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Dual-Dye Optical Mapping of Hearts from RyR2R2474S Knock-In Mice of Catecholaminergic Polymorphic Ventricular Tachycardia
Published on: December 22, 2023
The role of mutant protein level in autosomal recessive catecholamine dependent polymorphic ventricular tachycardia
Guy Katz1, Asher Shainberg, Edith Hochhauser
1Leviev Heart Center, Sheba Medical Center, Tel Hashomer and Sackler School of, Medicine, Tel Aviv University, Tel Aviv, Israel.
Abstract:
Humans and genetically engineered mice with recessively inherited CPVT develop arrhythmia which may arise due to malfunction or degradation of calsequestrin (CASQ2). We investigated the relation between protein level and arrhythmia severity in CASQ2(D307H/D307H) (D307H), compared to CASQ2(Δ/Δ) (KO) and wild type (WT) mice. CASQ2 expression and Ca²⁺ transients were recorded in cardiomyocytes from neonatal or adult mice. Arrhythmia was studied in vivo using heart rhythm telemetry at rest, exercise and after epinephrine injection. CASQ2 protein was absent in KO heart. Neonatal D307H and WT hearts expressed significantly less CASQ2 protein than the level found in the adult WT. Adult D307H expressed only 20% of CASQ2 protein found in WT. Spontaneous Ca²⁺ release was more prevalent in neonatal KO cardiomyocytes (89%) compared to 33-36% of either WT or D307H, respectively, p<0.001. Adult cardiomyocytes from both mutant mice had more Ca²⁺ abnormalities compared to control (KO: 82%, D307H 63%, WT 12%, p<0.01). Calcium oscillations were most common in KO cardiomyocytes. We then treated mice with bortezomib to inhibit CASQ2(D307H) degradation. Bortezomib increased CASQ2 expression in D307H hearts by ∼50% (p<0.05). Bortezomib-treated D307H mice had lower CPVT prevalence and less premature ventricular beats during peak exercise. No benefit against arrhythmia was observed in bortezomib treated KO mice. These results indicate that the mutant CASQ2(D307H) protein retains some of its physiological function. Its expression decreases with age and is inversely related to arrhythmia severity. Preventing the degradation of mutant protein should be explored as a possible therapeutic strategy in appropriate CPVT2 patients.
Insights
Mice with a calsequestrin (CASQ2) mutation develop arrhythmia. Inhibiting mutant CASQ2 degradation improved heart function, suggesting a therapeutic strategy for CPVT2 patients.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Catecholaminergic polymorphic ventricular tachycardia (CPVT) is an inherited arrhythmia linked to calsequestrin (CASQ2) dysfunction.
- Mutations in CASQ2 can lead to protein degradation and impaired calcium handling in cardiomyocytes, increasing arrhythmia risk.
Purpose of the Study:
- To investigate the relationship between mutant CASQ2 protein levels and arrhythmia severity in genetically engineered mice.
- To evaluate the therapeutic potential of inhibiting CASQ2 degradation in a mouse model of CPVT.
Main Methods:
- Assessed CASQ2 protein expression and calcium (Ca²⁺) transients in cardiomyocytes from wild-type, CASQ2 knockout (KO), and CASQ2(D307H/D307H) mutant mice.
- Monitored in vivo arrhythmia using heart rhythm telemetry under various conditions (rest, exercise, epinephrine challenge).
- Administered bortezomib to inhibit CASQ2 degradation in mutant mice and assessed its effects on protein levels and arrhythmia.
Main Results:
- Adult CASQ2(D307H/D307H) mice expressed only 20% of wild-type CASQ2 protein, with reduced expression in neonates.
- Both KO and D307H mutant mice exhibited significantly more Ca²⁺ abnormalities in adult cardiomyocytes compared to controls.
- Bortezomib treatment increased CASQ2 expression in D307H hearts by ~50%, reducing CPVT prevalence and premature ventricular beats during exercise.
Conclusions:
- Mutant CASQ2(D307H) retains partial physiological function, with expression inversely related to arrhythmia severity.
- Preventing degradation of mutant CASQ2 is a potential therapeutic strategy for specific CPVT2 patients.
- The study highlights the importance of CASQ2 protein levels in arrhythmogenesis and therapeutic interventions.
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