between a mode of gating in which the channel is available to open, and one in which the channel remains silent. The regulation of this multisecond cycling process by isoproterenol was investigated by single-channel recording and the development of a discrete-time Markov model that describes the slow switching among modes in terms of (de) phosphorylation reactions. The results provide evidence that isoproterenol increases Ca2+ channel activity by a reciprocal regulatory mechanism: not only is the phosphorylation rate of the channel increased, but also the dephosphorylation rate decreased. The discrete-time Markov formalism should prove useful as a general tool for understanding the mode switchin...
AbstractThe L-type Ca2+ channel (CaV1.2) plays an important role in action potential (AP) generation...
The b1-adrenergic signaling system plays an important role in the functioning of cardiac cells. Expe...
An increase in stimulation frequency causes an acceleration of myocardial relaxation (FDAR). Several...
Individual cardiac Ca2+ channels cycle slowly between a mode of gating in which the channel is avail...
A general mechanism for the physiological regulation of the activity of voltage-dependent Na+, Ca++,...
AbstractCertain signaling events that promote L-type Ca2+ channel (LCC) phosphorylation, such as β-a...
<p><b>Panel A:</b> Markov model of the L-type Ca<sup>2+</sup> channel. State diagram consists of two...
Steady-state activation of cardiac β-adrenergic receptors leads to an intracellular compartmentation...
A general mechanism for the physiological regulation of the activity of voltage-dependent Na+, Ca++,...
<p><b>Panel A:</b> Markov model of the fast Na<sup>+</sup> channel. State diagram consists of two si...
Voltage-dependent calcium channels are widely distributed in excitable mem-branes and are involved i...
β-Adrenergic stimulation differentially modulates different K(+) channels and thus fine-tunes cardia...
Physiologic β-adrenergic activation of PKA during the sympathetic “fight-or-flight” response increas...
AbstractCertain signaling events that promote L-type Ca2+ channel (LCC) phosphorylation, such as β-a...
ABSTRACT Certainsignalingevents that promoteL-typeCa21 channel (LCC)phosphorylation, suchasb-adrener...
AbstractThe L-type Ca2+ channel (CaV1.2) plays an important role in action potential (AP) generation...
The b1-adrenergic signaling system plays an important role in the functioning of cardiac cells. Expe...
An increase in stimulation frequency causes an acceleration of myocardial relaxation (FDAR). Several...
Individual cardiac Ca2+ channels cycle slowly between a mode of gating in which the channel is avail...
A general mechanism for the physiological regulation of the activity of voltage-dependent Na+, Ca++,...
AbstractCertain signaling events that promote L-type Ca2+ channel (LCC) phosphorylation, such as β-a...
<p><b>Panel A:</b> Markov model of the L-type Ca<sup>2+</sup> channel. State diagram consists of two...
Steady-state activation of cardiac β-adrenergic receptors leads to an intracellular compartmentation...
A general mechanism for the physiological regulation of the activity of voltage-dependent Na+, Ca++,...
<p><b>Panel A:</b> Markov model of the fast Na<sup>+</sup> channel. State diagram consists of two si...
Voltage-dependent calcium channels are widely distributed in excitable mem-branes and are involved i...
β-Adrenergic stimulation differentially modulates different K(+) channels and thus fine-tunes cardia...
Physiologic β-adrenergic activation of PKA during the sympathetic “fight-or-flight” response increas...
AbstractCertain signaling events that promote L-type Ca2+ channel (LCC) phosphorylation, such as β-a...
ABSTRACT Certainsignalingevents that promoteL-typeCa21 channel (LCC)phosphorylation, suchasb-adrener...
AbstractThe L-type Ca2+ channel (CaV1.2) plays an important role in action potential (AP) generation...
The b1-adrenergic signaling system plays an important role in the functioning of cardiac cells. Expe...
An increase in stimulation frequency causes an acceleration of myocardial relaxation (FDAR). Several...