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TAX1BP3 Causes TRPV4-Mediated Autosomal Recessive Arrhythmogenic Cardiomyopathy
Robin M Perelli1,2, Enya R Dewars2,3, Heidi Cope4,5
1Department of Cell Biology (R.M.P., A.P.L.), Duke University School of Medicine, Durham, NC.
Insights
Genetic variants in TAX1BP3 are linked to arrhythmogenic cardiomyopathy (ACM) through TRPV4-mediated calcium leak. Inhibiting TRPV4 current shows potential as a novel therapeutic strategy for ACM patients.
Area of Science:
- Cardiology
- Genetics
- Molecular Biology
Background:
- Arrhythmogenic cardiomyopathy (ACM) is a primary cause of sudden cardiac death, characterized by myocardial fibro-fatty replacement.
- The genetic basis for a significant portion of ACM cases remains unknown, hindering therapeutic development.
- Current understanding of ACM pathogenesis is incomplete, contributing to high morbidity and mortality in affected children.
Purpose of the Study:
- To investigate the genetic cause and underlying mechanisms of arrhythmogenic cardiomyopathy in a family with unexplained cases.
- To explore the role of TAX1BP3 gene variants in ACM pathogenesis.
- To evaluate the therapeutic potential of targeting TRPV4 channels in ACM.
Main Methods:
- Generated induced pluripotent stem cells (iPSCs) from affected family members and differentiated them into cardiac myocytes (CMs).
- Performed calcium imaging and electrophysiology studies on iPSC-derived CMs and a cardiac-specific Tax1bp3 knockout mouse model.
- Utilized small molecule TRPV4 inhibitors to assess rescue effects on calcium leak and arrhythmogenesis.
Main Results:
- Identified biallelic variants in TAX1BP3 cosegregating with ACM in a multi-affected kindred.
- iPSC-CMs exhibited increased lipid droplets, TRPV4 expression, and calcium leak via RyR2, leading to delayed afterdepolarizations.
- Tax1bp3 knockout mice showed increased calcium leak and arrhythmia susceptibility, which were ameliorated by TRPV4 inhibition.
- TRPV4 inhibition also rescued calcium leak in a PKP2-associated ACM iPSC-CM model.
Conclusions:
- TAX1BP3 variants are associated with rare autosomal recessive ACM, driven by TRPV4-mediated calcium leak from RyR2.
- TRPV4 channel inhibition represents a promising therapeutic strategy for ACM.
- This study elucidates a novel mechanism in ACM pathogenesis and identifies a potential therapeutic target.
Background:
Arrhythmogenic cardiomyopathy (ACM) is one of the leading causes of sudden cardiac death in children, young adults, and athletes and is characterized by the fibro-fatty replacement of the myocardium, predominantly of the right ventricle. Sixty percent of patients with ACM have a known genetic cause, but for the remainder, the pathogenesis is unknown. This lack of mechanistic understanding has slowed the development of disease-modifying therapies, and children with ACM have a high degree of morbidity and mortality.
Methods:
Induced pluripotent stem cells (iPSCs) from 3 family members were differentiated into cardiac myocytes (CMs). Calcium imaging was conducted by labeling calcium with CAL-520 and confocal imaging to capture calcium sparks after iPSC-CMs were electrically paced. A cardiac-specific, inducible knockout mouse (Tax1bp3-/-) was made and intracardiac electrophysiology studies conducted to observe arrhythmia inducibility following pacing.
Results:
We identified a kindred with multiple members affected by ACM cosegregating with biallelic variants in the gene TAX1BP3, which encodes the protein TAX1BP3 (Tax1-binding protein 3). iPSC-CMs derived from this kindred demonstrated increased intracellular lipid droplets, induction of TRPV4 (transient receptor potential vanilloid type 4) expression, and inducible TRPV4 current. This was associated with depletion of the intracellular sarcoplasmic reticulum Ca2+ store and increased RyR2 (ryanodine receptor 2)-mediated store Ca2+ leak and delayed afterdepolarizations, a known mechanism of Ca2+-mediated arrhythmogenesis. Similarly, Tax1bp3 cardiac-specific knockout mice had increased Ca2+ leak and were predisposed to ventricular arrhythmias compared with wild-type mice. Ca2+ leak in both the iPSC-CMs and mouse ventricular myocytes was rescued by small molecule TRPV4 inhibition. This strategy also effectively reduced Ca2+ leak in a PKP2 (plakophilin 2) p.His773AlafsX8 iPSC-CM model of ACM.
Conclusions:
We conclude that TAX1BP3 is associated with rare autosomal recessive ACM through TRPV4-mediated Ca2+ leak from RyR2. Further, TRPV4 current inhibition has the potential to be a new therapeutic target for ACM.
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