A null mutation of the neuronal sodium channel Na V 1.6 disrupts action potential propagation and excitation‐contraction coupling in the mouse heart
A null mutation of the neuronal sodium channel Na V 1.6 disrupts action potential propagation and excitation‐contraction coupling in the mouse heart
ABSTRACT Evidence supports the expression of brain‐type sodium channels in the heart. Their functional role, however, remains controversial. We used global Na V 1.6‐null mice to test the hypothesis that Na V 1.6 contributes to the maintenance of propagation in the myocardium and to excitation‐contraction (EC) coupling. We demonstrated expression of transcripts encoding full‐length Na V 1.6 in isolated ventricular myocytes and confirmed the striated pattern of Na V 1.6 fluorescence in myocytes. On the ECG, the PR and QRS intervals were prolonged in the null mice, and the Ca 2+ transients were longer in the null cells. Under patch clamping, at holding potential (HP) = –120 mV, the peak I Na was similar in both phenotypes. However, at HP = –70 mV, the peak I Na was smaller in the nulls. In optical mapping, at 4 mM [K + ] o , 17 null hearts showed slight (7%) reduction of ventricular conduction velocity (CV) compared to 16 wild‐type hearts. At 12 mM [K + ] o , CV was 25% slower in a subset of 9 null vs . 9 wild‐type hearts. These results highlight the importance of neuronal sodium channels in the heart, whereby Na V 1.6 participates in EC coupling, and represents an intrinsic depolarizing reserve that contributes to excitation.—Noujaim, S. F., Kaur, K., Milstein, M., Jones, J. M., Furspan, P., Jiang, D., Auerbach, D. S., Herron, T., Meisler, M. H., Jalife, J. A null mutation of the neuronal sodium channel Na V 1.6 disrupts action potential propagation and excitation‐contraction coupling in the mouse heart. FASEB J. 26, 63–72 (2012). www.fasebj.org
- University of Michigan–Ann Arbor United States
- University of Michigan–Flint United States
- University of Michigan United States
Patch-Clamp Techniques, Science, ataxia3, Action Potentials, Nerve Tissue Proteins, Sodium Channels, Electrocardiography, Mice, Heart Conduction System, Animals, Myocytes, Cardiac, RNA, Messenger, brain‐type sodium channels, Biology, Neurons, Arrhythmias, Cardiac, hyperkalemia, Myocardial Contraction, Mice, Mutant Strains, optical mapping, Phenotype, NAV1.6 Voltage-Gated Sodium Channel, Potassium, Hyperkalemia, Calcium, Extracellular Space, Key Words
Patch-Clamp Techniques, Science, ataxia3, Action Potentials, Nerve Tissue Proteins, Sodium Channels, Electrocardiography, Mice, Heart Conduction System, Animals, Myocytes, Cardiac, RNA, Messenger, brain‐type sodium channels, Biology, Neurons, Arrhythmias, Cardiac, hyperkalemia, Myocardial Contraction, Mice, Mutant Strains, optical mapping, Phenotype, NAV1.6 Voltage-Gated Sodium Channel, Potassium, Hyperkalemia, Calcium, Extracellular Space, Key Words
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