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The Histidine-Rich Calcium Binding Protein in Regulation of Cardiac Rhythmicity
Demetrios A Arvanitis1, Elizabeth Vafiadaki1, Daniel M Johnson2
1Molecular Biology Division, Biomedical Research Foundation, Academy of Athens, Athens, Greece.
Insights
A common variant of histidine-rich calcium binding protein (HRC), Ser96Ala, acts as a potent biomarker for predicting life-threatening arrhythmias in heart failure patients. This genetic marker disrupts cardiac calcium cycling, increasing sudden cardiac death risk.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Sudden unexpected cardiac death (SCD) is a major concern in heart failure, with current tools lacking predictive accuracy for life-threatening arrhythmias.
- The histidine-rich calcium binding protein (HRC) plays a crucial role in regulating cardiac sarcoplasmic reticulum (SR) calcium (Ca2+) cycling.
Purpose of the Study:
- To investigate the role of the HRC Ser96Ala variant as a biomarker for predicting malignant arrhythmias in heart failure patients.
- To elucidate the molecular mechanisms by which HRC Ser96Ala dysregulates cardiac Ca2+ handling and promotes arrhythmias.
Main Methods:
- Studies at molecular, biochemical, cellular, and animal model levels.
- Analysis of HRC phosphorylation, interaction with SR Ca2+ cycling proteins (ryanodine receptor and SERCA2), and Ca2+ release/uptake.
- Pharmacological intervention with KN-93 in the HRC Ser96Ala mouse model.
Main Results:
- The HRC Ser96Ala variant abolishes an HRC phosphorylation site, leading to dysregulated SR Ca2+ cycling.
- Impaired HRC/triadin interaction causes aberrant Ca2+ release via RyR2.
- Impaired HRC/SERCA2 interaction depresses Ca2+ uptake by SERCA2.
- KN-93 treatment reduced malignant arrhythmias in the HRC Ser96Ala mouse model.
Conclusions:
- HRC Ser96Ala is a potent genetic biomarker for predicting malignant arrhythmias and SCD risk in heart failure.
- Dysregulation of SR Ca2+ cycling, specifically impaired Ca2+ release and uptake, underlies the arrhythmogenic potential of HRC Ser96Ala.
- Targeting Ca2+/calmodulin-dependent protein kinase II (CaMKII) may offer a therapeutic strategy for preventing arrhythmias in susceptible individuals.
Abstract:
Sudden unexpected cardiac death (SCD) accounts for up to half of all-cause mortality of heart failure patients. Standardized cardiology tools such as electrocardiography, cardiac imaging, electrophysiological and serum biomarkers cannot accurately predict which patients are at risk of life-threatening arrhythmic episodes. Recently, a common variant of the histidine-rich calcium binding protein (HRC), the Ser96Ala, was identified as a potent biomarker of malignant arrhythmia triggering in these patients. HRC has been shown to be involved in the regulation of cardiac sarcoplasmic reticulum (SR) Ca2+ cycling, by binding and storing Ca2+ in the SR, as well as interacting with the SR Ca2+ uptake and release complexes. The underlying mechanisms, elucidated by studies at the molecular, biochemical, cellular and intact animal levels, indicate that transversion of Ser96 to Ala results in abolishment of an HRC phosphorylation site by Fam20C kinase and dysregulation of SR Ca2+ cycling. This is mediated through aberrant SR Ca2+ release by the ryanodine receptor (RyR2) quaternary complex, due to the impaired HRC/triadin interaction, and depressed SR Ca2+ uptake by the sarco/endoplasmic reticulum Ca2+ ATPase (SERCA2) pump, due to the impaired HRC/SERCA2 interaction. Pharmacological intervention with KN-93, an inhibitor of Ca2+/calmodulin-dependent protein kinase II (CaMKII), in the HRC Ser96Ala mouse model, reduced the occurrence of malignant cardiac arrhythmias. Herein, we summarize the current evidence on the pivotal role of HRC in the regulation of cardiac rhythmicity and the importance of HRC Ser96Ala as a genetic modifier for arrhythmias in the setting of heart failure.
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