Ca2+ clock malfunction in a canine model of pacing-induced heart failure

Tetsuji Shinohara1, Hyung-Wook Park, Seongwook Han

  • 1Krannert Institute of Cardiology and Division of Cardiology, Department of Medicine, Indiana University School of Medicine, Indianapolis, Indiana, USA.

Insights

Heart failure impairs the heart's natural pacemaker (sinoatrial node) by disrupting calcium cycling. This leads to unresponsive superior pacemaker sites and increased ectopic beats in failing hearts.

Area of Science:

  • Cardiology
  • Physiology
  • Molecular Biology

Background:

  • Sinoatrial node (SAN) dysfunction mechanisms in heart failure (HF) are not fully understood.
  • The role of spontaneous sarcoplasmic reticulum Ca(2+) release (Ca(2+) clock) in HF-related SAN dysfunction is hypothesized.
  • HF was induced in canine hearts via rapid ventricular pacing.

Purpose of the Study:

  • To investigate the role of the Ca(2+) clock in SAN dysfunction in heart failure.
  • To determine how isoproterenol (Iso) affects pacemaking sites in normal versus failing hearts.
  • To explore the mechanisms behind altered pacemaking activity in HF.

Main Methods:

  • In vivo computerized electrical mapping of pacemaking sites in normal and HF canine hearts.
  • In vitro optical mapping of intracellular Ca(2+) and membrane potential in isolated atria.
  • Pharmacological interventions including isoproterenol, caffeine, and ZD-7288 (I(f) blocker).

Main Results:

  • Isoproterenol failed to shift pacemaking sites to the superior SAN in HF hearts, unlike in normal hearts.
  • HF atria showed suppressed late diastolic Ca(2+) elevation (LDCAE) and unresponsiveness to caffeine.
  • Ectopic beats originating from the lower crista terminalis were observed in HF and suppressed by ZD-7288.

Conclusions:

  • Heart failure suppresses the Ca(2+) clock, leading to unresponsive superior SAN pacemaker sites.
  • HF promotes ectopic pacemaking activity by activating the pacemaker current (I(f)) in latent sites.
  • These findings elucidate key mechanisms of SAN dysfunction in heart failure.