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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
Interplay between Triadin and Calsequestrin in the Pathogenesis of CPVT in the Mouse
Marine Cacheux1, Jérémy Fauconnier2, Jérôme Thireau2
1Grenoble Institut Neurosciences, INSERM, Grenoble Alpes University, U1216, CHU Grenoble Alpes, 38700 La Tronche, France.
Abstract:
Recessive forms of catecholaminergic polymorphic ventricular tachycardia (CPVT) are induced by mutations in genes encoding triadin or calsequestrin, two proteins that belong to the Ca2+ release complex, responsible for intracellular Ca2+ release triggering cardiac contractions. To better understand the mechanisms of triadin-induced CPVT and to assay multiple therapeutic interventions, we used a triadin knockout mouse model presenting a CPVT-like phenotype associated with a decrease in calsequestrin protein level. We assessed different approaches to rescue protein expression and to correct intracellular Ca2+ release and cardiac function: pharmacological treatment with kifunensine or a viral gene transfer-based approach, using adeno-associated virus serotype 2/9 (AAV2/9) encoding the triadin or calsequestrin. We observed that the levels of triadin and calsequestrin are intimately linked, and that reduction of both proteins contributes to the CPVT phenotype. Different combinations of triadin and calsequestrin expression level were obtained using these therapeutic approaches. A full expression of each is not necessary to correct the phenotype; a fine-tuning of the relative re-expression of both triadin and calsequestrin is required to correct the CPVT phenotype and rescue the cardiac function. AAV-mediated gene delivery of calsequestrin or triadin and treatment with kifunensine are potential treatments for recessive forms of CPVT due to triadin mutations.
Insights
Recessive catecholaminergic polymorphic ventricular tachycardia (CPVT) involves triadin and calsequestrin. Fine-tuning their expression levels, not full restoration, can correct cardiac function in CPVT mouse models.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Recessive catecholaminergic polymorphic ventricular tachycardia (CPVT) is linked to mutations in triadin or calsequestrin, key proteins in the cardiac Ca2+ release complex.
- Understanding the interplay between triadin and calsequestrin is crucial for developing effective treatments for CPVT.
Purpose of the Study:
- To investigate the mechanisms of triadin-induced CPVT using a triadin knockout mouse model.
- To evaluate therapeutic interventions aimed at restoring cardiac function in CPVT.
Main Methods:
- Utilized a triadin knockout mouse model exhibiting a CPVT-like phenotype and reduced calsequestrin levels.
- Assessed pharmacological treatment (kifunensine) and gene therapy (AAV2/9) for triadin and calsequestrin re-expression.
- Monitored intracellular Ca2+ release and cardiac function post-intervention.
Main Results:
- Triadin and calsequestrin levels are interdependent, with reductions in both contributing to the CPVT phenotype.
- Therapeutic approaches achieved varied expression levels of triadin and calsequestrin.
- Optimal correction of the CPVT phenotype and cardiac function required fine-tuning, not necessarily full, re-expression of both proteins.
Conclusions:
- The study highlights the critical relationship between triadin and calsequestrin levels in CPVT pathogenesis.
- Both AAV-mediated gene delivery and kifunensine treatment show promise as therapeutic strategies for recessive CPVT linked to triadin mutations.

