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

Journal of Molecular Medicine (Berlin, Germany)
|May 17, 2003
PubMed

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.

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