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Updated: Apr 30, 2026

Functional Characterization of Endogenously Expressed Human RYR1 Variants
Published on: June 9, 2021
The arrhythmogenic human HRC point mutation S96A leads to spontaneous Ca(2+) release due to an impaired ability to
Joe Z Zhang1, Janet C McLay1, Peter P Jones1
1Department of Physiology and HeartOtago, Otago School of Medical Sciences, University of Otago, Dunedin 9054, New Zealand.
Insights
The Ser96Ala mutation in histidine rich Ca(2+) binding protein (HRC) impairs its ability to buffer calcium, leading to increased spontaneous Ca(2+) release and cardiac arrhythmias. This occurs independently of triadin, highlighting HRC's direct role in regulating calcium release.
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Calcium Signaling
Background:
- The Ser96Ala (S96A) mutation in histidine rich Ca(2+) binding protein (HRC) is linked to cardiac arrhythmias in dilated cardiomyopathy.
- The precise molecular mechanism by which this mutation increases spontaneous Ca(2+) release events remains unclear.
- Previous work suggests a connection between spontaneous Ca(2+) release and store overload induced Ca(2+) release (SOICR) via the cardiac ryanodine receptor (RyR2).
Purpose of the Study:
- To investigate the direct effect of wild-type HRC (HRC WT) and S96A mutant HRC (HRC S96A) on SOICR.
- To elucidate the role of HRC in regulating intracellular calcium handling and its potential link to arrhythmias.
Main Methods:
- Utilized human embryonic kidney cells expressing RyR2.
- Performed cytosolic and intra-Ca(2+) store measurements to assess SOICR.
- Employed proximity ligation assays to evaluate RyR2 and HRC interactions.
Main Results:
- HRC WT significantly inhibited SOICR by buffering free Ca(2+) and reducing store Ca(2+) uptake.
- HRC S96A exhibited a markedly reduced inhibitory effect on SOICR due to impaired Ca(2+) buffering and uptake.
- The S96A mutation disrupted the Ca(2+) microdomain around RyR2 by altering Ca(2+)-dependent HRC association, independent of triadin.
Conclusions:
- The HRC S96A mutation increases spontaneous Ca(2+) release and arrhythmias by disrupting intra-store free Ca(2+) regulation.
- Impaired bulk and local microdomain Ca(2+) buffering by HRC S96A is the primary mechanism.
- This study demonstrates that HRC S96A can promote SOICR without triadin interaction, clarifying a key aspect of its role in cardiac arrhythmias.
Abstract:
The Ser96Ala (S96A) mutation within the histidine rich Ca(2+) binding protein (HRC) has recently been linked to cardiac arrhythmias in idiopathic dilated cardiomyopathy patients, potentially attributable to an increase in spontaneous Ca(2+) release events. However, the molecular mechanism connecting the S96A mutation of HRC to increased Ca(2+) release events remains unclear. Previous findings by our group indicate that these spontaneous Ca(2+) release events may be linked to store overload induced Ca(2+) release (SOICR) via the cardiac ryanodine receptor (RyR2). Therefore, in the present study we sought to determine whether HRC wild type (HRC WT) and S96A mutant (HRC S96A) expression has a direct effect on SOICR. Using both cytosolic and intra-Ca(2+) store measurements in human embryonic kidney cells expressing RyR2, we found that HRC WT significantly inhibited the propensity for SOICR by buffering store free Ca(2+) and inhibiting store Ca(2+) uptake. In contrast, HRC S96A exhibited a markedly suppressed inhibitory effect on SOICR, which was attributed to an impaired ability to buffer store Ca(2+) and reduce store Ca(2+) uptake. In addition to impairing the ability of HRC to regulate bulk store Ca(2+), a proximity ligation assay demonstrated that the S96A mutation also disrupts the Ca(2+) microdomain around the RyR2, as it alters the Ca(2+) dependent association of RyR2 and HRC. Importantly, in contrast to previous reports, the absence of triadin in our experimental model illustrates that the S96A mutation in HRC can alter the propensity for SOICR without any interaction with triadin. Collectively, our results demonstrate that the human HRC mutation S96A leads to an increase in spontaneous Ca(2+) release and ultimately arrhythmias by disrupting the regulation of intra-store free Ca(2+). This is primarily due to an impaired ability to act as an effective bulk and local microdomain store Ca(2+) buffer.
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