Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Dynamical effects of calcium‐sensitive potassium currents on voltage and calcium alternans

View through CrossRef
Key points A mathematical model of a small conductance Ca2+‐activated potassium (SK) channel was developed and incorporated into a physiologically detailed ventricular myocyte model. Ca2+‐sensitive K+ currents promote negative intracellular Ca2+ to membrane voltage (CAi2+→ Vm) coupling. Increase of Ca2+‐sensitive K+ currents can be responsible for electromechanically discordant alternans and quasiperiodic oscillations at the cellular level. At the tissue level, Turing‐type instability can occur when Ca2+‐sensitive K+ currents are increased. AbstractCardiac alternans is a precursor to life‐threatening arrhythmias. Alternans can be caused by instability of the membrane voltage (Vm), instability of the intracellular Ca2+ () cycling, or both. Vm dynamics and dynamics are coupled via Ca2+‐sensitive currents. In cardiac myocytes, there are several Ca2+‐sensitive potassium (K+) currents such as the slowly activating delayed rectifier current (IKs) and the small conductance Ca2+‐activated potassium (SK) current (ISK). However, the role of these currents in the development of arrhythmias is not well understood. In this study, we investigated how these currents affect voltage and Ca2+ alternans using a physiologically detailed computational model of the ventricular myocyte and mathematical analysis. We define the coupling between Vm and cycling dynamics (→Vm coupling) as positive (negative) when a larger Ca2+ transient at a given beat prolongs (shortens) the action potential duration (APD) of that beat. While positive coupling predominates at baseline, increasing IKs and ISK promote negative →Vm coupling at the cellular level. Specifically, when alternans is Ca2+‐driven, electromechanically (APD–Ca2+) concordant alternans becomes electromechanically discordant alternans as IKs or ISK increase. These cellular level dynamics lead to different types of spatially discordant alternans in tissue. These findings help to shed light on the underlying mechanisms of cardiac alternans especially when the relative strength of these currents becomes larger under pathological conditions or drug administrations.
Title: Dynamical effects of calcium‐sensitive potassium currents on voltage and calcium alternans
Description:
Key points A mathematical model of a small conductance Ca2+‐activated potassium (SK) channel was developed and incorporated into a physiologically detailed ventricular myocyte model.
Ca2+‐sensitive K+ currents promote negative intracellular Ca2+ to membrane voltage (CAi2+→ Vm) coupling.
Increase of Ca2+‐sensitive K+ currents can be responsible for electromechanically discordant alternans and quasiperiodic oscillations at the cellular level.
At the tissue level, Turing‐type instability can occur when Ca2+‐sensitive K+ currents are increased.
AbstractCardiac alternans is a precursor to life‐threatening arrhythmias.
Alternans can be caused by instability of the membrane voltage (Vm), instability of the intracellular Ca2+ () cycling, or both.
Vm dynamics and dynamics are coupled via Ca2+‐sensitive currents.
In cardiac myocytes, there are several Ca2+‐sensitive potassium (K+) currents such as the slowly activating delayed rectifier current (IKs) and the small conductance Ca2+‐activated potassium (SK) current (ISK).
However, the role of these currents in the development of arrhythmias is not well understood.
In this study, we investigated how these currents affect voltage and Ca2+ alternans using a physiologically detailed computational model of the ventricular myocyte and mathematical analysis.
We define the coupling between Vm and cycling dynamics (→Vm coupling) as positive (negative) when a larger Ca2+ transient at a given beat prolongs (shortens) the action potential duration (APD) of that beat.
While positive coupling predominates at baseline, increasing IKs and ISK promote negative →Vm coupling at the cellular level.
Specifically, when alternans is Ca2+‐driven, electromechanically (APD–Ca2+) concordant alternans becomes electromechanically discordant alternans as IKs or ISK increase.
These cellular level dynamics lead to different types of spatially discordant alternans in tissue.
These findings help to shed light on the underlying mechanisms of cardiac alternans especially when the relative strength of these currents becomes larger under pathological conditions or drug administrations.

Related Results

GW24-e2265 Bi-atrial repolarisation alternans heterogeneity and paroxysmal atrial fibrillation
GW24-e2265 Bi-atrial repolarisation alternans heterogeneity and paroxysmal atrial fibrillation
Objectives Repolarisation alternans, a beat-to-beat alternationin monophasic action potential (MAP), has been shown to initiatere entry in the ventricle and predi...
Pulsus alternans determined by biventricular simultaneous systolic time intervals.
Pulsus alternans determined by biventricular simultaneous systolic time intervals.
This investigation was performed to determine the presence of unilateral or bilateral pulsus alternans in the systemic and pulmonary circulations in heart failure and to estimate t...
British Food Journal Volume 45 Issue 9 1943
British Food Journal Volume 45 Issue 9 1943
I now pass on to an aspect of calcium metabolism which is more topical, but probably more controversial. I refer to the incidence of calcium deficiency. By what means can we determ...
Bifurcation and Control of Cardiac Alternans
Bifurcation and Control of Cardiac Alternans
Cardiac alternans is a marker of sudden cardiac arrest, the leading cause of death in the United States that kills hundreds of thousands of Americans each year. In the language of ...

Back to Top