Can the electrophysiological action of rosiglitazone explain its cardiac side effects?

A Szebeni1, N Szentandrássy, P Pacher

  • 1Department of Pharmacology and Pharmacotherapy, Semmelweis University, Budapest, Nagyvárad tér 4, P.O.B. 370, 1445, Hungary.

Insights

Rosiglitazone (R) alters cardiac electrophysiology, affecting action potential duration and ion currents in heart cells. This drug may pose a proarrhythmic risk, especially in elderly diabetic patients with cardiovascular conditions.

Area of Science:

  • Cardiovascular Pharmacology
  • Cardiac Electrophysiology
  • Molecular Cardiology

Background:

  • Large clinical trials indicate rosiglitazone (R) therapy is associated with increased cardiovascular adverse events.
  • Understanding the specific cardiac electrophysiological effects of R is crucial for patient safety.

Purpose of the Study:

  • To investigate the cardiac electrophysiological properties of rosiglitazone (R) in isolated cardiac cells.
  • To elucidate the effects of R on action potential characteristics and ion channel function.

Main Methods:

  • Utilized conventional microelectrode, whole-cell voltage clamp, and action potential (AP) voltage clamp techniques.
  • Examined R's effects on rat and murine ventricular papillary muscle cells and canine ventricular myocytes.
  • Concentration-dependent analysis of R's impact on action potential duration (APD(90)), amplitude (APA), and ion currents (I(to), I(Kr), I(Ca)).

Main Results:

  • R concentration-dependently altered AP morphology, shortening APD(90) and increasing APA in murine cells, while reducing APA and V(max) with APD(90) lengthening in rat cells.
  • In canine myocytes, R (≥10 µM) decreased phase-1 repolarization, plateau potential, and V(max).
  • R suppressed I(to) (EC(50)=25.2 µM), I(Kr) (EC(50)=72.3 µM), and I(Ca) (EC(50)=82.5 µM) but did not affect I(K1).

Conclusions:

  • Rosiglitazone significantly alters cardiac electrophysiology by modulating ion channel activity.
  • Observed changes in AP morphology and ion current densities suggest a potential for serious proarrhythmic risk with R intoxication.
  • This risk may be amplified in patients with pre-existing cardiovascular risk factors, such as elderly diabetic individuals.

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