Xanthohumol Modulates Calcium Signaling in Rat Ventricular Myocytes: Possible Antiarrhythmic Properties

Juan Jose Arnaiz-Cot1, Lars Cleemann1, Martin Morad2

  • 1Cardiac Signaling Center of University of South Carolina, Medical University of South Carolina, and Clemson University, Charleston, South Carolina.

Insights

Xanthohumol, a hop extract, reduces abnormal calcium release from ryanodine receptors, offering potential antiarrhythmic benefits by stabilizing heart cell calcium signaling and possessing antioxidant properties.

Area of Science:

  • Cardiovascular Physiology
  • Pharmacology
  • Molecular Biology

Background:

  • Cardiac arrhythmia is a significant cause of death in cardiovascular diseases.
  • Current drug therapies targeting ion channels have shown limited clinical success.
  • Aberrant calcium (Ca2+) signaling via leaky ryanodine receptors contributes to arrhythmias.

Purpose of the Study:

  • To investigate the antiarrhythmic potential of xanthohumol, an antioxidant from hops.
  • To determine if xanthohumol can suppress abnormal calcium release from ryanodine receptors.

Main Methods:

  • Experiments were conducted on isolated rat ventricular myocytes.
  • Calcium (Ca2+) signaling pathways were analyzed using the Fluo-4 AM dye and perforated patch-clamp technique.
  • Effects of varying xanthohumol concentrations (5-1000 nM) were assessed under normal and stressed conditions (Ca2+ overload).

Main Results:

  • Xanthohumol (5-50 nM) significantly reduced spontaneous Ca2+ sparks and waves.
  • It suppressed Ca2+ transients and recirculation rates without affecting major ion channels (Na+, Ca2+).
  • Xanthohumol demonstrated antioxidant properties and stabilized Ca2+ signaling.

Conclusions:

  • Xanthohumol effectively suppresses aberrant ryanodine receptor Ca2+ release, a key mechanism in arrhythmias.
  • Its stabilizing effect on Ca2+ signaling, coupled with antioxidant properties, suggests potential as a novel antiarrhythmic agent.
  • Xanthohumol shows promise for clinical application in treating cardiac arrhythmias.

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