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Proarrhythmic Consequences of a KCNQ1 AKAP-Binding Domain Mutation
- Source :
- Circulation Research. 95:1216-1224
- Publication Year :
- 2004
- Publisher :
- Ovid Technologies (Wolters Kluwer Health), 2004.
-
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 β-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 β-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 β-adrenergic signaling and myocyte electrophysiology, creating both triggers of cardiac arrhythmia and a myocardial substrate vulnerable to such electrical disturbances.
- Subjects :
- Models, Molecular
medicine.medical_specialty
Protein Conformation
Physiology
Heart Ventricles
Long QT syndrome
Mutation, Missense
Action Potentials
Gene mutation
Biology
QT interval
Afterdepolarization
Electrocardiography
Structure-Activity Relationship
Internal medicine
Protein Interaction Mapping
medicine
Animals
Point Mutation
Repolarization
Myocyte
Computer Simulation
Myocytes, Cardiac
Adaptor Proteins, Signal Transducing
Binding Sites
Ion Transport
KCNQ Potassium Channels
Isoproterenol
Models, Cardiovascular
Computational Biology
Cardiac arrhythmia
medicine.disease
Myocardial Contraction
Cell biology
Cytoskeletal Proteins
Long QT Syndrome
Amino Acid Substitution
Adrenergic beta-1 Receptor Agonists
Potassium Channels, Voltage-Gated
KCNQ1 Potassium Channel
Mutation (genetic algorithm)
Potassium
Cardiology
Rabbits
Receptors, Adrenergic, beta-1
Cardiology and Cardiovascular Medicine
Protein Binding
Subjects
Details
- ISSN :
- 15244571 and 00097330
- Volume :
- 95
- Database :
- OpenAIRE
- Journal :
- Circulation Research
- Accession number :
- edsair.doi.dedup.....733a28097956c1bdbf7fcd9c0a280cb6
- Full Text :
- https://doi.org/10.1161/01.res.0000150055.06226.4e