Kv1.5 Is an Important Component of Repolarizing K + Current in Canine Atrial Myocytes
- 17 October 2003
- journal article
- research article
- Published by Wolters Kluwer Health in Circulation Research
- Vol. 93 (8) , 744-751
- https://doi.org/10.1161/01.res.0000096362.60730.ae
Abstract
Although the canine atrium has proven useful in several experimental models of atrial fibrillation and for studying the effects of rapid atrial pacing on atrial electrical remodeling, it may not fully represent the human condition because of reported differences in functional ionic currents and ion channel subunit expression. In this study, we reassessed the molecular components underlying one current, the ultrarapid delayed rectifier current in canine atrium [IKur(d)], by evaluating the mRNA, protein, immunofluorescence, and currents of the candidate channels. Using reverse transcriptase-polymerase chain reaction, we found that Kv1.5 mRNA was expressed in canine atrium whereas message for Kv3.1 was not detected. Western analysis on cytosolic and membrane fractions of canine tissues, using selective antibodies, showed that Kv3.1 was only detectable in the brain preparations, whereas Kv1.5 was expressed at high levels in both atrial and ventricular membrane fractions. Confocal imaging performed on isolated canine atrial myocytes clearly demonstrated the presence of Kv1.5 immunostaining, whereas that of Kv3.1 was equivocal. Voltage- and current-clamp studies showed that 0.5 mmol/L tetraethylammonium had variable effects on sustained K+ currents, whereas a compound with demonstrated selectivity for hKv1.5 versus Kv3.1, hERG or the sodium channel, fully suppressed canine atrial IKur tail currents and depressed sustained outward K+ current. This agent also increased action potential plateau potentials and action potential duration at 20% and 50% repolarization. These results suggest that in canine atria, as in other species including human, Kv1.5 protein is highly expressed and contributes to IKur.Keywords
This publication has 19 references indexed in Scilit:
- The Ultrarapid and the Transient Outward K+Current in Human Atrial Fibrillation. Their Possible Role in Postoperative Atrial FibrillationJournal of Molecular and Cellular Cardiology, 2000
- Pharmacologic Relevance of K+Channel Remodeling in Atrial FibrillationJournal of Molecular and Cellular Cardiology, 2000
- Molecular evidence for a role of Shaw (Kv3) potassium channel subunits in potassium currents of dog atriumThe Journal of Physiology, 2000
- α‐Actinin‐2 couples to cardiac Kv1.5 channels, regulating current density and channel localization in HEK cellsFEBS Letters, 2000
- Molecular correlates of the calcium‐independent, depolarization‐activated K+ currents in rat atrial myocytesThe Journal of Physiology, 1999
- Contributions of Kv3 Channels to Neuronal ExcitabilityAnnals of the New York Academy of Sciences, 1999
- Myocardial Potassium Channels: Electrophysiological and Molecular DiversityAnnual Review of Physiology, 1996
- Localization of the Kv1.5 K+ channel protein in explanted cardiac tissue.Journal of Clinical Investigation, 1995
- A rapidly activating and slowly inactivating potassium channel cloned from human heart. Functional analysis after stable mammalian cell culture expression.The Journal of general physiology, 1993
- Two functionally distinct 4-aminopyridine-sensitive outward K+ currents in rat atrial myocytes.The Journal of general physiology, 1992