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Assessment of Sarcoplasmic Reticulum Calcium Reserve and Intracellular Diastolic Calcium Removal in Isolated Ventricular Cardiomyocytes
Published on: September 18, 2017
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.
Abstract:
Cardiac arrhythmia is a major cause of mortality in cardiovascular pathologies. A host of drugs targeted to sarcolemmal Na+, Ca2+, and K+ channels has had limited success clinically. Recently, Ca2+ signaling has been target of pharmacotherapy based on finding that leaky ryanodine receptors elevate local Ca2+ concentrations causing membrane depolarizations that trigger arrhythmias. In this study, we report that xanthohumol, an antioxidant extracted from hops showing therapeutic effects in other pathologies, suppresses aberrant ryanodine receptor Ca2+ release. The effects of xanthohumol (5-1000 nM) on Ca2+ signaling pathways were probed in isolated rat ventricular myocytes incubated with Fluo-4 AM using the perforated patch-clamp technique. We found that 5-50 nM xanthohumol reduced the frequency of spontaneously occurring Ca2+ sparks (>threefold) and Ca2+ waves in control myocytes and in cells subjected to Ca2+ overload caused by the following: 1) exposure to low K+ solutions, 2) periods of high frequency electrical stimulation, 3) exposures to isoproterenol, or 4) caffeine. At room temperatures, 50-100 nM xanthohumol reduced the rate of relaxation of electrically- or caffeine-triggered Ca2+transients, without suppressing ICa, but this effect was small and reversed by isoproterenol at physiologic temperatures. Xanthohumol also suppressed the Ca2+ content of the SR and its rate of recirculation. The stabilizing effects of xanthohumol on the frequency of spontaneously triggered Ca2+ sparks and waves combined with its antioxidant properties, and lack of significant effects on Na+ and Ca2+ channels, may provide this compound with clinically desirable antiarrhythmic properties.
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