scispace - formally typeset
Journal ArticleDOI

Simulation of Action Potentials From Metabolically Impaired Cardiac Myocytes Role of ATP-Sensitive K+ Current

TLDR
The results of the model suggest that activation of IK-ATP alone does not quantitatively account for the observed K+ efflux in metabolically impaired cardiac myocytes, and Mechanisms other than KATP channel activation should be responsible for a significant part of the K- efflux measured in hypoxic/ischemic situations.
Abstract
The role of the ATP-sensitive K+ current (IK-ATP) and its contribution to electrophysiological changes that occur during metabolic impairment in cardiac ventricular myocytes is still being discussed. The aim of this work was to quantitatively study this issue by using computer modeling. A model of IK-ATP is formulated and incorporated into the Luo-Rudy ionic model of the ventricular action potential. Action potentials under different degrees of activation of IK-ATP are simulated. Our results show that in normal ionic concentrations, only ≈0.6% of the KATP channels, when open, should account for a 50% reduction in action potential duration. However, increased levels of intracellular Mg2+ counteract this shortening. Under conditions of high [K+]o, such as those found in early ischemia, the activation of only ≈0.4% of the KATP channels could account for a 50% reduction in action potential duration. Thus, our results suggest that opening of IK-ATP channels should play a significant role in action potential shortening during hypoxic/ischemic episodes, with the fraction of open channels involved being very low (<1%). However, the results of the model suggest that activation of IK-ATP alone does not quantitatively account for the observed K+ efflux in metabolically impaired cardiac myocytes. Mechanisms other than KATP channel activation should be responsible for a significant part of the K+ efflux measured in hypoxic/ischemic situations.

read more

Citations
More filters
Journal ArticleDOI

Electrophysiologic Effects of Acute Myocardial Ischemia A Mechanistic Investigation of Action Potential Conduction and Conduction Failure

TL;DR: A multicellular ventricular fiber model was used to determine mechanisms of slowed conduction and conduction failure during acute ischemia and highlights the interactive nature of electrophysiological ischemic changes during propagation.
Journal ArticleDOI

The Sulfonylurea Controversy: More Questions From the Heart

TL;DR: In this article, the potential clinical consequences of inhibition of ATP-sensitive potassium channels in diabetic patients with cardiac disease in whom the use of sulfonylureas may be harmful are discussed.
Journal ArticleDOI

Three-dimensional cardiac computational modelling: methods, features and applications

TL;DR: Examples of several specific applications are presented, mainly related to cardiac EP simulation and model-based image analysis, showing the potential usefulness of 3D cardiac computational modelling into clinical environments as a tool to aid in the prevention, diagnosis and treatment of cardiac diseases.
Journal ArticleDOI

Modeling cardiac ischemia

TL;DR: Over the last decade, computer simulations have demonstrated the ability to provide insight into ischemic abnormalities in cardiac electrophysiological behavior from the ionic channel to the whole organ.
Journal ArticleDOI

Two forms of spiral-wave reentry in an ionic model of ischemic ventricular myocardium

TL;DR: This work modify the Luo and Rudy ionic model of cardiac ventricular muscle to obtain maintained spiral-wave activity in a two-dimensional homogeneous sheet of ventricular Muscle, and investigates whether spiral waves might be induced in a realistic model of inhomogeneous ventricular myocardium.
References
More filters
Journal ArticleDOI

ATP-regulated K + channels in cardiac muscle

TL;DR: Application of the patch-clamp technique to CN-treated mammalian heart cells reveals specific K+ channels which are depressed by intracellular ATP (ATPi) at levels greater than 1 mM, which seems to be important for regulation of cellular energy metabolism in the control of membrane excitability.
Journal ArticleDOI

A dynamic model of the cardiac ventricular action potential. I. Simulations of ionic currents and concentration changes.

TL;DR: The model provides the basis for the study of arrhythmogenic activity of the single myocyte including afterdepolarizations and triggered activity and can simulate cellular responses under different degrees of Ca2+ overload.
Book

Information Processing

Book

Information processing

Marilyn Bohl
Journal ArticleDOI

Properties of adenosine-triphosphate-regulated potassium channels in guinea-pig ventricular cells.

TL;DR: It was concluded that this K channel has three or four receptor sites selective for triphosphate nucleotide on the inner surface of the membrane, and that the channel is blocked through the binding of agonists to the receptors.
Related Papers (5)