Distinct gene-specific mechanisms of arrhythmia revealed by cardiac gene transfer of two long QT disease genes, HERG and KCNE1
- 24 April 2001
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 98 (9) , 5335-5340
- https://doi.org/10.1073/pnas.091239098
Abstract
The long QT syndrome (LQTS) is a heritable disorder that predisposes to sudden cardiac death. LQTS is caused by mutations in ion channel genes including HERG and KCNE1, but the precise mechanisms remain unclear. To clarify this situation we injected adenoviral vectors expressing wild-type or LQT mutants of HERG and KCNE1 into guinea pig myocardium. End points at 48-72 h included electrophysiology in isolated myocytes and electrocardiography in vivo. HERG increased the rapid component, I(Kr), of the delayed rectifier current, thereby accelerating repolarization, increasing refractoriness, and diminishing beat-to-beat action potential variability. Conversely, HERG-G628S suppressed I(Kr) without significantly delaying repolarization. Nevertheless, HERG-G628S abbreviated refractoriness and increased beat-to-beat variability, leading to early afterdepolarizations (EADs). KCNE1 increased the slow component of the delayed rectifier, I(Ks), without clear phenotypic sequelae. In contrast, KCNE1-D76N suppressed I(Ks) and markedly slowed repolarization, leading to frequent EADs and electrocardiographic QT prolongation. Thus, the two genes predispose to sudden death by distinct mechanisms: the KCNE1 mutant flagrantly undermines cardiac repolarization, and HERG-G628S subtly facilitates the genesis and propagation of premature beats. Our ability to produce electrocardiographic long QT in vivo with a clinical KCNE1 mutation demonstrates the utility of somatic gene transfer in creating genotype-specific disease models.Keywords
This publication has 61 references indexed in Scilit:
- Heart Failure:Journal of Cardiovascular Electrophysiology, 1999
- Long QT Syndrome-associated Mutations in the S4-S5 Linker of KvLQT1 Potassium Channels Modify Gating and Interaction with minK SubunitsJournal of Biological Chemistry, 1999
- A Dominant Negative Isoform of the Long QT Syndrome 1 Gene ProductPublished by Elsevier ,1998
- Mutations in the hminK gene cause long QT syndrome and suppress lKs functionNature Genetics, 1997
- Activation and inactivation kinetics of an E-4031-sensitive current from single ferret atrial myocytesBiophysical Journal, 1996
- Ecdysone-inducible gene expression in mammalian cells and transgenic mice.Proceedings of the National Academy of Sciences, 1996
- Predictors of mortality in patients with sustained ventricular tachycardias or ventricular fibrillation and depressed left ventricular function: Importance of β-blockadeAmerican Heart Journal, 1995
- Adenovirus-mediated expression of a voltage-gated potassium channel in vitro (rat cardiac myocytes) and in vivo (rat liver). A novel strategy for modifying excitability.Journal of Clinical Investigation, 1995
- The Spectrum of Symptoms and QT Intervals in Carriers of the Gene for the Long-QT SyndromeNew England Journal of Medicine, 1992
- Arrhythmogenic effects of antiarrhythmic drugs: A study of 506 patients treated for ventricular tachycardia or fibrillationJournal of the American College of Cardiology, 1989