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Updated: Aug 2, 2026

Isolation and Kv Channel Recordings in Murine Atrial and Ventricular Cardiomyocytes
Published on: March 12, 2013
The long QT interval is not only inherited but is also linked to cardiac hypertrophy
Bernard Swynghedauw1, Christophe Baillard, Paul Milliez
1U572-INSERM, Lariboisière Hospital, 41 Bd de la Chapelle, 75475 Paris Cedex 10, France. Bernard.Swynghedauw@larib.inserm.fr
Insights
The QT interval
Area of Science:
- Cardiovascular physiology
- Molecular biology
- Electrophysiology
Background:
- The QT interval on electrocardiography reflects cardiac repolarization, influenced by ion channel function and transmural gradients.
- Cardiac hypertrophy and heart failure are associated with altered action potential duration, primarily due to reduced outward ion currents.
- Measuring QT interval dispersion on body-surface electrocardiography is unreliable due to spatial projection effects.
Purpose of the Study:
- To review the molecular mechanisms determining QT interval duration in normal and diseased states.
- To explore the role of ion channel expression and function in altered repolarization during cardiac hypertrophy and failure.
- To clarify the limitations of QT interval dispersion measurements and the significance of mean QT interval.
Main Methods:
- Review of existing literature on cardiac electrophysiology, molecular biology, and electrocardiography.
- Analysis of ion channel function, gene expression, and their impact on action potential duration.
- Examination of transmural gradients and spatial projection effects on QT interval measurements.
Main Results:
- In normal hearts, action potential duration results from a balance of ion currents.
- Cardiac hypertrophy and failure commonly involve reduced outward K+ currents (like I(tO)), often due to decreased gene expression (e.g., KChIP2).
- Hypertensive heart disease in humans and rats shows prolonged QT intervals, linked to reduced I(tO) as an adaptive response.
Conclusions:
- Prolonged QT interval in disease is not solely inherited or drug-induced but can be an adaptive response to chronic mechanical overload.
- Reduced transient outward K+ current density may trigger adaptive protein synthesis pathways.
- Mean QT interval, not dispersion, may offer insights into disease progression, similar to V(max) quantification.
Abstract:
This review focuses on the molecular determinants of the duration of the QT interval as measured on by electrocardiography in normal subjects and during cardiac hypertrophy and failure. (a) In control conditions, on a single cell, the shape and duration of the action potential is the result of a balance between different ion currents which in turn were determined by the number of functional channels. On multicellular preparations the QT duration also represents the repolarization time; nevertheless it is modified by the transmural gradients. On body-surface electrocardiography the duration of the QT interval depends also of an additional factor: the spatial three-dimensional projection of the electrical waves vectors, which makes any determination of the epicardial dispersion by measuring QT interval dispersion questionable. (b) The enhanced action potential duration is well documented in cardiac hypertrophy and heart failure and is usually caused by a reduction in outward current densities in most of the species except mice. Among these currents I(tO) is the most frequently altered, especially in humans. Such an altered current density is caused by a diminished expression of the genes encoding either the ion channel subunits or regulatory proteins, such as KChIP2. In addition, hypertrophy modifies or even reverses the transmural gradient. In human and rats hypertensive cardiopathy is associated with a prolongation of the QT interval duration. The reduction in I(tO) is likely to be adaptive; it participates in the slowing of the cardiac cycle and reflects the fetal genetic reprogramming. Recent data also suggest that a reduction in the transient outward K(+) current density triggers protein synthesis through an activation of the calcineurin pathways. Thus a prolongation of the QT interval is not only inherited or drug-induced; it is also an essential component of the adaptive process in chronic mechanical overload. It is fundamentally incorrect to measure QT dispersion on a surface electrocardiography, but the mean QT interval may provide information concerning the progression of the disease, just as, and with the same restrictions, in the case of the quantification of V(max).
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