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HRAS-Mutant Cardiomyocyte Model of Multifocal Atrial Tachycardia
Nelson A Rodríguez1, Nihir Patel1, Rafael Dariolli2
1Mindich Child Health & Development Institute (N.A.R., N.P., S.N., A.G.A., M.R., B.D.G.), Icahn School of Medicine at Mount Sinai, New York, NY.
Insights
Gain-of-function HRAS mutations in Costello syndrome cause heart rhythm problems by increasing cell automaticity. This study used stem cells to reveal HRAS
Area of Science:
- Cardiovascular Biology
- Genetics
- Stem Cell Biology
Background:
- Costello syndrome (CS) is caused by germline HRAS gain-of-function variants.
- Multifocal atrial tachycardia (MAT), a treatment-resistant tachyarrhythmia, affects 50% of CS patients in early childhood.
- The pathogenesis of MAT in CS remains unknown.
Purpose of the Study:
- To investigate how overactive HRAS signaling triggers arrhythmogenesis in atrial-like cardiomyocytes (ACMs).
- To establish a human-induced pluripotent stem cell (hiPSC) model for studying MAT in CS.
Main Methods:
- Generated hiPSC-ACMs from CS patients with HRAS Gly12 mutations.
- Assessed electrophysiological properties (action potentials, calcium transients, funny currents) using automated patch clamping.
- Analyzed transcriptomic data for differential gene expression and gene ontology.
- Evaluated protein expression via immunoblotting.
Main Results:
- HRAS variant ACMs exhibited higher beating rates and increased pacemaker-like cell populations with elevated funny current densities.
- Specific inhibitors (ivabradine, flecainide, verapamil) modulated beating rates and irregularity.
- Mutant ACMs showed upregulated gene expression related to heart rate, calcium homeostasis, and nodal programming.
- MAPK activity was suppressed in mutant ACMs.
Conclusions:
- Gain-of-function HRAS mutations in hiPSC-derived ACMs induce transcriptional changes promoting enhanced automaticity and arrhythmias.
- This hiPSC model elucidates the mechanistic basis of multifocal atrial tachycardia in Costello syndrome.
Background:
Germline HRAS gain-of-function pathogenic variants cause Costello syndrome (CS). During early childhood, 50% of patients develop multifocal atrial tachycardia, a treatment-resistant tachyarrhythmia of unknown pathogenesis. This study investigated how overactive HRAS activity triggers arrhythmogenesis in atrial-like cardiomyocytes (ACMs) derived from human-induced pluripotent stem cells bearing CS-associated HRAS variants.
Methods:
HRAS Gly12 mutations were introduced into a human-induced pluripotent stem cells-ACM reporter line. Human-induced pluripotent stem cells were generated from patients with CS exhibiting tachyarrhythmia. Calcium transients and action potentials were assessed in induced pluripotent stem cell-derived ACMs. Automated patch clamping assessed funny currents. HCN inhibitors targeted pacemaker-like activity in mutant ACMs. Transcriptomic data were analyzed via differential gene expression and gene ontology. Immunoblotting evaluated protein expression associated with calcium handling and pacemaker-nodal expression.
Results:
ACMs harboring HRAS variants displayed higher beating rates compared with healthy controls. The hyperpolarization activated cyclic nucleotide gated potassium channel inhibitor ivabradine and the Nav1.5 blocker flecainide significantly decreased beating rates in mutant ACMs, whereas voltage-gated calcium channel 1.2 blocker verapamil attenuated their irregularity. Electrophysiological assessment revealed an increased number of pacemaker-like cells with elevated funny current densities among mutant ACMs. Mutant ACMs demonstrated elevated gene expression (ie, ISL1, TBX3, TBX18) related to intracellular calcium homeostasis, heart rate, RAS signaling, and induction of pacemaker-nodal-like transcriptional programming. Immunoblotting confirmed increased protein levels for genes of interest and suppressed MAPK (mitogen-activated protein kinase) activity in mutant ACMs.
Conclusions:
CS-associated gain-of-function HRASG12 mutations in induced pluripotent stem cells-derived ACMs trigger transcriptional changes associated with enhanced automaticity and arrhythmic activity consistent with multifocal atrial tachycardia. This is the first human-induced pluripotent stem cell model establishing the mechanistic basis for multifocal atrial tachycardia in CS.
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