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PMID: 15528464 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S. Validation Study

Proarrhythmic consequences of a KCNQ1 AKAP-binding domain mutation: computational models of whole cells and heterogeneous tissue.

Circulation research ·Vol. 95 ·No. 12 ·2004-12-10 ·Pages 1216-24

Saucerman JJ, Healy SN, Belik ME, Puglisi JL, McCulloch AD

Abstract

The KCNQ1-G589D gene mutation, associated with a long-QT syndrome, has been shown to disrupt yotiao-mediated targeting of protein kinase A and protein phosphatase-1 to the I(Ks) channel. To investigate how this defect may lead to ventricular arrhythmia during sympathetic stimulation, we use integrative computational models of beta-adrenergic signaling, myocyte excitation-contraction coupling, and action potential propagation in a rabbit ventricular wedge. Paradoxically, we find that the KCNQ1-G589D mutation alone does not prolong the QT interval. But when coupled with beta-adrenergic stimulation in a whole-cell model, the KCNQ1-G589D mutation induced QT prolongation and transient afterdepolarizations, known cellular mechanisms for arrhythmogenesis. These cellular mechanisms amplified tissue heterogeneities in a three-dimensional rabbit ventricular wedge model, elevating transmural dispersion of repolarization and creating other T-wave abnormalities on simulated electrocardiograms. Increasing heart rate protected both single myocyte and the coupled myocardium models from arrhythmic consequences. These findings suggest that the KCNQ1-G589D mutation disrupts a critical link between beta-adrenergic signaling and myocyte electrophysiology, creating both triggers of cardiac arrhythmia and a myocardial substrate vulnerable to such electrical disturbances.

MeSH Terms
Action Potentials/drug effects Adaptor Proteins, Signal Transducing/metabolism Adrenergic beta-1 Receptor Agonists Amino Acid Substitution Animals Binding Sites Computational Biology Computer Simulation Cytoskeletal Proteins/metabolism Electrocardiography Heart Ventricles/cytology Ion Transport/drug effects Isoproterenol/pharmacology KCNQ Potassium Channels KCNQ1 Potassium Channel Long QT Syndrome/etiology,genetics,physiopathology Models, Cardiovascular Models, Molecular Mutation, Missense Myocardial Contraction Myocytes, Cardiac/metabolism Point Mutation Potassium/metabolism Potassium Channels, Voltage-Gated/chemistry,genetics,metabolism Protein Binding Protein Conformation Protein Interaction Mapping Rabbits Receptors, Adrenergic, beta-1/physiology Structure-Activity Relationship
Chemicals
Adaptor Proteins, Signal Transducing Adrenergic beta-1 Receptor Agonists Cytoskeletal Proteins KCNQ Potassium Channels KCNQ1 Potassium Channel Potassium Channels, Voltage-Gated Receptors, Adrenergic, beta-1 Isoproterenol Potassium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Saucerman Jeffrey J
Department of Bioengineering, Whitaker Institute of Biomedical Engineering, University of California San Diego, La Jolla92037-0412, USA.
Healy Sarah N
Belik Mary E
Puglisi Jose L
McCulloch Andrew D
Article Info
Journal
Circulation research
Abbr.
Circ Res
ISSN
1524-4571
Published
2004-12-10
Epub
2004-00-04
Pages
1216-24
Language
English
Region
United States
NLM ID
0047103
Subset
IM
Grants
NCI NIH HHS · CA00261 · United States
NCRR NIH HHS · P41 RR08605 · United States
Corrections
CommentIn
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