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Abnormal calcium signaling and sudden cardiac death associated with mutation of calsequestrin
Serge Viatchenko-Karpinski1, Dmitry Terentyev, Inna Györke
1Department of Physiology, Texas Tech University Health Sciences Center, Lubbock, Tex 79430-6551, USA.
Abstract:
Mutations in human cardiac calsequestrin (CASQ2), a high-capacity calcium-binding protein located in the sarcoplasmic reticulum (SR), have recently been linked to effort-induced ventricular arrhythmia and sudden death (catecholaminergic polymorphic ventricular tachycardia). However, the precise mechanisms through which these mutations affect SR function and lead to arrhythmia are presently unknown. In this study, we explored the effect of adenoviral-directed expression of a canine CASQ2 protein carrying the catecholaminergic polymorphic ventricular tachycardia-linked mutation D307H (CASQ2(D307H)) on Ca2+ signaling in adult rat myocytes. Total CASQ2 protein levels were consistently elevated approximately 4-fold in cells infected with adenoviruses expressing either wild-type CASQ2 (CASQ2(WT)) or CASQ2(D307H). Expression of CASQ2(D307H) reduced the Ca2+ storing capacity of the SR. In addition, the amplitude, duration, and rise time of macroscopic I(Ca)-induced Ca2+ transients and of spontaneous Ca2+ sparks were reduced significantly in myocytes expressing CASQ2(D307H). Myocytes expressing CASQ2(D307H) also displayed drastic disturbances of rhythmic oscillations in [Ca2+]i and membrane potential, with signs of delayed afterdepolarizations when undergoing periodic pacing and exposed to isoproterenol. Importantly, normal rhythmic activity was restored by loading the SR with the low-affinity Ca2+ buffer, citrate. Our data suggest that the arrhythmogenic CASQ2(D307H) mutation impairs SR Ca2+ storing and release functions and destabilizes the Ca2+-induced Ca2+ release mechanism by reducing the effective Ca2+ buffering inside the SR and/or by altering the responsiveness of the Ca2+ release channel complex to luminal Ca2+. These results establish at the cellular level the pathological link between CASQ2 mutations and the predisposition to adrenergically mediated arrhythmias observed in patients carrying CASQ2 defects.
Insights
Mutations in cardiac calsequestrin (CASQ2) impair calcium storage and release in heart cells, leading to dangerous arrhythmias. Restoring calcium buffering normalizes heart rhythm, linking CASQ2 defects to sudden death.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Mutations in cardiac calsequestrin (CASQ2) are linked to effort-induced ventricular arrhythmias and sudden death.
- The precise mechanisms by which CASQ2 mutations cause arrhythmias are unknown.
Purpose of the Study:
- To investigate the effects of a specific CASQ2 mutation (D307H) on calcium signaling and SR function in adult rat myocytes.
- To establish a cellular link between CASQ2 mutations and adrenergically mediated arrhythmias.
Main Methods:
- Adenoviral-directed expression of wild-type (CASQ2(WT)) and mutant (CASQ2(D307H)) canine CASQ2 in adult rat myocytes.
- Measurement of SR Ca2+ storage capacity, Ca2+ transients, Ca2+ sparks, and intracellular Ca2+ oscillations.
- Assessment of membrane potential and the effect of citrate buffer on rhythmic activity.
Main Results:
- Expression of CASQ2(D307H) significantly reduced SR Ca2+ storage capacity and altered Ca2+ transient and spark properties.
- Myocytes expressing CASQ2(D307H) exhibited disturbed Ca2+ oscillations, delayed afterdepolarizations, and arrhythmias under pacing and isoproterenol.
- Restoration of normal rhythmic activity by the low-affinity Ca2+ buffer citrate.
Conclusions:
- The CASQ2(D307H) mutation impairs SR Ca2+ storage and release, destabilizing Ca2+-induced Ca2+ release.
- Reduced intracellular Ca2+ buffering and altered channel responsiveness contribute to arrhythmogenesis.
- Establishes a cellular mechanism linking CASQ2 mutations to predisposition to adrenergically mediated arrhythmias.
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